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class="title-container"><h1 class="ds2-5-heading-sans-serif-sm">Ole Risbøl</h1><div class="affiliations-container fake-truncate js-profile-affiliations"><div><a class="u-tcGrayDarker" href="https://ntnu-no.academia.edu/">Norwegian University of Science and Technology</a>, <a class="u-tcGrayDarker" href="https://ntnu-no.academia.edu/Departments/Archaeology_and_Cultural_history/Documents">Archaeology and Cultural history</a>, <span class="u-tcGrayDarker">Associate Professor</span></div></div></div></div><div class="sidebar-cta-container"><button class="ds2-5-button hidden profile-cta-button grow js-profile-follow-button" data-broccoli-component="user-info.follow-button" data-click-track="profile-user-info-follow-button" data-follow-user-fname="Ole" data-follow-user-id="2845169" data-follow-user-source="profile_button" data-has-google="false"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">add</span>Follow</button><button class="ds2-5-button hidden 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Views</span></p><p class="data"><span class="js-profile-view-count"></span></p></div></span></div><div class="user-bio-container"><div class="profile-bio fake-truncate js-profile-about" style="margin: 0px;"><span class="u-fw700">Phone: </span>+47 94827086<br /><b>Address: </b>NTNU Vitenskapsmuseet<br />Erling Skakkes gate 47 A<br />7491 Trondheim<br />NORWAY<br /><div class="js-profile-less-about u-linkUnstyled u-tcGrayDarker u-textDecorationUnderline u-displayNone">less</div></div></div><div class="ri-section"><div class="ri-section-header"><span>Interests</span><a class="ri-more-link js-profile-ri-list-card" data-click-track="profile-user-info-primary-research-interest" data-has-card-for-ri-list="2845169">View All (6)</a></div><div class="ri-tags-container"><a data-click-track="profile-user-info-expand-research-interests" data-has-card-for-ri-list="2845169" href="https://www.academia.edu/Documents/in/Landscape_Archaeology"><div id="js-react-on-rails-context" style="display:none" 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href="#papers" role="tab" title="Papers"><span>42</span> <span class="ds2-5-body-sm-bold">Papers</span></a></li><li class="nav-chip" role="presentation"><a class="js-profile-docs-nav-section u-textTruncate" data-click-track="profile-works-tab" data-section-name="Teaching-Documents" data-toggle="tab" href="#teachingdocuments" role="tab" title="Teaching Documents"><span>8</span> <span class="ds2-5-body-sm-bold">Teaching Documents</span></a></li></ul></div><div class="divider ds-divider-16" style="margin: 0px;"></div><div class="documents-container backbone-social-profile-documents" style="width: 100%;"><div class="u-taCenter"></div><div class="profile--tab_content_container js-tab-pane tab-pane active" id="all"><div class="profile--tab_heading_container js-section-heading" data-section="Papers" id="Papers"><h3 class="profile--tab_heading_container">Papers by Ole Risbøl</h3></div><div class="js-work-strip profile--work_container" data-work-id="109150973"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/109150973/UAV_LiDAR_in_coastal_environments_Archaeological_case_studies_from_Tierra_del_Fuego_Argentina_and_Vega_Norway"><img alt="Research paper thumbnail of UAV LiDAR in coastal environments: Archaeological case studies from Tierra del Fuego, Argentina, and Vega, Norway" class="work-thumbnail" src="https://attachments.academia-assets.com/107359103/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/109150973/UAV_LiDAR_in_coastal_environments_Archaeological_case_studies_from_Tierra_del_Fuego_Argentina_and_Vega_Norway">UAV LiDAR in coastal environments: Archaeological case studies from Tierra del Fuego, Argentina, and Vega, Norway</a></div><div class="wp-workCard_item"><span>Archaeological Prospection</span><span>, 2023</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">LiDAR has become fairly integrated into archaeological practice at a global scale. This has gradu...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">LiDAR has become fairly integrated into archaeological practice at a global scale. This has gradually evolved to include UAV LiDAR. Nevertheless, considerable biases remain, including with regard to geographical regions, chronological periods, feature types and environments. At present, few studies of coastal environments exist, despite the fact that LiDAR-and UAV LiDAR in particular-has the obvious advantages of flexibility and time efficiency in such archaeologically rich but logistically challenging environments. In this paper, we compare the results of UAV LiDAR surveys with records from previous ground surveys in two case studies from coastal environments on opposite sides of the globe. Case Study I of shell middens located within approximately 3 km 2 around Cambaceres Bay involved the first collection of LiDAR data from Tierra del Fuego, Argentina. Case Study II covered approximately 3 km 2 of the island of Vega, Northern Norway, and is among the pioneering LiDAR studies of Mesolithic house pits. The detection success rate was fairly good for Cambaceres-69% of 1240 recorded structures were identified on LiDAR-and above expected for Vega, with 81% of 51 recorded house pits identified on LiDAR. In Cambaceres, the main challenges were dense and low vegetation and identifying small middens. Possible new identifications of archaeological features were made in both areas: subtle depressions interpreted as dwelling foundations in Cambaceres and house pits on Vega. We conclude that UAV LiDAR can contribute to coastal archaeology and that it has added values besides making new identifications, being both flexible and time efficient. An example pertains to the possible identification of a practice that has not previously been proved archaeologically in Tierra del Fuegomore thorough site preparation prior to the construction of the dwellings-which in turn raises new questions.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="d79ba60009dd03c9415be9fcc289e675" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":107359103,"asset_id":109150973,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/107359103/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="109150973"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="109150973"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 109150973; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=109150973]").text(description); $(".js-view-count[data-work-id=109150973]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 109150973; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='109150973']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 109150973, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "d79ba60009dd03c9415be9fcc289e675" } } $('.js-work-strip[data-work-id=109150973]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":109150973,"title":"UAV LiDAR in coastal environments: Archaeological case studies from Tierra del Fuego, Argentina, and Vega, Norway","translated_title":"","metadata":{"doi":"10.1002/arp.1918","abstract":"LiDAR has become fairly integrated into archaeological practice at a global scale. 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In this paper, we compare the results of UAV LiDAR surveys with records from previous ground surveys in two case studies from coastal environments on opposite sides of the globe. Case Study I of shell middens located within approximately 3 km 2 around Cambaceres Bay involved the first collection of LiDAR data from Tierra del Fuego, Argentina. Case Study II covered approximately 3 km 2 of the island of Vega, Northern Norway, and is among the pioneering LiDAR studies of Mesolithic house pits. The detection success rate was fairly good for Cambaceres-69% of 1240 recorded structures were identified on LiDAR-and above expected for Vega, with 81% of 51 recorded house pits identified on LiDAR. In Cambaceres, the main challenges were dense and low vegetation and identifying small middens. Possible new identifications of archaeological features were made in both areas: subtle depressions interpreted as dwelling foundations in Cambaceres and house pits on Vega. We conclude that UAV LiDAR can contribute to coastal archaeology and that it has added values besides making new identifications, being both flexible and time efficient. An example pertains to the possible identification of a practice that has not previously been proved archaeologically in Tierra del Fuegomore thorough site preparation prior to the construction of the dwellings-which in turn raises new questions.","internal_url":"https://www.academia.edu/109150973/UAV_LiDAR_in_coastal_environments_Archaeological_case_studies_from_Tierra_del_Fuego_Argentina_and_Vega_Norway","translated_internal_url":"","created_at":"2023-11-14T00:51:01.996-08:00","preview_url":null,"current_user_can_edit":null,"current_user_is_owner":null,"owner_id":2845169,"coauthors_can_edit":true,"document_type":"paper","co_author_tags":[{"id":40537853,"work_id":109150973,"tagging_user_id":2845169,"tagged_user_id":4590296,"co_author_invite_id":null,"email":"h***k@ntnu.no","display_order":1,"name":"Hein B. Bjerck","title":"UAV LiDAR in coastal environments: Archaeological case studies from Tierra del Fuego, Argentina, and Vega, Norway"}],"downloadable_attachments":[{"id":107359103,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/107359103/thumbnails/1.jpg","file_name":"Risbøl_et_al_2023_A.P..pdf","download_url":"https://www.academia.edu/attachments/107359103/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"UAV_LiDAR_in_coastal_environments_Archae.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/107359103/Risb%C3%B8l_et_al_2023_A.P.-libre.pdf?1699955479=\u0026response-content-disposition=attachment%3B+filename%3DUAV_LiDAR_in_coastal_environments_Archae.pdf\u0026Expires=1732876557\u0026Signature=VbGpwqxGohpmNdZjPuMcroW97j8bPiPzsC6e81j307oLWqSww1V9wFjNmCNti385vHZecyBFgumh3AJL~mDiYeLW4ECytnNRPLvaW3kD1QWp7Xut3engZyUKsuP3XDDCaZhZocKfuqGcwd3k7TpztTLlWhGkLFXThlMGrDxXbetQucw7kICv-h4UotJJWfup~5vBVkGr3Eu7hgNMiGrxwThYm~3PDjkQv8QViq4WO6cjR8mcpmGM2ZD3LTfOQ4KHaGO0bY2wEogXuobvQ-zNkjyRUiI2fNomOBfxQgPG~VgI4brk4dmZcv54RYS3IwjRjONlTcieQCkstXF84RFmKQ__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"slug":"UAV_LiDAR_in_coastal_environments_Archaeological_case_studies_from_Tierra_del_Fuego_Argentina_and_Vega_Norway","translated_slug":"","page_count":25,"language":"en","content_type":"Work","owner":{"id":2845169,"first_name":"Ole","middle_initials":null,"last_name":"Risbøl","page_name":"OleRisbøl","domain_name":"ntnu-no","created_at":"2012-12-04T19:22:46.770-08:00","display_name":"Ole Risbøl","url":"https://ntnu-no.academia.edu/OleRisb%C3%B8l"},"attachments":[{"id":107359103,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/107359103/thumbnails/1.jpg","file_name":"Risbøl_et_al_2023_A.P..pdf","download_url":"https://www.academia.edu/attachments/107359103/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"UAV_LiDAR_in_coastal_environments_Archae.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/107359103/Risb%C3%B8l_et_al_2023_A.P.-libre.pdf?1699955479=\u0026response-content-disposition=attachment%3B+filename%3DUAV_LiDAR_in_coastal_environments_Archae.pdf\u0026Expires=1732876557\u0026Signature=VbGpwqxGohpmNdZjPuMcroW97j8bPiPzsC6e81j307oLWqSww1V9wFjNmCNti385vHZecyBFgumh3AJL~mDiYeLW4ECytnNRPLvaW3kD1QWp7Xut3engZyUKsuP3XDDCaZhZocKfuqGcwd3k7TpztTLlWhGkLFXThlMGrDxXbetQucw7kICv-h4UotJJWfup~5vBVkGr3Eu7hgNMiGrxwThYm~3PDjkQv8QViq4WO6cjR8mcpmGM2ZD3LTfOQ4KHaGO0bY2wEogXuobvQ-zNkjyRUiI2fNomOBfxQgPG~VgI4brk4dmZcv54RYS3IwjRjONlTcieQCkstXF84RFmKQ__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"research_interests":[],"urls":[]}, dispatcherData: dispatcherData }); $(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="85918598"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/85918598/Tj%C3%A6reproduksjon_i_myrmiler_en_s%C3%A6regen_midtnorsk_tradisjon_Tar_production_in_kilns_located_in_mires_a_specifically_mid_Norwegian_tradition"><img alt="Research paper thumbnail of Tjæreproduksjon i myrmiler - en særegen midtnorsk tradisjon. Tar production in kilns located in mires: a specifically mid-Norwegian tradition" class="work-thumbnail" src="https://attachments.academia-assets.com/90485254/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/85918598/Tj%C3%A6reproduksjon_i_myrmiler_en_s%C3%A6regen_midtnorsk_tradisjon_Tar_production_in_kilns_located_in_mires_a_specifically_mid_Norwegian_tradition">Tjæreproduksjon i myrmiler - en særegen midtnorsk tradisjon. Tar production in kilns located in mires: a specifically mid-Norwegian tradition</a></div><div class="wp-workCard_item"><span>Heimen. Tidsskrift for lokal og regional historie</span><span>, 2022</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="78d86c226d53c74b607f9d2b4902829c" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":90485254,"asset_id":85918598,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/90485254/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="85918598"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="85918598"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 85918598; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=85918598]").text(description); $(".js-view-count[data-work-id=85918598]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 85918598; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='85918598']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 85918598, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "78d86c226d53c74b607f9d2b4902829c" } } $('.js-work-strip[data-work-id=85918598]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":85918598,"title":"Tjæreproduksjon i myrmiler - en særegen midtnorsk tradisjon. Tar production in kilns located in mires: a specifically mid-Norwegian tradition","translated_title":"","metadata":{"grobid_abstract":"Det har blitt produsert tjaere i minst 2000 år her i landet. Gjennom historien har det vaert ulike måter å produsere tjaere på og arkeologiske undersøkelser har sammen med historiske kilder gitt oss et innblikk i de metoder og teknikker som er benyttet. Én måte å produsere tjaere på skiller seg avgjort ut, nemlig myrmilene som synes helt og holdent å vaere forbeholdt Midt-Norge. Å produsere tjaere i vannfylte groper i myr avviker klart teknisk og metodisk sett fra de andre fremstillingsmåtene selv om hensikten og produktet var det samme. Bruken av myrmiler foregikk parallelt med de øvrige fremstillingsformene, og vi vet at de var i bruk langt opp i nyere tid. C14-dateringer viser at myrmiletradisjonen kan ha røtter tilbake til vikingtid/tidlig middelalder, men det trengs flere dateringer før vi kan si at vi står på sikker grunn i det spørsmålet. Skriftlige kilder gir oss et innblikk i betydningen av midt-norsk tjaereproduksjonen betydning som rakk utover det lokale og regionale da tjaere var en viktig eksportartikkel. Fremstilling og eksport av tjaere synes å gå hånd i hånd med avvirkning og eksport av tømmer fra 1500-tallet og fremover. Kunnskapsstatusen på tjaeremiler i myr presenteres i artikkelen og avslutningsvis pekes det på noen viktige retninger for videre forskning på temaet.","publication_date":{"day":null,"month":null,"year":2022,"errors":{}},"publication_name":"Heimen. 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Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal" class="work-thumbnail" src="https://attachments.academia-assets.com/98991961/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/97345120/Eldre_jernalders_tj%C3%A6reproduksjon_ut_av_t%C3%A5ken_Om_tidlig_norsk_tj%C3%A6reproduksjon_med_utgangspunkt_i_et_funn_p%C3%A5_Aver%C3%B8y_i_M%C3%B8re_og_Romsdal">Eldre jernalders tjæreproduksjon ut av tåken. Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal</a></div><div class="wp-workCard_item"><span>Viking</span><span>, 2021</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">For many years it has been well known that tar was an available commodity in the Norwegian Iron A...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">For many years it has been well known that tar was an available commodity in the Norwegian Iron Age, but until recently no production site or installation for such production was known. In this paper two recently discovered tar production sites, in south-eastern and mid-Norway respectively, are presented and discussed. Both are clay-lined funnel-shaped pits that are dug into the ground with an upper part where the wood was stacked and lit, and a lower part where the tar was collected in a container. The Norwegian tar production pits are similar to contemporary Swedish ones found in large numbers in mid-Sweden. The type is also known from the eastern part of Central Europe where they came into use a few centuries later than in Scandinavia. </span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="bc92cada2d43cc8db91f173862a9b67d" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":98991961,"asset_id":97345120,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/98991961/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="97345120"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="97345120"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 97345120; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=97345120]").text(description); $(".js-view-count[data-work-id=97345120]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 97345120; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='97345120']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 97345120, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "bc92cada2d43cc8db91f173862a9b67d" } } $('.js-work-strip[data-work-id=97345120]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":97345120,"title":"Eldre jernalders tjæreproduksjon ut av tåken. Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal","translated_title":"","metadata":{"abstract":"For many years it has been well known that tar was an available commodity in the Norwegian Iron Age, but until recently no production site or installation for such production was known. In this paper two recently discovered tar production sites, in south-eastern and mid-Norway respectively, are presented and discussed. Both are clay-lined funnel-shaped pits that are dug into the ground with an upper part where the wood was stacked and lit, and a lower part where the tar was collected in a container. The Norwegian tar production pits are similar to contemporary Swedish ones found in large numbers in mid-Sweden. The type is also known from the eastern part of Central Europe where they came into use a few centuries later than in Scandinavia. ","publisher":"University of Oslo Library","publication_date":{"day":null,"month":null,"year":2021,"errors":{}},"publication_name":"Viking"},"translated_abstract":"For many years it has been well known that tar was an available commodity in the Norwegian Iron Age, but until recently no production site or installation for such production was known. In this paper two recently discovered tar production sites, in south-eastern and mid-Norway respectively, are presented and discussed. Both are clay-lined funnel-shaped pits that are dug into the ground with an upper part where the wood was stacked and lit, and a lower part where the tar was collected in a container. The Norwegian tar production pits are similar to contemporary Swedish ones found in large numbers in mid-Sweden. The type is also known from the eastern part of Central Europe where they came into use a few centuries later than in Scandinavia. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="63700470"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/63700470/Archaeological_Surveying_of_Subarctic_and_Arctic_Landscapes_Comparing_the_Performance_of_Airborne_Laser_Scanning_and_Remote_Sensing_Image_Data"><img alt="Research paper thumbnail of Archaeological Surveying of Subarctic and Arctic Landscapes: Comparing the Performance of Airborne Laser Scanning and Remote Sensing Image Data" class="work-thumbnail" src="https://attachments.academia-assets.com/76043435/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/63700470/Archaeological_Surveying_of_Subarctic_and_Arctic_Landscapes_Comparing_the_Performance_of_Airborne_Laser_Scanning_and_Remote_Sensing_Image_Data">Archaeological Surveying of Subarctic and Arctic Landscapes: Comparing the Performance of Airborne Laser Scanning and Remote Sensing Image Data</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a>, <a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/AlmaThuestad">Alma Thuestad</a>, <a class="" data-click-track="profile-work-strip-authors" href="https://uit.academia.edu/JanIngolfKleppe">Jan Ingolf Kleppe</a>, and <a class="" data-click-track="profile-work-strip-authors" rel="nofollow" href="https://independent.academia.edu/EMyrvoll">Elin Myrvoll</a></span></div><div class="wp-workCard_item"><span>Sustainability 13(4)</span><span>, 2021</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">What can remote sensing contribute to archaeological surveying in subarctic and arctic landscapes...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">What can remote sensing contribute to archaeological surveying in subarctic and arctic landscapes? The pros and cons of remote sensing data vary as do areas of utilization and method-ological approaches. We assessed the applicability of remote sensing for archaeological surveying of northern landscapes using airborne laser scanning (LiDAR) and satellite and aerial images to map archaeological features as a basis for a) assessing the pros and cons of the different approaches and b) assessing the potential detection rate of remote sensing. Interpretation of images and a Li-DAR-based bare-earth digital terrain model (DTM) was based on visual analyses aided by processing and visualizing techniques. 368 features were identified in the aerial images, 437 in the satellite images and 1186 in the DTM. LiDAR yielded the better result, especially for hunting pits. Image data proved suitable for dwellings and settlement sites. Feature characteristics proved a key factor for detectability, both ...</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="47d9b83ba16d36ab17b947168841fc76" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":76043435,"asset_id":63700470,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/76043435/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="63700470"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="63700470"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 63700470; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=63700470]").text(description); $(".js-view-count[data-work-id=63700470]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 63700470; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='63700470']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 63700470, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "47d9b83ba16d36ab17b947168841fc76" } } $('.js-work-strip[data-work-id=63700470]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":63700470,"title":"Archaeological Surveying of Subarctic and Arctic Landscapes: Comparing the Performance of Airborne Laser Scanning and Remote Sensing Image Data","translated_title":"","metadata":{"abstract":"What can remote sensing contribute to archaeological surveying in subarctic and arctic landscapes? The pros and cons of remote sensing data vary as do areas of utilization and method-ological approaches. We assessed the applicability of remote sensing for archaeological surveying of northern landscapes using airborne laser scanning (LiDAR) and satellite and aerial images to map archaeological features as a basis for a) assessing the pros and cons of the different approaches and b) assessing the potential detection rate of remote sensing. Interpretation of images and a Li-DAR-based bare-earth digital terrain model (DTM) was based on visual analyses aided by processing and visualizing techniques. 368 features were identified in the aerial images, 437 in the satellite images and 1186 in the DTM. LiDAR yielded the better result, especially for hunting pits. Image data proved suitable for dwellings and settlement sites. Feature characteristics proved a key factor for detectability, both ...","publication_date":{"day":null,"month":null,"year":2021,"errors":{}},"publication_name":"Sustainability 13(4)"},"translated_abstract":"What can remote sensing contribute to archaeological surveying in subarctic and arctic landscapes? The pros and cons of remote sensing data vary as do areas of utilization and method-ological approaches. We assessed the applicability of remote sensing for archaeological surveying of northern landscapes using airborne laser scanning (LiDAR) and satellite and aerial images to map archaeological features as a basis for a) assessing the pros and cons of the different approaches and b) assessing the potential detection rate of remote sensing. 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href="https://www.academia.edu/92761678/Employment_Utilization_and_Development_of_Airborne_Laser_Scanning_in_Fenno_Scandinavian_Archaeology_A_Review"><img alt="Research paper thumbnail of Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology—A Review" class="work-thumbnail" src="https://attachments.academia-assets.com/95685143/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/92761678/Employment_Utilization_and_Development_of_Airborne_Laser_Scanning_in_Fenno_Scandinavian_Archaeology_A_Review">Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology—A Review</a></div><div class="wp-workCard_item"><span>Remote Sensing</span><span>, 2020</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeol...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeology in the North over the period 2005–2019. Almost two decades have passed since ALS first emerged as a potential tool to add to the archaeologist’s toolbox. Soon after, it attracted the attention of researchers within archaeological communities engaged with remote sensing in the Fenno-Scandinavian region. The first archaeological ALS projects gave immediate good results and led to further use, research, and development through new projects that followed various tracks. The bulk of the research and development focused on studying how well-suited ALS is for identifying, mapping, and documenting archaeological features in outfield land, mainly in forested areas. The poor situation in terms of lack of information on archaeological records in outfield areas has been challenging for research and especially for cultural heritage management for a long period of time. Consequently, an obvious di...</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="fd7b847340b9d7f1b0070310edd2ef2b" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":95685143,"asset_id":92761678,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/95685143/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="92761678"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="92761678"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 92761678; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=92761678]").text(description); $(".js-view-count[data-work-id=92761678]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 92761678; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='92761678']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 92761678, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "fd7b847340b9d7f1b0070310edd2ef2b" } } $('.js-work-strip[data-work-id=92761678]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":92761678,"title":"Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology—A Review","translated_title":"","metadata":{"abstract":"This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeology in the North over the period 2005–2019. Almost two decades have passed since ALS first emerged as a potential tool to add to the archaeologist’s toolbox. Soon after, it attracted the attention of researchers within archaeological communities engaged with remote sensing in the Fenno-Scandinavian region. The first archaeological ALS projects gave immediate good results and led to further use, research, and development through new projects that followed various tracks. The bulk of the research and development focused on studying how well-suited ALS is for identifying, mapping, and documenting archaeological features in outfield land, mainly in forested areas. The poor situation in terms of lack of information on archaeological records in outfield areas has been challenging for research and especially for cultural heritage management for a long period of time. 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Cowley (ed.):Remote Sensing for Archaeological Heritage Management. Proceedings of the 11th EAC Heritage Management Symposium, Reykjavík, 25–27 March 2010" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/87563506/David_C_Cowley_ed_Remote_Sensing_for_Archaeological_Heritage_Management_Proceedings_of_the_11th_EAC_Heritage_Management_Symposium_Reykjav%C3%ADk_25_27_March_2010">David C. Cowley (ed.):Remote Sensing for Archaeological Heritage Management. Proceedings of the 11th EAC Heritage Management Symposium, Reykjavík, 25–27 March 2010</a></div><div class="wp-workCard_item"><span>Norwegian Archaeological Review</span><span>, 2012</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">In recent years the archaeological community has experienced an increasing interest in the use of...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">In recent years the archaeological community has experienced an increasing interest in the use of advanced techniques and methods. The archaeological toolbox has been expanded with some new techniques which were unknown just a few years ago and which have changed archaeological research and management or have the potential to do so. Other advanced techniques and methods have been in use in archaeology for decades but are being improved more or less continuously at present in terms of accuracy, quality and efficiency. Quite a few archaeologists and technicians are now involved in research and development projects with a focus on advanced technologies. In the wake of this development we are faced with an increasing interest among archaeologists in putting new technical approaches to use in their work, whether it is within research or cultural heritage management. This increasing interest is among other things evident through the many seminars and conferences which have been held throughout the world in recent years with a focus on advanced remote sensing and non-destructive methods in archaeology. The use of remote sensing techniques like satellite, LIDAR, and multiand hyper-spectral scanning is becoming more and more common, and this is also the case with ground-based geophysical prospection such as ground penetrating radar and magnetometry. In March 2010 the symposium Remote Sensing for Archaeological Heritage Management – which was the 11th Europae Archaeologiae Consilium (EAC) Heritage Management Symposium – was held in Reykjavik in Iceland. The aim of the symposium was to throw light on the significance of identifying, documenting and monitoring cultural heritage by the use of remote sensing methods. The symposium resulted in a comprehensive book (hereafter referred to in the text as the ‘EAC volume’) presenting all the papers that were given at the meeting and which was published less than one year after the event was held cooperatively by the EAC and the Aerial Archaeological Research Group (AARG). In addition to a foreword (Wollák), acknowledgements (Cowley) and an opening address (Jakobsdóttir) the volume contains 25 articles arranged into four chapters: 1. ‘Making remote sensing work for archaeological heritage management’, 2. ‘New environments and technologies: challenges and potential’, 3. ‘Exploring the archaeological resource base’, and finally 4. ‘Using remote sensed data: interpretation and understanding’. The articles cover the use of aerial photography, satellite imagery, LIDAR, multiand hyper-spectral scanning, sonars and geophysical surveys (magnetometer and radar). The volume as such gives a good overview of the state of the art as well as the potential that the use of these remote sensing techniques offers to both terrestrial and marine archaeology. As the book title indicates this is done with a certain focus on cultural heritage management (Cowley and Sigurðardóttir). The book is in quarto format, which is appropriate when maps, photographs and other figures are a particularly important part of what is communicated. Generally, resolution and quality are well taken care of in this publication in other respects, but ideally some of the figures could have been shown on a more readable scale. In addition quite a lot of the maps and images are missing a scale bar, thus challenging the reader’s ability to easily grasp the content. The term remote sensing is in this case used as a collective term for all methods represented – REVIEWS Norwegian Archaeological Review, Vol. 45, No. 2, 2012</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="87563506"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="87563506"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 87563506; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=87563506]").text(description); $(".js-view-count[data-work-id=87563506]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 87563506; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='87563506']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 87563506, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (false){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "-1" } } $('.js-work-strip[data-work-id=87563506]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":87563506,"title":"David C. 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In the wake of this development we are faced with an increasing interest among archaeologists in putting new technical approaches to use in their work, whether it is within research or cultural heritage management. This increasing interest is among other things evident through the many seminars and conferences which have been held throughout the world in recent years with a focus on advanced remote sensing and non-destructive methods in archaeology. The use of remote sensing techniques like satellite, LIDAR, and multiand hyper-spectral scanning is becoming more and more common, and this is also the case with ground-based geophysical prospection such as ground penetrating radar and magnetometry. In March 2010 the symposium Remote Sensing for Archaeological Heritage Management – which was the 11th Europae Archaeologiae Consilium (EAC) Heritage Management Symposium – was held in Reykjavik in Iceland. The aim of the symposium was to throw light on the significance of identifying, documenting and monitoring cultural heritage by the use of remote sensing methods. The symposium resulted in a comprehensive book (hereafter referred to in the text as the ‘EAC volume’) presenting all the papers that were given at the meeting and which was published less than one year after the event was held cooperatively by the EAC and the Aerial Archaeological Research Group (AARG). In addition to a foreword (Wollák), acknowledgements (Cowley) and an opening address (Jakobsdóttir) the volume contains 25 articles arranged into four chapters: 1. ‘Making remote sensing work for archaeological heritage management’, 2. ‘New environments and technologies: challenges and potential’, 3. ‘Exploring the archaeological resource base’, and finally 4. ‘Using remote sensed data: interpretation and understanding’. The articles cover the use of aerial photography, satellite imagery, LIDAR, multiand hyper-spectral scanning, sonars and geophysical surveys (magnetometer and radar). The volume as such gives a good overview of the state of the art as well as the potential that the use of these remote sensing techniques offers to both terrestrial and marine archaeology. As the book title indicates this is done with a certain focus on cultural heritage management (Cowley and Sigurðardóttir). The book is in quarto format, which is appropriate when maps, photographs and other figures are a particularly important part of what is communicated. Generally, resolution and quality are well taken care of in this publication in other respects, but ideally some of the figures could have been shown on a more readable scale. In addition quite a lot of the maps and images are missing a scale bar, thus challenging the reader’s ability to easily grasp the content. The term remote sensing is in this case used as a collective term for all methods represented – REVIEWS Norwegian Archaeological Review, Vol. 45, No. 2, 2012","internal_url":"https://www.academia.edu/87563506/David_C_Cowley_ed_Remote_Sensing_for_Archaeological_Heritage_Management_Proceedings_of_the_11th_EAC_Heritage_Management_Symposium_Reykjav%C3%ADk_25_27_March_2010","translated_internal_url":"","created_at":"2022-09-29T08:16:11.017-07:00","preview_url":null,"current_user_can_edit":null,"current_user_is_owner":null,"owner_id":2845169,"coauthors_can_edit":true,"document_type":"paper","co_author_tags":[],"downloadable_attachments":[],"slug":"David_C_Cowley_ed_Remote_Sensing_for_Archaeological_Heritage_Management_Proceedings_of_the_11th_EAC_Heritage_Management_Symposium_Reykjavík_25_27_March_2010","translated_slug":"","page_count":null,"language":"en","content_type":"Work","owner":{"id":2845169,"first_name":"Ole","middle_initials":null,"last_name":"Risbøl","page_name":"OleRisbøl","domain_name":"ntnu-no","created_at":"2012-12-04T19:22:46.770-08:00","display_name":"Ole Risbøl","url":"https://ntnu-no.academia.edu/OleRisb%C3%B8l"},"attachments":[],"research_interests":[{"id":128,"name":"History","url":"https://www.academia.edu/Documents/in/History"},{"id":392,"name":"Archaeology","url":"https://www.academia.edu/Documents/in/Archaeology"},{"id":850149,"name":"Norwegian Archaeological Review","url":"https://www.academia.edu/Documents/in/Norwegian_Archaeological_Review"}],"urls":[]}, dispatcherData: dispatcherData }); $(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="65191688"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/65191688/Eldre_jernalders_tj%C3%A6reproduksjon_ut_av_t%C3%A5ken_Om_tidlig_norsk_tj%C3%A6reproduksjon_med_utgangspunkt_i_et_funn_p%C3%A5_Aver%C3%B8y_i_M%C3%B8re_og_Romsdal"><img alt="Research paper thumbnail of Eldre jernalders tjæreproduksjon ut av tåken. Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal" class="work-thumbnail" src="https://attachments.academia-assets.com/76897375/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/65191688/Eldre_jernalders_tj%C3%A6reproduksjon_ut_av_t%C3%A5ken_Om_tidlig_norsk_tj%C3%A6reproduksjon_med_utgangspunkt_i_et_funn_p%C3%A5_Aver%C3%B8y_i_M%C3%B8re_og_Romsdal">Eldre jernalders tjæreproduksjon ut av tåken. Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a> and <a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/Eystein%C3%98stmoe">Eystein Østmoe</a></span></div><div class="wp-workCard_item"><span>Viking. Norsk Arkeologisk Årbok</span><span>, 2021</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">For many years it has been well known that tar was an available commodity in the Norwegian Iron A...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">For many years it has been well known that tar was an available commodity in the Norwegian Iron Age, butuntil recently no production site or installation for such production was known. In this paper two recently<br />discovered tar production sites, in south-eastern and mid-Norway respectively, are presented and discussed.<br />Both are clay-lined funnel-shaped pits that are dug into the ground with an upper part where the wood<br />was stacked and lit, and a lower part where the tar was collected in a container. The Norwegian tar production<br />pits are similar to contemporary Swedish ones found in large numbers in mid-Sweden. The type is also<br />known from the eastern part of Central Europe where they came into use a few centuries later than in<br />Scandinavia.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="63c2b9e6df3a906e41c65066178e945b" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":76897375,"asset_id":65191688,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/76897375/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="65191688"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="65191688"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 65191688; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=65191688]").text(description); $(".js-view-count[data-work-id=65191688]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 65191688; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='65191688']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 65191688, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "63c2b9e6df3a906e41c65066178e945b" } } $('.js-work-strip[data-work-id=65191688]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":65191688,"title":"Eldre jernalders tjæreproduksjon ut av tåken. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="42898796"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/42898796/Employment_Utilization_and_Development_of_Airborne_Laser_Scanning_in_Fenno_Scandinavian_Archaeology_a_Review"><img alt="Research paper thumbnail of Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology–a Review" class="work-thumbnail" src="https://attachments.academia-assets.com/63146464/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/42898796/Employment_Utilization_and_Development_of_Airborne_Laser_Scanning_in_Fenno_Scandinavian_Archaeology_a_Review">Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology–a Review</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://umu.academia.edu/DanielLanghammer">Daniel Langhammer</a>, <a class="" data-click-track="profile-work-strip-authors" href="https://oulu.academia.edu/OulaSeitsonen">Oula Seitsonen</a>, and <a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a></span></div><div class="wp-workCard_item"><span>MDPI</span><span>, 2020</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeol...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeology in the North over the period 2005-2019. Almost two decades have passed since ALS first emerged as a potential tool to add to the archaeologist's toolbox. Soon after, it attracted the attention of researchers within archaeological communities engaged with remote sensing in the Fenno-Scandinavian region. The first archaeological ALS projects gave immediate good results and led to further use, research, and development through new projects that followed various tracks. The bulk of the research and development focused on studying how well-suited ALS is for identifying, mapping, and documenting archaeological features in outfield land, mainly in forested areas. The poor situation in terms of lack of information on archaeological records in outfield areas has been challenging for research and especially for cultural heritage management for a long period of time. Consequently, an obvious direction was to study how ALS-based mapping of cultural features in forests could help to improve the survey situation. This led to various statistical analyses and studies covering research questions related to for instance effects on detection success of laser pulse density, and the size and shape of the targeted features. Substantial research has also been devoted to the development and assessment of semi-automatic detection of archaeological features based on the use of algorithms. This has been studied as an alternative approach to human desk-based visual analyses and interpretations of ALS data. This approach has considerable potential for detecting sites over large regions such as the vast roadless and unbuilt wilderness regions of northern Fennoscandia, and has proven highly successful. In addition, the current review presents how ALS has been employed for monitoring purposes and for landscape studies, including how it can influence landscape understanding. Finally, the most recent advance within ALS research and development has been discussed: testing of the use of drones for data acquisition. In conclusion, aspects related to the utilization of ALS in archaeological research and cultural heritage management are summarized and discussed, together with thoughts about future perspectives.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="d2696fe6707371bdfaf8557faa70c10f" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":63146464,"asset_id":42898796,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/63146464/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="42898796"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="42898796"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 42898796; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=42898796]").text(description); $(".js-view-count[data-work-id=42898796]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 42898796; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='42898796']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 42898796, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "d2696fe6707371bdfaf8557faa70c10f" } } $('.js-work-strip[data-work-id=42898796]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":42898796,"title":"Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology–a Review","translated_title":"","metadata":{"abstract":"This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeology in the North over the period 2005-2019. 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This led to various statistical analyses and studies covering research questions related to for instance effects on detection success of laser pulse density, and the size and shape of the targeted features. Substantial research has also been devoted to the development and assessment of semi-automatic detection of archaeological features based on the use of algorithms. This has been studied as an alternative approach to human desk-based visual analyses and interpretations of ALS data. This approach has considerable potential for detecting sites over large regions such as the vast roadless and unbuilt wilderness regions of northern Fennoscandia, and has proven highly successful. In addition, the current review presents how ALS has been employed for monitoring purposes and for landscape studies, including how it can influence landscape understanding. Finally, the most recent advance within ALS research and development has been discussed: testing of the use of drones for data acquisition. 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This has been studied as an alternative approach to human desk-based visual analyses and interpretations of ALS data. This approach has considerable potential for detecting sites over large regions such as the vast roadless and unbuilt wilderness regions of northern Fennoscandia, and has proven highly successful. In addition, the current review presents how ALS has been employed for monitoring purposes and for landscape studies, including how it can influence landscape understanding. Finally, the most recent advance within ALS research and development has been discussed: testing of the use of drones for data acquisition. 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href="https://www.academia.edu/78399541/Sensing_Archaeology_in_the_North_The_Use_of_Non_Destructive_Geophysical_and_Remote_Sensing_Methods_in_Archaeology_in_Scandinavian_and_North_Atlantic_Territories"><img alt="Research paper thumbnail of Sensing Archaeology in the North: The Use of Non-Destructive Geophysical and Remote Sensing Methods in Archaeology in Scandinavian and North Atlantic Territories" class="work-thumbnail" src="https://attachments.academia-assets.com/85460648/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/78399541/Sensing_Archaeology_in_the_North_The_Use_of_Non_Destructive_Geophysical_and_Remote_Sensing_Methods_in_Archaeology_in_Scandinavian_and_North_Atlantic_Territories">Sensing Archaeology in the North: The Use of Non-Destructive Geophysical and Remote Sensing Methods in Archaeology in Scandinavian and North Atlantic Territories</a></div><div class="wp-workCard_item"><span>Remote Sensing</span><span>, 2020</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">In August 2018, a group of experts working with terrestrial/marine geophysics and remote sensing ...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">In August 2018, a group of experts working with terrestrial/marine geophysics and remote sensing methods to explore archaeological sites in Denmark, Finland, Norway, Scotland and Sweden gathered together for the first time at the Workshop ‘Sensing Archaeology in The North’. The goal was to exchange experiences, discuss challenges, and consider future directions for further developing these methods and strategies for their use in archaeology. After the event, this special journal issue was arranged to publish papers that are based on the workshop presentations, but also to incorporate work that is produced by other researchers in the field. This paper closes the special issue and further aims to provide current state-of-the-art for the methods represented by the workshop. Here, we introduce the aspects that inspired the organisation of the meeting, a summary of the 12 presentations and eight paper contributions, as well as a discussion about the main outcomes of the workshop roundtab...</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="085a0b14293be68448f425aef0289382" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":85460648,"asset_id":78399541,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/85460648/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="78399541"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="78399541"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 78399541; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=78399541]").text(description); $(".js-view-count[data-work-id=78399541]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 78399541; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='78399541']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 78399541, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "085a0b14293be68448f425aef0289382" } } $('.js-work-strip[data-work-id=78399541]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":78399541,"title":"Sensing Archaeology in the North: The Use of Non-Destructive Geophysical and Remote Sensing Methods in Archaeology in Scandinavian and North Atlantic Territories","translated_title":"","metadata":{"abstract":"In August 2018, a group of experts working with terrestrial/marine geophysics and remote sensing methods to explore archaeological sites in Denmark, Finland, Norway, Scotland and Sweden gathered together for the first time at the Workshop ‘Sensing Archaeology in The North’. 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Science","url":"https://www.academia.edu/Documents/in/Computer_Science"},{"id":1252,"name":"Remote Sensing","url":"https://www.academia.edu/Documents/in/Remote_Sensing"},{"id":1282,"name":"Photogrammetry","url":"https://www.academia.edu/Documents/in/Photogrammetry"},{"id":3316,"name":"Archaeological Science","url":"https://www.academia.edu/Documents/in/Archaeological_Science"},{"id":23618,"name":"Remote Sensing (Archaeology)","url":"https://www.academia.edu/Documents/in/Remote_Sensing_Archaeology_"},{"id":24244,"name":"Archaeological Prospection","url":"https://www.academia.edu/Documents/in/Archaeological_Prospection"},{"id":24591,"name":"Archaeological Geophysics","url":"https://www.academia.edu/Documents/in/Archaeological_Geophysics"},{"id":44632,"name":"Marine Archaeology","url":"https://www.academia.edu/Documents/in/Marine_Archaeology"},{"id":356597,"name":"Marine Geophysics (Archaeology)","url":"https://www.academia.edu/Documents/in/Marine_Geophysics_Archaeology_"},{"id":538033,"name":"LiDAR for Archaeology","url":"https://www.academia.edu/Documents/in/LiDAR_for_Archaeology"}],"urls":[{"id":20194436,"url":"https://www.mdpi.com/2072-4292/12/18/3102/pdf"}]}, dispatcherData: dispatcherData }); $(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="37225119"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/37225119/LiDAR_from_drones_employed_for_mapping_archaeology_Potential_benefits_and_challenges"><img alt="Research paper thumbnail of LiDAR from drones employed for mapping archaeology – Potential, benefits and challenges" class="work-thumbnail" src="https://attachments.academia-assets.com/57176255/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/37225119/LiDAR_from_drones_employed_for_mapping_archaeology_Potential_benefits_and_challenges">LiDAR from drones employed for mapping archaeology – Potential, benefits and challenges</a></div><div class="wp-workCard_item"><span>Archaeological Prospection</span><span>, 2018</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">Although the use of both drones and LiDAR (light detection and ranging) has become common in arch...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">Although the use of both drones and LiDAR (light detection and ranging) has become common in archaeology in recent years, LiDAR scanning from drones is still in its infancy. The technological development related to drones as well as laser scanner instruments has gradually reached the point where these can be integrated. In this paper we present the results from a test where the applicability of LiDAR used from a drone was studied. The study had two objectives – both based on comparative studies: (i) whether LiDAR from drones represents an improvement in terms of detection success; and (ii) whether LiDAR from drones can increase the quality of the documentation of archaeological features and their physical properties based on remote sensing. A modest improvement of detection success was found, but was not as convincing as one would perhaps expect given the relatively large increase in terms of ground points. This has led us to the conclusion that very dense vegetation obstructs laser beams from reaching all the way to the bare earth. As regards accuracy in documenting archaeological features, the study showed more significant improvements. The last part of the paper is dedicated to a discussion of the pros and cons of using LiDAR from drones compared to conventional airborne laser scanning from aeroplanes or helicopters. The main advantages concern flexibility, low flight altitude and small laser footprint as well as the advantages of a far‐reaching field of view. The disadvantages are related to price, battery capacity, size of area and especially the requirement of line of sight between the drone operator and the drone, a fact that restricts the efficiency in terms of mapping large areas. Nevertheless, the final conclusion is that LiDAR from drones has the potential to make a substantial improvement to archaeological remote sensing.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="0f8145d73ce0eb5de14179c75732342c" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":57176255,"asset_id":37225119,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/57176255/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="37225119"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="37225119"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 37225119; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=37225119]").text(description); $(".js-view-count[data-work-id=37225119]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 37225119; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='37225119']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 37225119, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "0f8145d73ce0eb5de14179c75732342c" } } $('.js-work-strip[data-work-id=37225119]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":37225119,"title":"LiDAR from drones employed for mapping archaeology – Potential, benefits and challenges","translated_title":"","metadata":{"doi":"10.1002/arp.1712","abstract":"Although the use of both drones and LiDAR (light detection and ranging) has become common in archaeology in recent years, LiDAR scanning from drones is still in its infancy. The technological development related to drones as well as laser scanner instruments has gradually reached the point where these can be integrated. In this paper we present the results from a test where the applicability of LiDAR used from a drone was studied. The study had two objectives – both based on comparative studies: (i) whether LiDAR from drones represents an improvement in terms of detection success; and (ii) whether LiDAR from drones can increase the quality of the documentation of archaeological features and their physical properties based on remote sensing. A modest improvement of detection success was found, but was not as convincing as one would perhaps expect given the relatively large increase in terms of ground points. This has led us to the conclusion that very dense vegetation obstructs laser beams from reaching all the way to the bare earth. As regards accuracy in documenting archaeological features, the study showed more significant improvements. The last part of the paper is dedicated to a discussion of the pros and cons of using LiDAR from drones compared to conventional airborne laser scanning from aeroplanes or helicopters. The main advantages concern flexibility, low flight altitude and small laser footprint as well as the advantages of a far‐reaching field of view. The disadvantages are related to price, battery capacity, size of area and especially the requirement of line of sight between the drone operator and the drone, a fact that restricts the efficiency in terms of mapping large areas. 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The study had two objectives – both based on comparative studies: (i) whether LiDAR from drones represents an improvement in terms of detection success; and (ii) whether LiDAR from drones can increase the quality of the documentation of archaeological features and their physical properties based on remote sensing. A modest improvement of detection success was found, but was not as convincing as one would perhaps expect given the relatively large increase in terms of ground points. This has led us to the conclusion that very dense vegetation obstructs laser beams from reaching all the way to the bare earth. As regards accuracy in documenting archaeological features, the study showed more significant improvements. The last part of the paper is dedicated to a discussion of the pros and cons of using LiDAR from drones compared to conventional airborne laser scanning from aeroplanes or helicopters. The main advantages concern flexibility, low flight altitude and small laser footprint as well as the advantages of a far‐reaching field of view. The disadvantages are related to price, battery capacity, size of area and especially the requirement of line of sight between the drone operator and the drone, a fact that restricts the efficiency in terms of mapping large areas. Nevertheless, the final conclusion is that LiDAR from drones has the potential to make a substantial improvement to archaeological remote sensing.","internal_url":"https://www.academia.edu/37225119/LiDAR_from_drones_employed_for_mapping_archaeology_Potential_benefits_and_challenges","translated_internal_url":"","created_at":"2018-08-12T23:22:11.887-07:00","preview_url":null,"current_user_can_edit":null,"current_user_is_owner":null,"owner_id":2845169,"coauthors_can_edit":true,"document_type":"paper","co_author_tags":[],"downloadable_attachments":[{"id":57176255,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/57176255/thumbnails/1.jpg","file_name":"Risb-l_et_al-2018-Archaeological_Prospection.pdf","download_url":"https://www.academia.edu/attachments/57176255/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"LiDAR_from_drones_employed_for_mapping_a.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/57176255/Risb-l_et_al-2018-Archaeological_Prospection-libre.pdf?1534141706=\u0026response-content-disposition=attachment%3B+filename%3DLiDAR_from_drones_employed_for_mapping_a.pdf\u0026Expires=1732876559\u0026Signature=MJKYoDf4uShJxkaCaKiD~Oe10zQ42MEwa1HbPVf1ZauUCbpu38ddDdQFUak8ckEszQCalF50yOTOUf6M7sEt1Sy2cmzgVFIv1RgAzSJfRUrtvn8~cUSoKoiTl0dGaCRxhQD0vsUvgefZ1Zd2FXo8~K7sL6JYbfckoeG-PVqkgxNbcBYXUhiFmmNDxBs-TPsdIiP05CBZQF74NVGiyORcRHsTvlWFDl~RRZaUeSH3zy8Cr8pcxEjUG6cP5PESOHirMuxnjVm3sJdH0W9Gi2RGIoWRvGAMOxmnh5-h3GTcor-yXV7oHaWOl0WUy17sJFFd6I662x1BHqYS9wQryRdduA__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"slug":"LiDAR_from_drones_employed_for_mapping_archaeology_Potential_benefits_and_challenges","translated_slug":"","page_count":10,"language":"en","content_type":"Work","owner":{"id":2845169,"first_name":"Ole","middle_initials":null,"last_name":"Risbøl","page_name":"OleRisbøl","domain_name":"ntnu-no","created_at":"2012-12-04T19:22:46.770-08:00","display_name":"Ole Risbøl","url":"https://ntnu-no.academia.edu/OleRisb%C3%B8l"},"attachments":[{"id":57176255,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/57176255/thumbnails/1.jpg","file_name":"Risb-l_et_al-2018-Archaeological_Prospection.pdf","download_url":"https://www.academia.edu/attachments/57176255/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"LiDAR_from_drones_employed_for_mapping_a.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/57176255/Risb-l_et_al-2018-Archaeological_Prospection-libre.pdf?1534141706=\u0026response-content-disposition=attachment%3B+filename%3DLiDAR_from_drones_employed_for_mapping_a.pdf\u0026Expires=1732876559\u0026Signature=MJKYoDf4uShJxkaCaKiD~Oe10zQ42MEwa1HbPVf1ZauUCbpu38ddDdQFUak8ckEszQCalF50yOTOUf6M7sEt1Sy2cmzgVFIv1RgAzSJfRUrtvn8~cUSoKoiTl0dGaCRxhQD0vsUvgefZ1Zd2FXo8~K7sL6JYbfckoeG-PVqkgxNbcBYXUhiFmmNDxBs-TPsdIiP05CBZQF74NVGiyORcRHsTvlWFDl~RRZaUeSH3zy8Cr8pcxEjUG6cP5PESOHirMuxnjVm3sJdH0W9Gi2RGIoWRvGAMOxmnh5-h3GTcor-yXV7oHaWOl0WUy17sJFFd6I662x1BHqYS9wQryRdduA__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"research_interests":[],"urls":[]}, dispatcherData: dispatcherData }); $(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="35669017"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" rel="nofollow" href="https://www.academia.edu/35669017/Views_use_and_reception_of_visualisations_of_development_proposals_impacting_cultural_heritage"><img alt="Research paper thumbnail of Views, use and reception of visualisations of development proposals impacting cultural heritage" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/35669017/Views_use_and_reception_of_visualisations_of_development_proposals_impacting_cultural_heritage">Views, use and reception of visualisations of development proposals impacting cultural heritage</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/GroJerp%C3%A5sen">Gro B Jerpåsen</a> and <a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a></span></div><div class="wp-workCard_item"><span>International Journal of Heritage Studies</span><span>, 2017</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">Visualisations of land-use projects have become an important part of the planning process. Using ...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">Visualisations of land-use projects have become an important part of the planning process. Using a survey of heritage professionals’ attitudes towards visualisations as a starting point, this article addresses tensions between the expressed usefulness of visualisations and critical attitudes towards the lack of ‘objectivity’ of visual representation and the risk of manipulation for strategic purposes. Moving from the survey, the article discusses how visual representations of development proposals became part of a Norwegian public dispute over the expansion of a shopping centre in a historic town. Furthermore, our aim is to introduce a social semiotic approach for analysing visualisations at historic sites. Finally, we discuss some theoretical implications of negotiating visualisations, with emphasis on the recent debate about representational and non-representational theories in heritage studies.<br /><br />Keywords: Visualisations, heritage, land-use planning, social semiotics, objectivity, non-representational theory</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="35669017"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="35669017"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 35669017; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=35669017]").text(description); $(".js-view-count[data-work-id=35669017]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 35669017; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='35669017']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 35669017, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (false){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "-1" } } $('.js-work-strip[data-work-id=35669017]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":35669017,"title":"Views, use and reception of visualisations of development proposals impacting cultural heritage","translated_title":"","metadata":{"doi":"10.1080/13527258.2017.1378898","issue":"4","volume":"24","abstract":"Visualisations of land-use projects have become an important part of the planning process. 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Håndbok</a></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">Samarbeidsprosjekt mellom Norsk regnesentral, NIKU, Kulturhistorisk museum, Vestfold fylkeskommun...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">Samarbeidsprosjekt mellom Norsk regnesentral, NIKU, Kulturhistorisk museum, Vestfold fylkeskommune, Oppland fylkeskommune og Sor-Trondelag fylkeskommune. Forfattet av NIKU. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="31623170"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" rel="nofollow" href="https://www.academia.edu/31623170/Approaching_a_Mortuary_Monument_Landscape_using_GIS_and_ALS_Generated_3D_Models"><img alt="Research paper thumbnail of Approaching a Mortuary Monument Landscape using GIS- and ALS- Generated 3D Models" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/31623170/Approaching_a_Mortuary_Monument_Landscape_using_GIS_and_ALS_Generated_3D_Models">Approaching a Mortuary Monument Landscape using GIS- and ALS- Generated 3D Models</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/GJerp%C3%A5sen">Gro B Jerpåsen</a> and <a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a></span></div><div class="wp-workCard_item"><span>International Journal of Heritage in the Digital Era</span><span>, 2013</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="31623170"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="31623170"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 31623170; 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="78399577"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" rel="nofollow" href="https://www.academia.edu/78399577/Interpreting_cultural_remains_in_airborne_laser_scanning_generated_digital_terrain_models_effects_of_size_and_shape_on_detection_success_rates"><img alt="Research paper thumbnail of Interpreting cultural remains in airborne laser scanning generated digital terrain models: effects of size and shape on detection success rates" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/78399577/Interpreting_cultural_remains_in_airborne_laser_scanning_generated_digital_terrain_models_effects_of_size_and_shape_on_detection_success_rates">Interpreting cultural remains in airborne laser scanning generated digital terrain models: effects of size and shape on detection success rates</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a> and <a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/Hans%C3%98rka">Hans Ørka</a></span></div><div class="wp-workCard_item"><span>Journal of Archaeological Science</span><span>, 2013</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">ABSTRACT a b s t r a c t In this study, detection success rates were evaluated for cultural remai...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">ABSTRACT a b s t r a c t In this study, detection success rates were evaluated for cultural remains that were detected manually based on interpretation of digital terrain models (DTM) derived from airborne laser scanning data and with a resolution of 1, 5 and 10 points m À2 . The group of cultural remains included charcoal kilns, charcoal pits, hollow-roads, various pits, house foundations, tar kilns, grave mounds and pit-falls. The effects on the interpretation success of different types of cultural remains and their physical properties were studied: size, shape and elevation difference showing that the detection success rates varied considerably. The main tendency was that large cultural remains with clear geometrical shape (ovals and circles) and large elevation difference were much more successfully detected and classified compared to the smaller ones, especially those without a clear geometrical shape. The study also showed that it was the identification of the larger structures which profited most from an increased resolution of the DTM, and it was of no help to increase resolution in order to improve the identification of the irregularly shaped cultural remains.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="78399577"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="78399577"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 78399577; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=78399577]").text(description); $(".js-view-count[data-work-id=78399577]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 78399577; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='78399577']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 78399577, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (false){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "-1" } } $('.js-work-strip[data-work-id=78399577]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":78399577,"title":"Interpreting cultural remains in airborne laser scanning generated digital terrain models: effects of size and shape on detection success rates","translated_title":"","metadata":{"abstract":"ABSTRACT a b s t r a c t In this study, detection success rates were evaluated for cultural remains that were detected manually based on interpretation of digital terrain models (DTM) derived from airborne laser scanning data and with a resolution of 1, 5 and 10 points m À2 . The group of cultural remains included charcoal kilns, charcoal pits, hollow-roads, various pits, house foundations, tar kilns, grave mounds and pit-falls. The effects on the interpretation success of different types of cultural remains and their physical properties were studied: size, shape and elevation difference showing that the detection success rates varied considerably. The main tendency was that large cultural remains with clear geometrical shape (ovals and circles) and large elevation difference were much more successfully detected and classified compared to the smaller ones, especially those without a clear geometrical shape. The study also showed that it was the identification of the larger structures which profited most from an increased resolution of the DTM, and it was of no help to increase resolution in order to improve the identification of the irregularly shaped cultural remains.","publisher":"Elsevier BV","publication_date":{"day":null,"month":null,"year":2013,"errors":{}},"publication_name":"Journal of Archaeological Science"},"translated_abstract":"ABSTRACT a b s t r a c t In this study, detection success rates were evaluated for cultural remains that were detected manually based on interpretation of digital terrain models (DTM) derived from airborne laser scanning data and with a resolution of 1, 5 and 10 points m À2 . The group of cultural remains included charcoal kilns, charcoal pits, hollow-roads, various pits, house foundations, tar kilns, grave mounds and pit-falls. 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Cowley (ed.): Remote Sensing for Archaeological Heritage Management. Proceedings of the 11th EAC Heritage Management Symposium, Reykjavík, 25-27 March 2010. EAC Occasional Paper No. 5. Occasional Publication of the Aerial Archaeology Research Group No. 3. EAC, Brussels 2011. 312 pp." class="work-thumbnail" src="https://attachments.academia-assets.com/37119331/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/6723212/Review_of_D_C_Cowley_ed_Remote_Sensing_for_Archaeological_Heritage_Management_Proceedings_of_the_11th_EAC_Heritage_Management_Symposium_Reykjav%C3%ADk_25_27_March_2010_EAC_Occasional_Paper_No_5_Occasional_Publication_of_the_Aerial_Archaeology_Research_Group_No_3_EAC_Brussels_2011_312_pp">Review of D.C. Cowley (ed.): Remote Sensing for Archaeological Heritage Management. Proceedings of the 11th EAC Heritage Management Symposium, Reykjavík, 25-27 March 2010. EAC Occasional Paper No. 5. Occasional Publication of the Aerial Archaeology Research Group No. 3. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> </div><div class="profile--tab_content_container js-tab-pane tab-pane" data-section-id="326702" id="papers"><div class="js-work-strip profile--work_container" data-work-id="109150973"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/109150973/UAV_LiDAR_in_coastal_environments_Archaeological_case_studies_from_Tierra_del_Fuego_Argentina_and_Vega_Norway"><img alt="Research paper thumbnail of UAV LiDAR in coastal environments: Archaeological case studies from Tierra del Fuego, Argentina, and Vega, Norway" class="work-thumbnail" src="https://attachments.academia-assets.com/107359103/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/109150973/UAV_LiDAR_in_coastal_environments_Archaeological_case_studies_from_Tierra_del_Fuego_Argentina_and_Vega_Norway">UAV LiDAR in coastal environments: Archaeological case studies from Tierra del Fuego, Argentina, and Vega, Norway</a></div><div class="wp-workCard_item"><span>Archaeological Prospection</span><span>, 2023</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">LiDAR has become fairly integrated into archaeological practice at a global scale. This has gradu...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">LiDAR has become fairly integrated into archaeological practice at a global scale. This has gradually evolved to include UAV LiDAR. Nevertheless, considerable biases remain, including with regard to geographical regions, chronological periods, feature types and environments. At present, few studies of coastal environments exist, despite the fact that LiDAR-and UAV LiDAR in particular-has the obvious advantages of flexibility and time efficiency in such archaeologically rich but logistically challenging environments. In this paper, we compare the results of UAV LiDAR surveys with records from previous ground surveys in two case studies from coastal environments on opposite sides of the globe. Case Study I of shell middens located within approximately 3 km 2 around Cambaceres Bay involved the first collection of LiDAR data from Tierra del Fuego, Argentina. Case Study II covered approximately 3 km 2 of the island of Vega, Northern Norway, and is among the pioneering LiDAR studies of Mesolithic house pits. The detection success rate was fairly good for Cambaceres-69% of 1240 recorded structures were identified on LiDAR-and above expected for Vega, with 81% of 51 recorded house pits identified on LiDAR. In Cambaceres, the main challenges were dense and low vegetation and identifying small middens. Possible new identifications of archaeological features were made in both areas: subtle depressions interpreted as dwelling foundations in Cambaceres and house pits on Vega. We conclude that UAV LiDAR can contribute to coastal archaeology and that it has added values besides making new identifications, being both flexible and time efficient. An example pertains to the possible identification of a practice that has not previously been proved archaeologically in Tierra del Fuegomore thorough site preparation prior to the construction of the dwellings-which in turn raises new questions.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="d79ba60009dd03c9415be9fcc289e675" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":107359103,"asset_id":109150973,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/107359103/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="109150973"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="109150973"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 109150973; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=109150973]").text(description); $(".js-view-count[data-work-id=109150973]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 109150973; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='109150973']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 109150973, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "d79ba60009dd03c9415be9fcc289e675" } } $('.js-work-strip[data-work-id=109150973]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":109150973,"title":"UAV LiDAR in coastal environments: Archaeological case studies from Tierra del Fuego, Argentina, and Vega, Norway","translated_title":"","metadata":{"doi":"10.1002/arp.1918","abstract":"LiDAR has become fairly integrated into archaeological practice at a global scale. 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In this paper, we compare the results of UAV LiDAR surveys with records from previous ground surveys in two case studies from coastal environments on opposite sides of the globe. Case Study I of shell middens located within approximately 3 km 2 around Cambaceres Bay involved the first collection of LiDAR data from Tierra del Fuego, Argentina. Case Study II covered approximately 3 km 2 of the island of Vega, Northern Norway, and is among the pioneering LiDAR studies of Mesolithic house pits. The detection success rate was fairly good for Cambaceres-69% of 1240 recorded structures were identified on LiDAR-and above expected for Vega, with 81% of 51 recorded house pits identified on LiDAR. In Cambaceres, the main challenges were dense and low vegetation and identifying small middens. Possible new identifications of archaeological features were made in both areas: subtle depressions interpreted as dwelling foundations in Cambaceres and house pits on Vega. We conclude that UAV LiDAR can contribute to coastal archaeology and that it has added values besides making new identifications, being both flexible and time efficient. An example pertains to the possible identification of a practice that has not previously been proved archaeologically in Tierra del Fuegomore thorough site preparation prior to the construction of the dwellings-which in turn raises new questions.","internal_url":"https://www.academia.edu/109150973/UAV_LiDAR_in_coastal_environments_Archaeological_case_studies_from_Tierra_del_Fuego_Argentina_and_Vega_Norway","translated_internal_url":"","created_at":"2023-11-14T00:51:01.996-08:00","preview_url":null,"current_user_can_edit":null,"current_user_is_owner":null,"owner_id":2845169,"coauthors_can_edit":true,"document_type":"paper","co_author_tags":[{"id":40537853,"work_id":109150973,"tagging_user_id":2845169,"tagged_user_id":4590296,"co_author_invite_id":null,"email":"h***k@ntnu.no","display_order":1,"name":"Hein B. Bjerck","title":"UAV LiDAR in coastal environments: Archaeological case studies from Tierra del Fuego, Argentina, and Vega, Norway"}],"downloadable_attachments":[{"id":107359103,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/107359103/thumbnails/1.jpg","file_name":"Risbøl_et_al_2023_A.P..pdf","download_url":"https://www.academia.edu/attachments/107359103/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"UAV_LiDAR_in_coastal_environments_Archae.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/107359103/Risb%C3%B8l_et_al_2023_A.P.-libre.pdf?1699955479=\u0026response-content-disposition=attachment%3B+filename%3DUAV_LiDAR_in_coastal_environments_Archae.pdf\u0026Expires=1732876557\u0026Signature=VbGpwqxGohpmNdZjPuMcroW97j8bPiPzsC6e81j307oLWqSww1V9wFjNmCNti385vHZecyBFgumh3AJL~mDiYeLW4ECytnNRPLvaW3kD1QWp7Xut3engZyUKsuP3XDDCaZhZocKfuqGcwd3k7TpztTLlWhGkLFXThlMGrDxXbetQucw7kICv-h4UotJJWfup~5vBVkGr3Eu7hgNMiGrxwThYm~3PDjkQv8QViq4WO6cjR8mcpmGM2ZD3LTfOQ4KHaGO0bY2wEogXuobvQ-zNkjyRUiI2fNomOBfxQgPG~VgI4brk4dmZcv54RYS3IwjRjONlTcieQCkstXF84RFmKQ__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"slug":"UAV_LiDAR_in_coastal_environments_Archaeological_case_studies_from_Tierra_del_Fuego_Argentina_and_Vega_Norway","translated_slug":"","page_count":25,"language":"en","content_type":"Work","owner":{"id":2845169,"first_name":"Ole","middle_initials":null,"last_name":"Risbøl","page_name":"OleRisbøl","domain_name":"ntnu-no","created_at":"2012-12-04T19:22:46.770-08:00","display_name":"Ole Risbøl","url":"https://ntnu-no.academia.edu/OleRisb%C3%B8l"},"attachments":[{"id":107359103,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/107359103/thumbnails/1.jpg","file_name":"Risbøl_et_al_2023_A.P..pdf","download_url":"https://www.academia.edu/attachments/107359103/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"UAV_LiDAR_in_coastal_environments_Archae.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/107359103/Risb%C3%B8l_et_al_2023_A.P.-libre.pdf?1699955479=\u0026response-content-disposition=attachment%3B+filename%3DUAV_LiDAR_in_coastal_environments_Archae.pdf\u0026Expires=1732876557\u0026Signature=VbGpwqxGohpmNdZjPuMcroW97j8bPiPzsC6e81j307oLWqSww1V9wFjNmCNti385vHZecyBFgumh3AJL~mDiYeLW4ECytnNRPLvaW3kD1QWp7Xut3engZyUKsuP3XDDCaZhZocKfuqGcwd3k7TpztTLlWhGkLFXThlMGrDxXbetQucw7kICv-h4UotJJWfup~5vBVkGr3Eu7hgNMiGrxwThYm~3PDjkQv8QViq4WO6cjR8mcpmGM2ZD3LTfOQ4KHaGO0bY2wEogXuobvQ-zNkjyRUiI2fNomOBfxQgPG~VgI4brk4dmZcv54RYS3IwjRjONlTcieQCkstXF84RFmKQ__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"research_interests":[],"urls":[]}, dispatcherData: dispatcherData }); $(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="85918598"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/85918598/Tj%C3%A6reproduksjon_i_myrmiler_en_s%C3%A6regen_midtnorsk_tradisjon_Tar_production_in_kilns_located_in_mires_a_specifically_mid_Norwegian_tradition"><img alt="Research paper thumbnail of Tjæreproduksjon i myrmiler - en særegen midtnorsk tradisjon. Tar production in kilns located in mires: a specifically mid-Norwegian tradition" class="work-thumbnail" src="https://attachments.academia-assets.com/90485254/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/85918598/Tj%C3%A6reproduksjon_i_myrmiler_en_s%C3%A6regen_midtnorsk_tradisjon_Tar_production_in_kilns_located_in_mires_a_specifically_mid_Norwegian_tradition">Tjæreproduksjon i myrmiler - en særegen midtnorsk tradisjon. Tar production in kilns located in mires: a specifically mid-Norwegian tradition</a></div><div class="wp-workCard_item"><span>Heimen. Tidsskrift for lokal og regional historie</span><span>, 2022</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="78d86c226d53c74b607f9d2b4902829c" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":90485254,"asset_id":85918598,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/90485254/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="85918598"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="85918598"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 85918598; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=85918598]").text(description); $(".js-view-count[data-work-id=85918598]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 85918598; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='85918598']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 85918598, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "78d86c226d53c74b607f9d2b4902829c" } } $('.js-work-strip[data-work-id=85918598]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":85918598,"title":"Tjæreproduksjon i myrmiler - en særegen midtnorsk tradisjon. Tar production in kilns located in mires: a specifically mid-Norwegian tradition","translated_title":"","metadata":{"grobid_abstract":"Det har blitt produsert tjaere i minst 2000 år her i landet. Gjennom historien har det vaert ulike måter å produsere tjaere på og arkeologiske undersøkelser har sammen med historiske kilder gitt oss et innblikk i de metoder og teknikker som er benyttet. Én måte å produsere tjaere på skiller seg avgjort ut, nemlig myrmilene som synes helt og holdent å vaere forbeholdt Midt-Norge. Å produsere tjaere i vannfylte groper i myr avviker klart teknisk og metodisk sett fra de andre fremstillingsmåtene selv om hensikten og produktet var det samme. Bruken av myrmiler foregikk parallelt med de øvrige fremstillingsformene, og vi vet at de var i bruk langt opp i nyere tid. C14-dateringer viser at myrmiletradisjonen kan ha røtter tilbake til vikingtid/tidlig middelalder, men det trengs flere dateringer før vi kan si at vi står på sikker grunn i det spørsmålet. Skriftlige kilder gir oss et innblikk i betydningen av midt-norsk tjaereproduksjonen betydning som rakk utover det lokale og regionale da tjaere var en viktig eksportartikkel. Fremstilling og eksport av tjaere synes å gå hånd i hånd med avvirkning og eksport av tømmer fra 1500-tallet og fremover. Kunnskapsstatusen på tjaeremiler i myr presenteres i artikkelen og avslutningsvis pekes det på noen viktige retninger for videre forskning på temaet.","publication_date":{"day":null,"month":null,"year":2022,"errors":{}},"publication_name":"Heimen. 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Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal" class="work-thumbnail" src="https://attachments.academia-assets.com/98991961/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/97345120/Eldre_jernalders_tj%C3%A6reproduksjon_ut_av_t%C3%A5ken_Om_tidlig_norsk_tj%C3%A6reproduksjon_med_utgangspunkt_i_et_funn_p%C3%A5_Aver%C3%B8y_i_M%C3%B8re_og_Romsdal">Eldre jernalders tjæreproduksjon ut av tåken. Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal</a></div><div class="wp-workCard_item"><span>Viking</span><span>, 2021</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">For many years it has been well known that tar was an available commodity in the Norwegian Iron A...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">For many years it has been well known that tar was an available commodity in the Norwegian Iron Age, but until recently no production site or installation for such production was known. In this paper two recently discovered tar production sites, in south-eastern and mid-Norway respectively, are presented and discussed. Both are clay-lined funnel-shaped pits that are dug into the ground with an upper part where the wood was stacked and lit, and a lower part where the tar was collected in a container. The Norwegian tar production pits are similar to contemporary Swedish ones found in large numbers in mid-Sweden. The type is also known from the eastern part of Central Europe where they came into use a few centuries later than in Scandinavia. </span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="bc92cada2d43cc8db91f173862a9b67d" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":98991961,"asset_id":97345120,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/98991961/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="97345120"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="97345120"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 97345120; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=97345120]").text(description); $(".js-view-count[data-work-id=97345120]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 97345120; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='97345120']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 97345120, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "bc92cada2d43cc8db91f173862a9b67d" } } $('.js-work-strip[data-work-id=97345120]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":97345120,"title":"Eldre jernalders tjæreproduksjon ut av tåken. Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal","translated_title":"","metadata":{"abstract":"For many years it has been well known that tar was an available commodity in the Norwegian Iron Age, but until recently no production site or installation for such production was known. In this paper two recently discovered tar production sites, in south-eastern and mid-Norway respectively, are presented and discussed. Both are clay-lined funnel-shaped pits that are dug into the ground with an upper part where the wood was stacked and lit, and a lower part where the tar was collected in a container. The Norwegian tar production pits are similar to contemporary Swedish ones found in large numbers in mid-Sweden. The type is also known from the eastern part of Central Europe where they came into use a few centuries later than in Scandinavia. ","publisher":"University of Oslo Library","publication_date":{"day":null,"month":null,"year":2021,"errors":{}},"publication_name":"Viking"},"translated_abstract":"For many years it has been well known that tar was an available commodity in the Norwegian Iron Age, but until recently no production site or installation for such production was known. In this paper two recently discovered tar production sites, in south-eastern and mid-Norway respectively, are presented and discussed. Both are clay-lined funnel-shaped pits that are dug into the ground with an upper part where the wood was stacked and lit, and a lower part where the tar was collected in a container. The Norwegian tar production pits are similar to contemporary Swedish ones found in large numbers in mid-Sweden. The type is also known from the eastern part of Central Europe where they came into use a few centuries later than in Scandinavia. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="63700470"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/63700470/Archaeological_Surveying_of_Subarctic_and_Arctic_Landscapes_Comparing_the_Performance_of_Airborne_Laser_Scanning_and_Remote_Sensing_Image_Data"><img alt="Research paper thumbnail of Archaeological Surveying of Subarctic and Arctic Landscapes: Comparing the Performance of Airborne Laser Scanning and Remote Sensing Image Data" class="work-thumbnail" src="https://attachments.academia-assets.com/76043435/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/63700470/Archaeological_Surveying_of_Subarctic_and_Arctic_Landscapes_Comparing_the_Performance_of_Airborne_Laser_Scanning_and_Remote_Sensing_Image_Data">Archaeological Surveying of Subarctic and Arctic Landscapes: Comparing the Performance of Airborne Laser Scanning and Remote Sensing Image Data</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a>, <a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/AlmaThuestad">Alma Thuestad</a>, <a class="" data-click-track="profile-work-strip-authors" href="https://uit.academia.edu/JanIngolfKleppe">Jan Ingolf Kleppe</a>, and <a class="" data-click-track="profile-work-strip-authors" rel="nofollow" href="https://independent.academia.edu/EMyrvoll">Elin Myrvoll</a></span></div><div class="wp-workCard_item"><span>Sustainability 13(4)</span><span>, 2021</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">What can remote sensing contribute to archaeological surveying in subarctic and arctic landscapes...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">What can remote sensing contribute to archaeological surveying in subarctic and arctic landscapes? The pros and cons of remote sensing data vary as do areas of utilization and method-ological approaches. We assessed the applicability of remote sensing for archaeological surveying of northern landscapes using airborne laser scanning (LiDAR) and satellite and aerial images to map archaeological features as a basis for a) assessing the pros and cons of the different approaches and b) assessing the potential detection rate of remote sensing. Interpretation of images and a Li-DAR-based bare-earth digital terrain model (DTM) was based on visual analyses aided by processing and visualizing techniques. 368 features were identified in the aerial images, 437 in the satellite images and 1186 in the DTM. LiDAR yielded the better result, especially for hunting pits. Image data proved suitable for dwellings and settlement sites. Feature characteristics proved a key factor for detectability, both ...</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="47d9b83ba16d36ab17b947168841fc76" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":76043435,"asset_id":63700470,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/76043435/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="63700470"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="63700470"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 63700470; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=63700470]").text(description); $(".js-view-count[data-work-id=63700470]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 63700470; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='63700470']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 63700470, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "47d9b83ba16d36ab17b947168841fc76" } } $('.js-work-strip[data-work-id=63700470]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":63700470,"title":"Archaeological Surveying of Subarctic and Arctic Landscapes: Comparing the Performance of Airborne Laser Scanning and Remote Sensing Image Data","translated_title":"","metadata":{"abstract":"What can remote sensing contribute to archaeological surveying in subarctic and arctic landscapes? The pros and cons of remote sensing data vary as do areas of utilization and method-ological approaches. We assessed the applicability of remote sensing for archaeological surveying of northern landscapes using airborne laser scanning (LiDAR) and satellite and aerial images to map archaeological features as a basis for a) assessing the pros and cons of the different approaches and b) assessing the potential detection rate of remote sensing. Interpretation of images and a Li-DAR-based bare-earth digital terrain model (DTM) was based on visual analyses aided by processing and visualizing techniques. 368 features were identified in the aerial images, 437 in the satellite images and 1186 in the DTM. LiDAR yielded the better result, especially for hunting pits. Image data proved suitable for dwellings and settlement sites. Feature characteristics proved a key factor for detectability, both ...","publication_date":{"day":null,"month":null,"year":2021,"errors":{}},"publication_name":"Sustainability 13(4)"},"translated_abstract":"What can remote sensing contribute to archaeological surveying in subarctic and arctic landscapes? The pros and cons of remote sensing data vary as do areas of utilization and method-ological approaches. We assessed the applicability of remote sensing for archaeological surveying of northern landscapes using airborne laser scanning (LiDAR) and satellite and aerial images to map archaeological features as a basis for a) assessing the pros and cons of the different approaches and b) assessing the potential detection rate of remote sensing. 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href="https://www.academia.edu/92761678/Employment_Utilization_and_Development_of_Airborne_Laser_Scanning_in_Fenno_Scandinavian_Archaeology_A_Review"><img alt="Research paper thumbnail of Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology—A Review" class="work-thumbnail" src="https://attachments.academia-assets.com/95685143/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/92761678/Employment_Utilization_and_Development_of_Airborne_Laser_Scanning_in_Fenno_Scandinavian_Archaeology_A_Review">Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology—A Review</a></div><div class="wp-workCard_item"><span>Remote Sensing</span><span>, 2020</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeol...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeology in the North over the period 2005–2019. Almost two decades have passed since ALS first emerged as a potential tool to add to the archaeologist’s toolbox. Soon after, it attracted the attention of researchers within archaeological communities engaged with remote sensing in the Fenno-Scandinavian region. The first archaeological ALS projects gave immediate good results and led to further use, research, and development through new projects that followed various tracks. The bulk of the research and development focused on studying how well-suited ALS is for identifying, mapping, and documenting archaeological features in outfield land, mainly in forested areas. The poor situation in terms of lack of information on archaeological records in outfield areas has been challenging for research and especially for cultural heritage management for a long period of time. Consequently, an obvious di...</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="fd7b847340b9d7f1b0070310edd2ef2b" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":95685143,"asset_id":92761678,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/95685143/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="92761678"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="92761678"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 92761678; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=92761678]").text(description); $(".js-view-count[data-work-id=92761678]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 92761678; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='92761678']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 92761678, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "fd7b847340b9d7f1b0070310edd2ef2b" } } $('.js-work-strip[data-work-id=92761678]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":92761678,"title":"Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology—A Review","translated_title":"","metadata":{"abstract":"This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeology in the North over the period 2005–2019. Almost two decades have passed since ALS first emerged as a potential tool to add to the archaeologist’s toolbox. Soon after, it attracted the attention of researchers within archaeological communities engaged with remote sensing in the Fenno-Scandinavian region. The first archaeological ALS projects gave immediate good results and led to further use, research, and development through new projects that followed various tracks. The bulk of the research and development focused on studying how well-suited ALS is for identifying, mapping, and documenting archaeological features in outfield land, mainly in forested areas. The poor situation in terms of lack of information on archaeological records in outfield areas has been challenging for research and especially for cultural heritage management for a long period of time. 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Cowley (ed.):Remote Sensing for Archaeological Heritage Management. Proceedings of the 11th EAC Heritage Management Symposium, Reykjavík, 25–27 March 2010" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/87563506/David_C_Cowley_ed_Remote_Sensing_for_Archaeological_Heritage_Management_Proceedings_of_the_11th_EAC_Heritage_Management_Symposium_Reykjav%C3%ADk_25_27_March_2010">David C. Cowley (ed.):Remote Sensing for Archaeological Heritage Management. Proceedings of the 11th EAC Heritage Management Symposium, Reykjavík, 25–27 March 2010</a></div><div class="wp-workCard_item"><span>Norwegian Archaeological Review</span><span>, 2012</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">In recent years the archaeological community has experienced an increasing interest in the use of...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">In recent years the archaeological community has experienced an increasing interest in the use of advanced techniques and methods. The archaeological toolbox has been expanded with some new techniques which were unknown just a few years ago and which have changed archaeological research and management or have the potential to do so. Other advanced techniques and methods have been in use in archaeology for decades but are being improved more or less continuously at present in terms of accuracy, quality and efficiency. Quite a few archaeologists and technicians are now involved in research and development projects with a focus on advanced technologies. In the wake of this development we are faced with an increasing interest among archaeologists in putting new technical approaches to use in their work, whether it is within research or cultural heritage management. This increasing interest is among other things evident through the many seminars and conferences which have been held throughout the world in recent years with a focus on advanced remote sensing and non-destructive methods in archaeology. The use of remote sensing techniques like satellite, LIDAR, and multiand hyper-spectral scanning is becoming more and more common, and this is also the case with ground-based geophysical prospection such as ground penetrating radar and magnetometry. In March 2010 the symposium Remote Sensing for Archaeological Heritage Management – which was the 11th Europae Archaeologiae Consilium (EAC) Heritage Management Symposium – was held in Reykjavik in Iceland. The aim of the symposium was to throw light on the significance of identifying, documenting and monitoring cultural heritage by the use of remote sensing methods. The symposium resulted in a comprehensive book (hereafter referred to in the text as the ‘EAC volume’) presenting all the papers that were given at the meeting and which was published less than one year after the event was held cooperatively by the EAC and the Aerial Archaeological Research Group (AARG). In addition to a foreword (Wollák), acknowledgements (Cowley) and an opening address (Jakobsdóttir) the volume contains 25 articles arranged into four chapters: 1. ‘Making remote sensing work for archaeological heritage management’, 2. ‘New environments and technologies: challenges and potential’, 3. ‘Exploring the archaeological resource base’, and finally 4. ‘Using remote sensed data: interpretation and understanding’. The articles cover the use of aerial photography, satellite imagery, LIDAR, multiand hyper-spectral scanning, sonars and geophysical surveys (magnetometer and radar). The volume as such gives a good overview of the state of the art as well as the potential that the use of these remote sensing techniques offers to both terrestrial and marine archaeology. As the book title indicates this is done with a certain focus on cultural heritage management (Cowley and Sigurðardóttir). The book is in quarto format, which is appropriate when maps, photographs and other figures are a particularly important part of what is communicated. Generally, resolution and quality are well taken care of in this publication in other respects, but ideally some of the figures could have been shown on a more readable scale. In addition quite a lot of the maps and images are missing a scale bar, thus challenging the reader’s ability to easily grasp the content. The term remote sensing is in this case used as a collective term for all methods represented – REVIEWS Norwegian Archaeological Review, Vol. 45, No. 2, 2012</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="87563506"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="87563506"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 87563506; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=87563506]").text(description); $(".js-view-count[data-work-id=87563506]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 87563506; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='87563506']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 87563506, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (false){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "-1" } } $('.js-work-strip[data-work-id=87563506]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":87563506,"title":"David C. 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In the wake of this development we are faced with an increasing interest among archaeologists in putting new technical approaches to use in their work, whether it is within research or cultural heritage management. This increasing interest is among other things evident through the many seminars and conferences which have been held throughout the world in recent years with a focus on advanced remote sensing and non-destructive methods in archaeology. The use of remote sensing techniques like satellite, LIDAR, and multiand hyper-spectral scanning is becoming more and more common, and this is also the case with ground-based geophysical prospection such as ground penetrating radar and magnetometry. In March 2010 the symposium Remote Sensing for Archaeological Heritage Management – which was the 11th Europae Archaeologiae Consilium (EAC) Heritage Management Symposium – was held in Reykjavik in Iceland. The aim of the symposium was to throw light on the significance of identifying, documenting and monitoring cultural heritage by the use of remote sensing methods. The symposium resulted in a comprehensive book (hereafter referred to in the text as the ‘EAC volume’) presenting all the papers that were given at the meeting and which was published less than one year after the event was held cooperatively by the EAC and the Aerial Archaeological Research Group (AARG). In addition to a foreword (Wollák), acknowledgements (Cowley) and an opening address (Jakobsdóttir) the volume contains 25 articles arranged into four chapters: 1. ‘Making remote sensing work for archaeological heritage management’, 2. ‘New environments and technologies: challenges and potential’, 3. ‘Exploring the archaeological resource base’, and finally 4. ‘Using remote sensed data: interpretation and understanding’. The articles cover the use of aerial photography, satellite imagery, LIDAR, multiand hyper-spectral scanning, sonars and geophysical surveys (magnetometer and radar). The volume as such gives a good overview of the state of the art as well as the potential that the use of these remote sensing techniques offers to both terrestrial and marine archaeology. As the book title indicates this is done with a certain focus on cultural heritage management (Cowley and Sigurðardóttir). The book is in quarto format, which is appropriate when maps, photographs and other figures are a particularly important part of what is communicated. Generally, resolution and quality are well taken care of in this publication in other respects, but ideally some of the figures could have been shown on a more readable scale. In addition quite a lot of the maps and images are missing a scale bar, thus challenging the reader’s ability to easily grasp the content. The term remote sensing is in this case used as a collective term for all methods represented – REVIEWS Norwegian Archaeological Review, Vol. 45, No. 2, 2012","internal_url":"https://www.academia.edu/87563506/David_C_Cowley_ed_Remote_Sensing_for_Archaeological_Heritage_Management_Proceedings_of_the_11th_EAC_Heritage_Management_Symposium_Reykjav%C3%ADk_25_27_March_2010","translated_internal_url":"","created_at":"2022-09-29T08:16:11.017-07:00","preview_url":null,"current_user_can_edit":null,"current_user_is_owner":null,"owner_id":2845169,"coauthors_can_edit":true,"document_type":"paper","co_author_tags":[],"downloadable_attachments":[],"slug":"David_C_Cowley_ed_Remote_Sensing_for_Archaeological_Heritage_Management_Proceedings_of_the_11th_EAC_Heritage_Management_Symposium_Reykjavík_25_27_March_2010","translated_slug":"","page_count":null,"language":"en","content_type":"Work","owner":{"id":2845169,"first_name":"Ole","middle_initials":null,"last_name":"Risbøl","page_name":"OleRisbøl","domain_name":"ntnu-no","created_at":"2012-12-04T19:22:46.770-08:00","display_name":"Ole Risbøl","url":"https://ntnu-no.academia.edu/OleRisb%C3%B8l"},"attachments":[],"research_interests":[{"id":128,"name":"History","url":"https://www.academia.edu/Documents/in/History"},{"id":392,"name":"Archaeology","url":"https://www.academia.edu/Documents/in/Archaeology"},{"id":850149,"name":"Norwegian Archaeological Review","url":"https://www.academia.edu/Documents/in/Norwegian_Archaeological_Review"}],"urls":[]}, dispatcherData: dispatcherData }); $(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="65191688"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/65191688/Eldre_jernalders_tj%C3%A6reproduksjon_ut_av_t%C3%A5ken_Om_tidlig_norsk_tj%C3%A6reproduksjon_med_utgangspunkt_i_et_funn_p%C3%A5_Aver%C3%B8y_i_M%C3%B8re_og_Romsdal"><img alt="Research paper thumbnail of Eldre jernalders tjæreproduksjon ut av tåken. Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal" class="work-thumbnail" src="https://attachments.academia-assets.com/76897375/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/65191688/Eldre_jernalders_tj%C3%A6reproduksjon_ut_av_t%C3%A5ken_Om_tidlig_norsk_tj%C3%A6reproduksjon_med_utgangspunkt_i_et_funn_p%C3%A5_Aver%C3%B8y_i_M%C3%B8re_og_Romsdal">Eldre jernalders tjæreproduksjon ut av tåken. Om tidlig norsk tjæreproduksjon med utgangspunkt i et funn på Averøy i Møre og Romsdal</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a> and <a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/Eystein%C3%98stmoe">Eystein Østmoe</a></span></div><div class="wp-workCard_item"><span>Viking. Norsk Arkeologisk Årbok</span><span>, 2021</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">For many years it has been well known that tar was an available commodity in the Norwegian Iron A...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">For many years it has been well known that tar was an available commodity in the Norwegian Iron Age, butuntil recently no production site or installation for such production was known. In this paper two recently<br />discovered tar production sites, in south-eastern and mid-Norway respectively, are presented and discussed.<br />Both are clay-lined funnel-shaped pits that are dug into the ground with an upper part where the wood<br />was stacked and lit, and a lower part where the tar was collected in a container. The Norwegian tar production<br />pits are similar to contemporary Swedish ones found in large numbers in mid-Sweden. The type is also<br />known from the eastern part of Central Europe where they came into use a few centuries later than in<br />Scandinavia.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="63c2b9e6df3a906e41c65066178e945b" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":76897375,"asset_id":65191688,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/76897375/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="65191688"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="65191688"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 65191688; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=65191688]").text(description); $(".js-view-count[data-work-id=65191688]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 65191688; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='65191688']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 65191688, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "63c2b9e6df3a906e41c65066178e945b" } } $('.js-work-strip[data-work-id=65191688]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":65191688,"title":"Eldre jernalders tjæreproduksjon ut av tåken. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="42898796"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/42898796/Employment_Utilization_and_Development_of_Airborne_Laser_Scanning_in_Fenno_Scandinavian_Archaeology_a_Review"><img alt="Research paper thumbnail of Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology–a Review" class="work-thumbnail" src="https://attachments.academia-assets.com/63146464/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/42898796/Employment_Utilization_and_Development_of_Airborne_Laser_Scanning_in_Fenno_Scandinavian_Archaeology_a_Review">Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology–a Review</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://umu.academia.edu/DanielLanghammer">Daniel Langhammer</a>, <a class="" data-click-track="profile-work-strip-authors" href="https://oulu.academia.edu/OulaSeitsonen">Oula Seitsonen</a>, and <a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a></span></div><div class="wp-workCard_item"><span>MDPI</span><span>, 2020</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeol...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeology in the North over the period 2005-2019. Almost two decades have passed since ALS first emerged as a potential tool to add to the archaeologist's toolbox. Soon after, it attracted the attention of researchers within archaeological communities engaged with remote sensing in the Fenno-Scandinavian region. The first archaeological ALS projects gave immediate good results and led to further use, research, and development through new projects that followed various tracks. The bulk of the research and development focused on studying how well-suited ALS is for identifying, mapping, and documenting archaeological features in outfield land, mainly in forested areas. The poor situation in terms of lack of information on archaeological records in outfield areas has been challenging for research and especially for cultural heritage management for a long period of time. Consequently, an obvious direction was to study how ALS-based mapping of cultural features in forests could help to improve the survey situation. This led to various statistical analyses and studies covering research questions related to for instance effects on detection success of laser pulse density, and the size and shape of the targeted features. Substantial research has also been devoted to the development and assessment of semi-automatic detection of archaeological features based on the use of algorithms. This has been studied as an alternative approach to human desk-based visual analyses and interpretations of ALS data. This approach has considerable potential for detecting sites over large regions such as the vast roadless and unbuilt wilderness regions of northern Fennoscandia, and has proven highly successful. In addition, the current review presents how ALS has been employed for monitoring purposes and for landscape studies, including how it can influence landscape understanding. Finally, the most recent advance within ALS research and development has been discussed: testing of the use of drones for data acquisition. In conclusion, aspects related to the utilization of ALS in archaeological research and cultural heritage management are summarized and discussed, together with thoughts about future perspectives.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="d2696fe6707371bdfaf8557faa70c10f" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":63146464,"asset_id":42898796,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/63146464/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="42898796"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="42898796"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 42898796; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=42898796]").text(description); $(".js-view-count[data-work-id=42898796]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 42898796; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='42898796']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 42898796, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "d2696fe6707371bdfaf8557faa70c10f" } } $('.js-work-strip[data-work-id=42898796]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":42898796,"title":"Employment, Utilization, and Development of Airborne Laser Scanning in Fenno-Scandinavian Archaeology–a Review","translated_title":"","metadata":{"abstract":"This paper gives a presentation of how airborne laser scanning (ALS) has been adopted in archaeology in the North over the period 2005-2019. 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This led to various statistical analyses and studies covering research questions related to for instance effects on detection success of laser pulse density, and the size and shape of the targeted features. Substantial research has also been devoted to the development and assessment of semi-automatic detection of archaeological features based on the use of algorithms. This has been studied as an alternative approach to human desk-based visual analyses and interpretations of ALS data. This approach has considerable potential for detecting sites over large regions such as the vast roadless and unbuilt wilderness regions of northern Fennoscandia, and has proven highly successful. In addition, the current review presents how ALS has been employed for monitoring purposes and for landscape studies, including how it can influence landscape understanding. Finally, the most recent advance within ALS research and development has been discussed: testing of the use of drones for data acquisition. 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This has been studied as an alternative approach to human desk-based visual analyses and interpretations of ALS data. This approach has considerable potential for detecting sites over large regions such as the vast roadless and unbuilt wilderness regions of northern Fennoscandia, and has proven highly successful. In addition, the current review presents how ALS has been employed for monitoring purposes and for landscape studies, including how it can influence landscape understanding. Finally, the most recent advance within ALS research and development has been discussed: testing of the use of drones for data acquisition. 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href="https://www.academia.edu/78399541/Sensing_Archaeology_in_the_North_The_Use_of_Non_Destructive_Geophysical_and_Remote_Sensing_Methods_in_Archaeology_in_Scandinavian_and_North_Atlantic_Territories"><img alt="Research paper thumbnail of Sensing Archaeology in the North: The Use of Non-Destructive Geophysical and Remote Sensing Methods in Archaeology in Scandinavian and North Atlantic Territories" class="work-thumbnail" src="https://attachments.academia-assets.com/85460648/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/78399541/Sensing_Archaeology_in_the_North_The_Use_of_Non_Destructive_Geophysical_and_Remote_Sensing_Methods_in_Archaeology_in_Scandinavian_and_North_Atlantic_Territories">Sensing Archaeology in the North: The Use of Non-Destructive Geophysical and Remote Sensing Methods in Archaeology in Scandinavian and North Atlantic Territories</a></div><div class="wp-workCard_item"><span>Remote Sensing</span><span>, 2020</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">In August 2018, a group of experts working with terrestrial/marine geophysics and remote sensing ...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">In August 2018, a group of experts working with terrestrial/marine geophysics and remote sensing methods to explore archaeological sites in Denmark, Finland, Norway, Scotland and Sweden gathered together for the first time at the Workshop ‘Sensing Archaeology in The North’. The goal was to exchange experiences, discuss challenges, and consider future directions for further developing these methods and strategies for their use in archaeology. After the event, this special journal issue was arranged to publish papers that are based on the workshop presentations, but also to incorporate work that is produced by other researchers in the field. This paper closes the special issue and further aims to provide current state-of-the-art for the methods represented by the workshop. Here, we introduce the aspects that inspired the organisation of the meeting, a summary of the 12 presentations and eight paper contributions, as well as a discussion about the main outcomes of the workshop roundtab...</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="085a0b14293be68448f425aef0289382" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":85460648,"asset_id":78399541,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/85460648/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="78399541"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="78399541"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 78399541; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=78399541]").text(description); $(".js-view-count[data-work-id=78399541]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 78399541; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='78399541']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 78399541, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "085a0b14293be68448f425aef0289382" } } $('.js-work-strip[data-work-id=78399541]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":78399541,"title":"Sensing Archaeology in the North: The Use of Non-Destructive Geophysical and Remote Sensing Methods in Archaeology in Scandinavian and North Atlantic Territories","translated_title":"","metadata":{"abstract":"In August 2018, a group of experts working with terrestrial/marine geophysics and remote sensing methods to explore archaeological sites in Denmark, Finland, Norway, Scotland and Sweden gathered together for the first time at the Workshop ‘Sensing Archaeology in The North’. 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Science","url":"https://www.academia.edu/Documents/in/Computer_Science"},{"id":1252,"name":"Remote Sensing","url":"https://www.academia.edu/Documents/in/Remote_Sensing"},{"id":1282,"name":"Photogrammetry","url":"https://www.academia.edu/Documents/in/Photogrammetry"},{"id":3316,"name":"Archaeological Science","url":"https://www.academia.edu/Documents/in/Archaeological_Science"},{"id":23618,"name":"Remote Sensing (Archaeology)","url":"https://www.academia.edu/Documents/in/Remote_Sensing_Archaeology_"},{"id":24244,"name":"Archaeological Prospection","url":"https://www.academia.edu/Documents/in/Archaeological_Prospection"},{"id":24591,"name":"Archaeological Geophysics","url":"https://www.academia.edu/Documents/in/Archaeological_Geophysics"},{"id":44632,"name":"Marine Archaeology","url":"https://www.academia.edu/Documents/in/Marine_Archaeology"},{"id":356597,"name":"Marine Geophysics (Archaeology)","url":"https://www.academia.edu/Documents/in/Marine_Geophysics_Archaeology_"},{"id":538033,"name":"LiDAR for Archaeology","url":"https://www.academia.edu/Documents/in/LiDAR_for_Archaeology"}],"urls":[{"id":20194436,"url":"https://www.mdpi.com/2072-4292/12/18/3102/pdf"}]}, dispatcherData: dispatcherData }); $(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="37225119"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/37225119/LiDAR_from_drones_employed_for_mapping_archaeology_Potential_benefits_and_challenges"><img alt="Research paper thumbnail of LiDAR from drones employed for mapping archaeology – Potential, benefits and challenges" class="work-thumbnail" src="https://attachments.academia-assets.com/57176255/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/37225119/LiDAR_from_drones_employed_for_mapping_archaeology_Potential_benefits_and_challenges">LiDAR from drones employed for mapping archaeology – Potential, benefits and challenges</a></div><div class="wp-workCard_item"><span>Archaeological Prospection</span><span>, 2018</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">Although the use of both drones and LiDAR (light detection and ranging) has become common in arch...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">Although the use of both drones and LiDAR (light detection and ranging) has become common in archaeology in recent years, LiDAR scanning from drones is still in its infancy. The technological development related to drones as well as laser scanner instruments has gradually reached the point where these can be integrated. In this paper we present the results from a test where the applicability of LiDAR used from a drone was studied. The study had two objectives – both based on comparative studies: (i) whether LiDAR from drones represents an improvement in terms of detection success; and (ii) whether LiDAR from drones can increase the quality of the documentation of archaeological features and their physical properties based on remote sensing. A modest improvement of detection success was found, but was not as convincing as one would perhaps expect given the relatively large increase in terms of ground points. This has led us to the conclusion that very dense vegetation obstructs laser beams from reaching all the way to the bare earth. As regards accuracy in documenting archaeological features, the study showed more significant improvements. The last part of the paper is dedicated to a discussion of the pros and cons of using LiDAR from drones compared to conventional airborne laser scanning from aeroplanes or helicopters. The main advantages concern flexibility, low flight altitude and small laser footprint as well as the advantages of a far‐reaching field of view. The disadvantages are related to price, battery capacity, size of area and especially the requirement of line of sight between the drone operator and the drone, a fact that restricts the efficiency in terms of mapping large areas. Nevertheless, the final conclusion is that LiDAR from drones has the potential to make a substantial improvement to archaeological remote sensing.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="0f8145d73ce0eb5de14179c75732342c" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":57176255,"asset_id":37225119,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/57176255/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="37225119"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="37225119"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 37225119; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=37225119]").text(description); $(".js-view-count[data-work-id=37225119]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 37225119; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='37225119']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 37225119, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "0f8145d73ce0eb5de14179c75732342c" } } $('.js-work-strip[data-work-id=37225119]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":37225119,"title":"LiDAR from drones employed for mapping archaeology – Potential, benefits and challenges","translated_title":"","metadata":{"doi":"10.1002/arp.1712","abstract":"Although the use of both drones and LiDAR (light detection and ranging) has become common in archaeology in recent years, LiDAR scanning from drones is still in its infancy. The technological development related to drones as well as laser scanner instruments has gradually reached the point where these can be integrated. In this paper we present the results from a test where the applicability of LiDAR used from a drone was studied. The study had two objectives – both based on comparative studies: (i) whether LiDAR from drones represents an improvement in terms of detection success; and (ii) whether LiDAR from drones can increase the quality of the documentation of archaeological features and their physical properties based on remote sensing. A modest improvement of detection success was found, but was not as convincing as one would perhaps expect given the relatively large increase in terms of ground points. This has led us to the conclusion that very dense vegetation obstructs laser beams from reaching all the way to the bare earth. As regards accuracy in documenting archaeological features, the study showed more significant improvements. The last part of the paper is dedicated to a discussion of the pros and cons of using LiDAR from drones compared to conventional airborne laser scanning from aeroplanes or helicopters. The main advantages concern flexibility, low flight altitude and small laser footprint as well as the advantages of a far‐reaching field of view. The disadvantages are related to price, battery capacity, size of area and especially the requirement of line of sight between the drone operator and the drone, a fact that restricts the efficiency in terms of mapping large areas. 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The study had two objectives – both based on comparative studies: (i) whether LiDAR from drones represents an improvement in terms of detection success; and (ii) whether LiDAR from drones can increase the quality of the documentation of archaeological features and their physical properties based on remote sensing. A modest improvement of detection success was found, but was not as convincing as one would perhaps expect given the relatively large increase in terms of ground points. This has led us to the conclusion that very dense vegetation obstructs laser beams from reaching all the way to the bare earth. As regards accuracy in documenting archaeological features, the study showed more significant improvements. The last part of the paper is dedicated to a discussion of the pros and cons of using LiDAR from drones compared to conventional airborne laser scanning from aeroplanes or helicopters. The main advantages concern flexibility, low flight altitude and small laser footprint as well as the advantages of a far‐reaching field of view. The disadvantages are related to price, battery capacity, size of area and especially the requirement of line of sight between the drone operator and the drone, a fact that restricts the efficiency in terms of mapping large areas. Nevertheless, the final conclusion is that LiDAR from drones has the potential to make a substantial improvement to archaeological remote sensing.","internal_url":"https://www.academia.edu/37225119/LiDAR_from_drones_employed_for_mapping_archaeology_Potential_benefits_and_challenges","translated_internal_url":"","created_at":"2018-08-12T23:22:11.887-07:00","preview_url":null,"current_user_can_edit":null,"current_user_is_owner":null,"owner_id":2845169,"coauthors_can_edit":true,"document_type":"paper","co_author_tags":[],"downloadable_attachments":[{"id":57176255,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/57176255/thumbnails/1.jpg","file_name":"Risb-l_et_al-2018-Archaeological_Prospection.pdf","download_url":"https://www.academia.edu/attachments/57176255/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"LiDAR_from_drones_employed_for_mapping_a.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/57176255/Risb-l_et_al-2018-Archaeological_Prospection-libre.pdf?1534141706=\u0026response-content-disposition=attachment%3B+filename%3DLiDAR_from_drones_employed_for_mapping_a.pdf\u0026Expires=1732876559\u0026Signature=MJKYoDf4uShJxkaCaKiD~Oe10zQ42MEwa1HbPVf1ZauUCbpu38ddDdQFUak8ckEszQCalF50yOTOUf6M7sEt1Sy2cmzgVFIv1RgAzSJfRUrtvn8~cUSoKoiTl0dGaCRxhQD0vsUvgefZ1Zd2FXo8~K7sL6JYbfckoeG-PVqkgxNbcBYXUhiFmmNDxBs-TPsdIiP05CBZQF74NVGiyORcRHsTvlWFDl~RRZaUeSH3zy8Cr8pcxEjUG6cP5PESOHirMuxnjVm3sJdH0W9Gi2RGIoWRvGAMOxmnh5-h3GTcor-yXV7oHaWOl0WUy17sJFFd6I662x1BHqYS9wQryRdduA__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"slug":"LiDAR_from_drones_employed_for_mapping_archaeology_Potential_benefits_and_challenges","translated_slug":"","page_count":10,"language":"en","content_type":"Work","owner":{"id":2845169,"first_name":"Ole","middle_initials":null,"last_name":"Risbøl","page_name":"OleRisbøl","domain_name":"ntnu-no","created_at":"2012-12-04T19:22:46.770-08:00","display_name":"Ole Risbøl","url":"https://ntnu-no.academia.edu/OleRisb%C3%B8l"},"attachments":[{"id":57176255,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/57176255/thumbnails/1.jpg","file_name":"Risb-l_et_al-2018-Archaeological_Prospection.pdf","download_url":"https://www.academia.edu/attachments/57176255/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"LiDAR_from_drones_employed_for_mapping_a.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/57176255/Risb-l_et_al-2018-Archaeological_Prospection-libre.pdf?1534141706=\u0026response-content-disposition=attachment%3B+filename%3DLiDAR_from_drones_employed_for_mapping_a.pdf\u0026Expires=1732876559\u0026Signature=MJKYoDf4uShJxkaCaKiD~Oe10zQ42MEwa1HbPVf1ZauUCbpu38ddDdQFUak8ckEszQCalF50yOTOUf6M7sEt1Sy2cmzgVFIv1RgAzSJfRUrtvn8~cUSoKoiTl0dGaCRxhQD0vsUvgefZ1Zd2FXo8~K7sL6JYbfckoeG-PVqkgxNbcBYXUhiFmmNDxBs-TPsdIiP05CBZQF74NVGiyORcRHsTvlWFDl~RRZaUeSH3zy8Cr8pcxEjUG6cP5PESOHirMuxnjVm3sJdH0W9Gi2RGIoWRvGAMOxmnh5-h3GTcor-yXV7oHaWOl0WUy17sJFFd6I662x1BHqYS9wQryRdduA__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"research_interests":[],"urls":[]}, dispatcherData: dispatcherData }); $(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="35669017"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" rel="nofollow" href="https://www.academia.edu/35669017/Views_use_and_reception_of_visualisations_of_development_proposals_impacting_cultural_heritage"><img alt="Research paper thumbnail of Views, use and reception of visualisations of development proposals impacting cultural heritage" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/35669017/Views_use_and_reception_of_visualisations_of_development_proposals_impacting_cultural_heritage">Views, use and reception of visualisations of development proposals impacting cultural heritage</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/GroJerp%C3%A5sen">Gro B Jerpåsen</a> and <a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a></span></div><div class="wp-workCard_item"><span>International Journal of Heritage Studies</span><span>, 2017</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">Visualisations of land-use projects have become an important part of the planning process. Using ...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">Visualisations of land-use projects have become an important part of the planning process. Using a survey of heritage professionals’ attitudes towards visualisations as a starting point, this article addresses tensions between the expressed usefulness of visualisations and critical attitudes towards the lack of ‘objectivity’ of visual representation and the risk of manipulation for strategic purposes. Moving from the survey, the article discusses how visual representations of development proposals became part of a Norwegian public dispute over the expansion of a shopping centre in a historic town. Furthermore, our aim is to introduce a social semiotic approach for analysing visualisations at historic sites. Finally, we discuss some theoretical implications of negotiating visualisations, with emphasis on the recent debate about representational and non-representational theories in heritage studies.<br /><br />Keywords: Visualisations, heritage, land-use planning, social semiotics, objectivity, non-representational theory</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="35669017"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="35669017"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 35669017; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=35669017]").text(description); $(".js-view-count[data-work-id=35669017]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 35669017; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='35669017']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 35669017, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (false){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "-1" } } $('.js-work-strip[data-work-id=35669017]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":35669017,"title":"Views, use and reception of visualisations of development proposals impacting cultural heritage","translated_title":"","metadata":{"doi":"10.1080/13527258.2017.1378898","issue":"4","volume":"24","abstract":"Visualisations of land-use projects have become an important part of the planning process. 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Håndbok</a></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">Samarbeidsprosjekt mellom Norsk regnesentral, NIKU, Kulturhistorisk museum, Vestfold fylkeskommun...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">Samarbeidsprosjekt mellom Norsk regnesentral, NIKU, Kulturhistorisk museum, Vestfold fylkeskommune, Oppland fylkeskommune og Sor-Trondelag fylkeskommune. Forfattet av NIKU. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="31623170"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" rel="nofollow" href="https://www.academia.edu/31623170/Approaching_a_Mortuary_Monument_Landscape_using_GIS_and_ALS_Generated_3D_Models"><img alt="Research paper thumbnail of Approaching a Mortuary Monument Landscape using GIS- and ALS- Generated 3D Models" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/31623170/Approaching_a_Mortuary_Monument_Landscape_using_GIS_and_ALS_Generated_3D_Models">Approaching a Mortuary Monument Landscape using GIS- and ALS- Generated 3D Models</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/GJerp%C3%A5sen">Gro B Jerpåsen</a> and <a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a></span></div><div class="wp-workCard_item"><span>International Journal of Heritage in the Digital Era</span><span>, 2013</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="31623170"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="31623170"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 31623170; 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="78399577"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" rel="nofollow" href="https://www.academia.edu/78399577/Interpreting_cultural_remains_in_airborne_laser_scanning_generated_digital_terrain_models_effects_of_size_and_shape_on_detection_success_rates"><img alt="Research paper thumbnail of Interpreting cultural remains in airborne laser scanning generated digital terrain models: effects of size and shape on detection success rates" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" rel="nofollow" href="https://www.academia.edu/78399577/Interpreting_cultural_remains_in_airborne_laser_scanning_generated_digital_terrain_models_effects_of_size_and_shape_on_detection_success_rates">Interpreting cultural remains in airborne laser scanning generated digital terrain models: effects of size and shape on detection success rates</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a> and <a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/Hans%C3%98rka">Hans Ørka</a></span></div><div class="wp-workCard_item"><span>Journal of Archaeological Science</span><span>, 2013</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">ABSTRACT a b s t r a c t In this study, detection success rates were evaluated for cultural remai...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">ABSTRACT a b s t r a c t In this study, detection success rates were evaluated for cultural remains that were detected manually based on interpretation of digital terrain models (DTM) derived from airborne laser scanning data and with a resolution of 1, 5 and 10 points m À2 . The group of cultural remains included charcoal kilns, charcoal pits, hollow-roads, various pits, house foundations, tar kilns, grave mounds and pit-falls. The effects on the interpretation success of different types of cultural remains and their physical properties were studied: size, shape and elevation difference showing that the detection success rates varied considerably. The main tendency was that large cultural remains with clear geometrical shape (ovals and circles) and large elevation difference were much more successfully detected and classified compared to the smaller ones, especially those without a clear geometrical shape. The study also showed that it was the identification of the larger structures which profited most from an increased resolution of the DTM, and it was of no help to increase resolution in order to improve the identification of the irregularly shaped cultural remains.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="78399577"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="78399577"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 78399577; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=78399577]").text(description); $(".js-view-count[data-work-id=78399577]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 78399577; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='78399577']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 78399577, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (false){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "-1" } } $('.js-work-strip[data-work-id=78399577]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":78399577,"title":"Interpreting cultural remains in airborne laser scanning generated digital terrain models: effects of size and shape on detection success rates","translated_title":"","metadata":{"abstract":"ABSTRACT a b s t r a c t In this study, detection success rates were evaluated for cultural remains that were detected manually based on interpretation of digital terrain models (DTM) derived from airborne laser scanning data and with a resolution of 1, 5 and 10 points m À2 . The group of cultural remains included charcoal kilns, charcoal pits, hollow-roads, various pits, house foundations, tar kilns, grave mounds and pit-falls. The effects on the interpretation success of different types of cultural remains and their physical properties were studied: size, shape and elevation difference showing that the detection success rates varied considerably. The main tendency was that large cultural remains with clear geometrical shape (ovals and circles) and large elevation difference were much more successfully detected and classified compared to the smaller ones, especially those without a clear geometrical shape. The study also showed that it was the identification of the larger structures which profited most from an increased resolution of the DTM, and it was of no help to increase resolution in order to improve the identification of the irregularly shaped cultural remains.","publisher":"Elsevier BV","publication_date":{"day":null,"month":null,"year":2013,"errors":{}},"publication_name":"Journal of Archaeological Science"},"translated_abstract":"ABSTRACT a b s t r a c t In this study, detection success rates were evaluated for cultural remains that were detected manually based on interpretation of digital terrain models (DTM) derived from airborne laser scanning data and with a resolution of 1, 5 and 10 points m À2 . The group of cultural remains included charcoal kilns, charcoal pits, hollow-roads, various pits, house foundations, tar kilns, grave mounds and pit-falls. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="15028644"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/15028644/Long_term_vegetational_history_of_a_Picea_abies_stand_in_south_eastern_Norway_Implications_for_the_conservation_of_biological_values"><img alt="Research paper thumbnail of Long-term vegetational history of a Picea abies stand in south-eastern Norway: Implications for the conservation of biological values" class="work-thumbnail" src="https://attachments.academia-assets.com/43646285/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/15028644/Long_term_vegetational_history_of_a_Picea_abies_stand_in_south_eastern_Norway_Implications_for_the_conservation_of_biological_values">Long-term vegetational history of a Picea abies stand in south-eastern Norway: Implications for the conservation of biological values</a></div><div class="wp-workCard_item wp-workCard--coauthors"><span>by </span><span><a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/ChiaraMolinari1">Chiara Molinari</a>, <a class="" data-click-track="profile-work-strip-authors" href="https://ntnu-no.academia.edu/OleRisb%C3%B8l">Ole Risbøl</a>, <a class="" data-click-track="profile-work-strip-authors" href="https://liverpool.academia.edu/RichardBradshaw">Richard Bradshaw</a>, and <a class="" data-click-track="profile-work-strip-authors" href="https://independent.academia.edu/MikaelOhlson">Mikael Ohlson</a></span></div><div class="wp-workCard_item"><span>Biological Conservation</span><span>, 2005</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="a03592c72f5c04331648b35c8a8ac1a7" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":43646285,"asset_id":15028644,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/43646285/download_file?st=MTczMjg4MTI1OSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="15028644"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="15028644"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 15028644; 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Cowley (ed.): Remote Sensing for Archaeological Heritage Management. Proceedings of the 11th EAC Heritage Management Symposium, Reykjavík, 25-27 March 2010. EAC Occasional Paper No. 5. Occasional Publication of the Aerial Archaeology Research Group No. 3. EAC, Brussels 2011" class="work-thumbnail" src="https://attachments.academia-assets.com/37119439/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/2240564/Review_of_D_C_Cowley_ed_Remote_Sensing_for_Archaeological_Heritage_Management_Proceedings_of_the_11th_EAC_Heritage_Management_Symposium_Reykjav%C3%ADk_25_27_March_2010_EAC_Occasional_Paper_No_5_Occasional_Publication_of_the_Aerial_Archaeology_Research_Group_No_3_EAC_Brussels_2011">Review of D.C. Cowley (ed.): Remote Sensing for Archaeological Heritage Management. Proceedings of the 11th EAC Heritage Management Symposium, Reykjavík, 25-27 March 2010. EAC Occasional Paper No. 5. Occasional Publication of the Aerial Archaeology Research Group No. 3. 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