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What's New in nQuery?

<!doctype html><html lang="en-us"><head> <meta charset="utf-8"> <title>What's New in nQuery?</title> <link rel="shortcut icon" href="https://www.statsols.com/hubfs/nQuery%20clinical%20trial%20design%20software%20icon.png"> <meta name="description" content="Discover new features in nQuery to help biostatisticians and clinical researchers optimize clinical trial design"> <meta name="viewport" content="width=device-width, initial-scale=1"> <script src="/hs/hsstatic/jquery-libs/static-1.4/jquery/jquery-1.11.2.js"></script> <script>hsjQuery = window['jQuery'];</script> <meta property="og:description" content="Discover new features in nQuery to help biostatisticians and clinical researchers optimize clinical trial design"> <meta property="og:title" content="What's New in nQuery?"> <meta name="twitter:description" content="Discover new features in nQuery to help biostatisticians and clinical researchers optimize clinical trial design"> <meta name="twitter:title" content="What's New in nQuery?"> <style> a.cta_button{-moz-box-sizing:content-box !important;-webkit-box-sizing:content-box !important;box-sizing:content-box !important;vertical-align:middle}.hs-breadcrumb-menu{list-style-type:none;margin:0px 0px 0px 0px;padding:0px 0px 0px 0px}.hs-breadcrumb-menu-item{float:left;padding:10px 0px 10px 10px}.hs-breadcrumb-menu-divider:before{content:'›';padding-left:10px}.hs-featured-image-link{border:0}.hs-featured-image{float:right;margin:0 0 20px 20px;max-width:50%}@media (max-width: 568px){.hs-featured-image{float:none;margin:0;width:100%;max-width:100%}}.hs-screen-reader-text{clip:rect(1px, 1px, 1px, 1px);height:1px;overflow:hidden;position:absolute !important;width:1px} </style> <link rel="stylesheet" href="https://www.statsols.com/hs-fs/hub/488764/hub_generated/template_assets/130521435988/1729287983428/nquery-theme/cli-build/css/styles.min.css"> <link rel="stylesheet" href="https://www.statsols.com/hs-fs/hub/488764/hub_generated/template_assets/130515235912/1723206765330/nquery-theme/css/main.min.css"> <link rel="stylesheet" href="https://www.statsols.com/hs-fs/hub/488764/hub_generated/template_assets/130515336359/1725989622564/nquery-theme/css/theme-overrides.min.css"> <link rel="stylesheet" href="https://www.statsols.com/hs-fs/hub/488764/hub_generated/module_assets/131433263946/1726837309233/module_131433263946_floating-texture.min.css"> <link rel="stylesheet" href="https://cdn2.hubspot.net/hub/-1/hub_generated/module_assets/-35056501883/1731934115154/module_-35056501883_Video.min.css"> <style> #oembed_container-widget_1720572820928 .oembed_custom-thumbnail_icon svg { fill: #ffffff; 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<div> <a href="https://www.statsols.com/nquery/bayes?hsLang=en-us" class="text-nq-forest hover:text-nq-jade text-[16px] block leading-snug mb-1 "> Sample Size for Bayesian Statistics </a> </div> <div> <p class="text-black/60 text-[12px] group-hover/menu-item:text-black">Probability of Success (Assurance), Credible Intervals, Bayes Factors and more</p> </div> </div> <div class="mb-3"> <div> <a href="https://www.statsols.com/nquery/early-stage-designs?hsLang=en-us" class="text-nq-forest hover:text-nq-jade text-[16px] block leading-snug mb-1 "> Early Stage and Complex Designs </a> </div> <div> <p class="text-black/60 text-[12px] group-hover/menu-item:text-black">Sample size &amp; operating characteristics for Phase I, II &amp; Seamless Designs (MAMS)</p> </div> </div> </div> </div> <div class="w-full lg:px-6 mb-6 lg:mb-0 lg:w-1/5 lg:flex lg:justify-end "> <div> <div class="mb-3"> <p class="uppercase text-[12px] text-black/50 font-semibold">Software</p> </div> <div class="mb-3"> <div> <a 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srcset="https://www.statsols.com/hs-fs/hubfs/customers-hero.png?width=1000&amp;name=customers-hero.png 1000w, https://www.statsols.com/hs-fs/hubfs/customers-hero.png?width=2000&amp;name=customers-hero.png 2000w, https://www.statsols.com/hs-fs/hubfs/customers-hero.png?width=3000&amp;name=customers-hero.png 3000w, https://www.statsols.com/hs-fs/hubfs/customers-hero.png?width=4000&amp;name=customers-hero.png 4000w, https://www.statsols.com/hs-fs/hubfs/customers-hero.png?width=5000&amp;name=customers-hero.png 5000w, https://www.statsols.com/hs-fs/hubfs/customers-hero.png?width=6000&amp;name=customers-hero.png 6000w" sizes="(max-width: 2000px) 100vw, 2000px"> </div> </div></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-6 dnd_area-row-1-padding dnd_area-row-1-vertical-alignment dnd-section"> <div class="row-fluid "> <div class="span4 widget-span widget-type-cell cell_17205725783524-vertical-alignment cell_17205725783524-padding dnd-column" style="" data-widget-type="cell" data-x="0" data-w="4"> <div class="row-fluid-wrapper row-depth-1 row-number-7 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_widget_1720572597693" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><!-- module html --> <div class="relative"> <p class="text-[16px] "> Version 9.4</p> <div class="absolute -left-2 md:-left-4 top-0 bottom-0 h-full w-[24px] md:w-[38px] flex items-center"> <div style="background-color: #BAB78D" class="w-full h-[2px] bg-[#BAB78D] -translate-x-full "></div> </div> </div></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-8 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_widget_1720572634349" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_widget_1720572634349_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><p style="font-size: 20px;">From fixed to flexible trial designs, nQuery 9.4 is a major update to help biostatisticians and clinical researchers save costs and reduce risk.</p></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-9 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_1720572676839" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_1720572676839_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><p style="font-size: 16px;">Highlights include:</p></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-10 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_1720572731989" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_1720572731989_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><ul style="font-size: 16px;"> <li>A simulation tool for sequential design operating characteristics</li> <li>An upgraded survival analysis group sequential design table</li> <li>Multiple new options for mixed models</li> </ul></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> <div class="span8 widget-span widget-type-cell cell_17205725783525-vertical-alignment dnd-column cell_17205725783525-padding" style="" data-widget-type="cell" data-x="4" data-w="8"> <div class="row-fluid-wrapper row-depth-1 row-number-11 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_widget_1720572820928" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"> <div id="embed_container" class="embed_container"> <div class="iframe_wrapper"> <div class="wistia_responsive_padding" style="padding:56.25% 0 0 0;position:relative;"><div class="wistia_responsive_wrapper" style="height:100%;left:0;position:absolute;top:0;width:100%;"><div class="wistia_video_foam_dummy" data-source-container-id="" style="border: 0px; display: block; height: 0px; margin: 0px; padding: 0px; position: static; visibility: hidden; width: auto;"></div><iframe src="https://fast.wistia.net/embed/iframe/fq9l8g2y9h?seo=false&amp;videoFoam=true" title="nQuery 9.4 Release Video" allow="autoplay; fullscreen" allowtransparency="true" frameborder="0" scrolling="no" class="wistia_embed" name="wistia_embed" msallowfullscreen=""></iframe></div></div> <script src="https://fast.wistia.net/assets/external/E-v1.js" async></script> </div> </div> </div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-12 dnd-section"> <div class="row-fluid "> <div class="span4 widget-span widget-type-cell cell_17205738458023-padding cell_17205738458023-background-layers cell_17205738458023-background-color dnd-column cell_17205738458023-margin" style="" data-widget-type="cell" data-x="0" data-w="4"> <div class="row-fluid-wrapper row-depth-1 row-number-13 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_17205743356923" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_17205743356923_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><p><strong>Jump to Section</strong></p></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-14 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_widget_1720574243611" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_widget_1720574243611_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><ul> <li><a href="#group-sequential-design" rel="noopener"><span>Group Sequential Trials</span></a></li> <li><a href="#simulation-tool" rel="noopener"><span>Simulation Tool</span></a></li> <li><a href="#survival-analysis" rel="noopener"><span>Survival Analysis</span></a></li> <li><a href="#log-rank" rel="noopener"><span>Log-Rank Test</span></a></li> <li><a href="#weighted-linear-rank" rel="noopener"><span>Weighted Linear-Rank</span></a></li> <li><a href="#mixed-models" rel="noopener"><span>Mixed Models</span></a></li> <li><a href="#correlation" rel="noopener"><span>Correlation</span></a></li> <li><a href="#confidence-intervals" rel="noopener"><span>Confidence Intervals</span></a></li> <li><a href="#prediction" rel="noopener"><span>Prediction</span></a><br><span></span></li> </ul></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-15 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_widget_1720574405909" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><!-- module html --> <div class="flex not-prose "> <a href="https://www.statsols.com/nquery-sales-faq?hsLang=en-us" class="flex items-center group "> <div> <p class="text-[16px] font-semibold text-nq-forest m-0">Contact Us</p> </div> <div>&nbsp;</div> <div class=""><svg class="group-hover:translate-x-0.5 transition-transform duration-200" width="17" height="16" viewbox="0 0 17 16" fill="none" xmlns="http://www.w3.org/2000/svg"> <path d="M6.5 4L10.5 8L6.5 12" stroke="#2EC99B" stroke-width="2" stroke-linecap="square" stroke-linejoin="round" /> </svg> </div> </a> </div></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> <div class="span8 widget-span widget-type-cell dnd-column" style="" data-widget-type="cell" data-x="4" data-w="8"> <div class="row-fluid-wrapper row-depth-1 row-number-16 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_widget_1720573853959" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_widget_1720573853959_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><hr style="border-top: 4px solid #2EC99B;"> <p style="font-size: 20px; font-weight: bold;">&nbsp;</p> <p style="font-size: 20px; font-weight: bold;"><span style="color: #2ec99b;">nQuery Pro Tier</span></p> <h3 style="font-size: 33px;"><span><strong>What's new in the PRO tier of nQuery?</strong></span></h3> <p style="font-size: 20px; font-weight: bold;">&nbsp;</p> <p style="font-size: 16px;"><strong><span>2 new sample size tables have been added to the Pro tier of nQuery 9.4.<br></span></strong></p> <p style="font-size: 16px;">&nbsp;</p> <ul style="font-size: 16px;"> <li aria-level="1"><span>Group Sequential Trial Design Overhaul for Survival analysis</span></li> <li aria-level="1"><span>Simulation Tool for Sequential Design Operating Characteristics</span></li> </ul> <p>&nbsp;</p> <a id="group-sequential-design" data-hs-anchor="true"></a> <h4 style="font-weight: bold;"><span style="color: #2ec99b;">1. Group Sequential Design Overhaul For Survival Analysis</span></h4> <p>&nbsp;</p> <p><span><strong>What is it?</strong></span></p> <p><span><span style="font-size: 16px;">Group Sequential Design is the most common adaptive design used in confirmatory clinical trials. This design allows trialists to stop a trial early at pre-specified interim analyses if there is sufficient evidence that treatment is effective (efficacy) or ineffective (futility). Group sequential designs capacity to stop trials early can lead to significant cost savings while also getting vital treatments into the hands of patients faster. Methods such as the Lan-DeMets error spending function give trialists significant flexibility to define the conditions under which a trial will stop early while maintaining significant flexibility during trial monitoring.</span><br><br></span></p> <p><span><img src="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png?width=740&amp;height=413&amp;name=nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png" width="740" height="413" loading="lazy" alt="nQuery 9.4 - Group Sequential Design Overhaul For Survival Analysis" srcset="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png?width=370&amp;height=207&amp;name=nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png 370w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png?width=740&amp;height=413&amp;name=nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png 740w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png?width=1110&amp;height=620&amp;name=nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png 1110w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png?width=1480&amp;height=826&amp;name=nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png 1480w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png?width=1850&amp;height=1033&amp;name=nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png 1850w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png?width=2220&amp;height=1239&amp;name=nQuery%209.4%20-%20Group%20Sequential%20Design%20Overhaul%20For%20Survival%20Analysis.png 2220w" sizes="(max-width: 740px) 100vw, 740px"></span></p> <p><span><br></span><span style="font-size: 16px;">Survival analysis is one of the most common endpoints in clinical trials especially in areas such as oncology. Survival analysis has unique challenges for power and sample size determination both in fixed term and sequential trials in areas such as modelling accrual processes, dealing with dropout and adjusting for different types of censoring.<br><br>nQuery 9.4 adds an overhauled group sequential table for the two-sample log-rank test, building upon the tables added for the two means and two proportions scenarios in nQuery 9.3.&nbsp;This overhaul includes a number of additional group sequential methods, substantial improvements in user experience and additional detailed outputs to better explore different group sequential scenarios.&nbsp;The new group sequential survival analysis table deals allows for piecewise accrual, hazard rates and dropout rates and accommodates both event-driven and fixed follow-up designs while providing detail on the expected sample size, events and analysis timing.<br><br></span><span><span style="font-size: 16px;">Future updates will expand to additional endpoints such as counts and one arm designs.</span><br></span></p> <p>&nbsp;</p> <p style="font-size: 16px;"><span><strong>Group Sequential Trial Design Overhaul Summary:</strong></span><span></span></p> <ul style="font-size: 16px;"> <li aria-level="1"><span>Group Sequential Design for Two Sample Log-Rank Test (Updated Table)<br></span></li> <li aria-level="1"><span>11 Spending Functions (O’Brien-Fleming, Pocock, Power Family, Hwang-Shih-DeCani, Exponential, Beta, t-distribution, Logistic, Normal, Cauchy, User Defined/Interpolated)</span></li> <li aria-level="1"><span>Wang-Tsiatis &amp; Pampallona-Tsiatis Designs</span></li> <li aria-level="1"><span>Haybittle-Peto (p-value) Design</span></li> <li aria-level="1"><span>Unified Family Design</span></li> <li aria-level="1"><span>Custom Boundary Design with custom Z statistic, p-value, Score Statistic or Effect Size boundary inputs</span></li> <li aria-level="1"><span>2-sided Futility Boundaries</span></li> <li aria-level="1"><span>New user-responsive interface</span></li> <li aria-level="1"><span>Boundary Parameterization Conversion</span></li> <li aria-level="1"><span>Detailed &amp; Exportable Group Sequential Reports</span></li> <li aria-level="1"><span>Improved Editable Boundary Plots</span></li> <li aria-level="1"><span>Error Spending Plots</span><br><span></span></li> </ul> <p>&nbsp;</p> <a id="simulation-tool" data-hs-anchor="true"></a> <h4 style="font-weight: bold;"><span style="color: #2ec99b;">2. Simulation Tool for Sequential Design Operating Characteristics</span></h4> <p>&nbsp;</p> <p><span style="font-size: 16px;"><strong>What is it?</strong></span></p> <p><span><span style="font-size: 16px;">Group Sequential Design is the most common adaptive design used in confirmatory clinical trials. This design allows trialists to stop a trial early at pre-specified interim analyses if there is sufficient evidence that treatment is effective (efficacy) or ineffective (futility). Group sequential designs capacity to stop trials early can lead to significant cost savings while also getting vital treatments into the hands of patients faster.</span><br><br></span></p> <p><span><img src="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png?width=1053&amp;height=585&amp;name=nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png" width="1053" height="585" loading="lazy" alt="nQuery 9.4 - Simulation Tool for Sequential Design Operating Characteristics" srcset="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png?width=527&amp;height=293&amp;name=nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png 527w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png?width=1053&amp;height=585&amp;name=nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png 1053w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png?width=1580&amp;height=878&amp;name=nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png 1580w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png?width=2106&amp;height=1170&amp;name=nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png 2106w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png?width=2633&amp;height=1463&amp;name=nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png 2633w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png?width=3159&amp;height=1755&amp;name=nQuery%209.4%20-%20Simulation%20Tool%20for%20Sequential%20Design%20Operating%20Characteristics.png 3159w" sizes="(max-width: 1053px) 100vw, 1053px"><br><br></span><span style="font-size: 16px;">Simulation is considered a key aspect of evaluating the statistical and practical performance of adaptive designs. By using simulation you can flexibly evaluate a design over a wide variety of scenarios and gain valuable insights into the pros and cons of your complex design.&nbsp;nQuery 9.4 adds a tool for evaluating the operating characteristics of group sequential designs such as average power and sample size and the number of times you can expect at a given interim analysis. This tool can be used separately or can automatically take values from your existing group sequential design from the overhauled suite of group sequential tables.<br><br>Future updates will expand this simulation tool to additional adaptive designs, group sequential design endpoints and additional simulation options.<strong><br></strong><strong><br></strong><strong>Tool Added:</strong></span></p> <ul> <li aria-level="1"><span style="font-size: 16px;">Simulation Tool for Sequential Design Operating Characteristics</span></li> </ul> <h4><span style="font-size: 16px;">How to update?</span></h4> <p><span style="font-size: 16px;">If you have a subscription for the&nbsp;<strong><a href="https://www.statsols.com/nquery/pricing?hsLang=en-us" rel="noopener" target="_blank">Query Pro Tier</a>&nbsp;</strong>nQuery should automatically prompt you to update.<strong>&nbsp;</strong>You can manually update nQuery Advanced by clicking&nbsp;<strong>Help&gt;Check for updates.&nbsp;<br><br></strong>To discuss any aspect of your subscription,&nbsp;<a href="https://www.statsols.com/nquery-sales-faq?hsLang=en-us#question" rel="noopener" target="_blank">click here</a>.</span></p> <p>&nbsp;</p> <div> <div> <div data-widget-type="cell" data-x="0" data-w="12"> <div> <div> <div data-widget-type="cell" data-x="0" data-w="12"> <div> <div> <div data-widget-type="cell" data-x="0" data-w="12"> <div> <div> <div data-widget-type="rich_text" data-x="0" data-w="12"> <div><hr style="border-top: 4px solid #2EC99B;"> <h2 style="font-size: 20px; font-weight: bold;">&nbsp;</h2> <h2 style="font-size: 20px; font-weight: bold;"><span style="color: #2ec99b;">nQuery Base Tier</span></h2> <p>&nbsp;</p> </div> </div> </div> </div> </div> </div> </div> </div> </div> </div> </div> </div> </div> <div> <div> <div data-widget-type="cell" data-x="0" data-w="12"> <div> <div> <div data-widget-type="rich_text" data-x="0" data-w="12"> <div style="font-size: 16px;"> <h3 style="font-size: 33px;"><span><strong>What's new in the BASE tier of nQuery?</strong></span></h3> <p>&nbsp;</p> <span data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"></span> <p>13 new sample size tables/updates have been added to the Base tier of nQuery 9.4 in the following areas:<br><br></p> <ul> <li aria-level="1">Survival (3 Updates)</li> <li aria-level="1">Mixed Models (7 Updates)</li> <li aria-level="1">Correlation (2 Updates)</li> <li aria-level="1">Confidence Intervals (1 Update)</li> </ul> <a id="survival-analysis" data-hs-anchor="true"></a> <h4 style="font-weight: bold; font-size: 18px;"><span style="color: #2ec99b;">3. Survival (Time-to-Event) Analysis</span></h4> <p>&nbsp;</p> <p><strong>What is it?<br></strong></p> <span data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"></span> <p>Survival or Time-to-Event trials are trials in which the endpoint of interest is the time until a particular event occurs, for example death or tumour regression. Survival analysis is often encountered in areas such as oncology or cardiology.<br><br>In nQuery 9.4, sample size tables are added in the following areas for the design of trials involving survival analysis.&nbsp;Future updates will expand to additional endpoints such as counts and one arm designs.<br><br><strong>Tables/Features added:</strong></p> <ul> <li aria-level="1">Log-Rank Test with Fixed Follow-up</li> <li aria-level="1">Modestly Weighted Linear-Rank Test (MWLRT)</li> </ul> <p>&nbsp;</p> <a id="log-rank" data-hs-anchor="true"></a> <h4 style="font-size: 18px;"><span style="color: #2ec99b;"><strong>4. Log-Rank Test with Fixed Follow-up</strong></span></h4> <p>&nbsp;</p> <p><strong>What is it?</strong></p> <p><span>The log-rank test is one of the most common statistical tests used for the analysis of survival data. Its flexibility and interpretability provide useful insights into the comparable hazard rates in survival trials.<br><br></span></p> <p><span><img src="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png?width=1053&amp;height=589&amp;name=nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png" width="1053" height="589" loading="lazy" alt="nQuery 9.4 - Log-Rank Test with Fixed Follow-up" srcset="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png?width=527&amp;height=295&amp;name=nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png 527w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png?width=1053&amp;height=589&amp;name=nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png 1053w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png?width=1580&amp;height=884&amp;name=nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png 1580w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png?width=2106&amp;height=1178&amp;name=nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png 2106w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png?width=2633&amp;height=1473&amp;name=nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png 2633w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png?width=3159&amp;height=1767&amp;name=nQuery%209.4%20-%20Log-Rank%20Test%20with%20Fixed%20Follow-up.png 3159w" sizes="(max-width: 1053px) 100vw, 1053px"><br>In nQuery 9.4, two sample size tables are added which build on the existing log-rank options in nQuery. These tables focus on allowing for fixed follow-up designs where subjects are censored after a fixed period of the time. These updated tables allow for either accrual percentage or accrual rate inputs and for piecewise accrual, hazard rate and dropout process with either rounded or unrounded sample size and event outputs.<br><br></span><strong>Table(s) Added:</strong></p> <ul> <li aria-level="1">Log-Rank Test, User-Specified Accrual %</li> <li aria-level="1">Fixed Follow-up, Piecewise Survival and Dropout Rates</li> <li aria-level="1">Log-Rank Test, User-Specified Accrual Rates, Fixed Follow-up</li> <li aria-level="1">Piecewise Survival and Dropout Rates</li> </ul> <p>&nbsp;</p> <a id="weighted-linear-rank" data-hs-anchor="true"></a> <h4 style="font-size: 18px;"><span style="color: #2ec99b;"><strong>5. Modestly Weighted Linear-Rank Test</strong></span></h4> <p>&nbsp;</p> <p><strong>What is it?</strong></p> <p>The log-rank test is one of the most widely used tests for the comparison of survival curves. However, a number of alternative linear-rank tests are available. The most common reason to use an alternative test is that the performance of the log-rank test depends on the proportional hazards assumption and may suffer significant power loss if the treatment effect (hazard ratio) is not constant. While the standard log-rank test assigns equal importance to each event, weighted log-rank tests apply a prespecified weight function to each event. However, there are many types of non-proportional hazards (delayed treatment effect, diminishing effect, crossing survival curves) so choosing the most appropriate weighted log-rank test can be difficult if the treatment effect profile is unknown at the design stage.</p> <p><span><br><img src="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png?width=1051&amp;height=591&amp;name=nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png" width="1051" height="591" loading="lazy" alt="nQuery 9.4 - Modestly Weighted Linear-Rank Test" srcset="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png?width=526&amp;height=296&amp;name=nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png 526w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png?width=1051&amp;height=591&amp;name=nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png 1051w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png?width=1577&amp;height=887&amp;name=nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png 1577w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png?width=2102&amp;height=1182&amp;name=nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png 2102w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png?width=2628&amp;height=1478&amp;name=nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png 2628w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png?width=3153&amp;height=1773&amp;name=nQuery%209.4%20-%20Modestly%20Weighted%20Linear-Rank%20Test.png 3153w" sizes="(max-width: 1051px) 100vw, 1051px"><br></span></p> <span data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"></span> <p>Proposals to deal with non-proportional hazards include the MaxCombo design, RMST and piecewise weighted models. One proposal made in response to MaxCombo was the modestly weighted linear-rank test (MLWRT) which avoids the lack of strong Type I error seen in MaxCombo while maintaining the strength of flexibility regarding the timing of a delayed effect.</p> <p><br>In nQuery 9.4, the MWLRT is added as an additional test option to our suite of MaxCombo and linear-rank test tables which are available for inequality, non-inferiority and equivalence hypotheses.<br><br><strong>Feature added to MaxCombo and Linear-Rank tables:<br></strong></p> <ul> <li aria-level="1">Modestly Weighted Linear-Rank Test (MLWRT)</li> </ul> <p>&nbsp;</p> <a id="mixed-models" data-hs-anchor="true"></a> <h4><span style="color: #2ec99b; font-size: 18px;"><strong>6. Mixed Models</strong></span></h4> <p>&nbsp;</p> <p><strong>What is it?</strong></p> <p>Mixed models are models used when data is nested within multiple levels such as hierarchical and repeated measures designs. For example, when students (level 1) are nested within a class (level 2) which are nested within a school (level 3) which are nested within a school district (level 4). These are also known as multi-level or mixed-effects models.</p> <p><span><br>For example, a common type of hierarchical trial design would be a 2-Level longitudinal hierarchical design in which subjects (level 2) are randomized to one of two treatments and then multiple observations (level 1) are made on each subject over time. In determining the sample sizes for such a design, the hierarchical data structure must be considered since both the first and second level units contribute to the total variation in the observed outcomes. In addition, level 1 data units (i.e. repeated measurements) from the same level 2 unit 9 (i.e. subject) tend to be positively correlated.<br><br></span></p> <p><span><img src="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Mixed%20Models%20examples.png?width=1054&amp;height=590&amp;name=nQuery%209.4%20-%20Mixed%20Models%20examples.png" width="1054" height="590" loading="lazy" alt="nQuery 9.4 - Mixed Models examples" srcset="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Mixed%20Models%20examples.png?width=527&amp;height=295&amp;name=nQuery%209.4%20-%20Mixed%20Models%20examples.png 527w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Mixed%20Models%20examples.png?width=1054&amp;height=590&amp;name=nQuery%209.4%20-%20Mixed%20Models%20examples.png 1054w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Mixed%20Models%20examples.png?width=1581&amp;height=885&amp;name=nQuery%209.4%20-%20Mixed%20Models%20examples.png 1581w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Mixed%20Models%20examples.png?width=2108&amp;height=1180&amp;name=nQuery%209.4%20-%20Mixed%20Models%20examples.png 2108w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Mixed%20Models%20examples.png?width=2635&amp;height=1475&amp;name=nQuery%209.4%20-%20Mixed%20Models%20examples.png 2635w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Mixed%20Models%20examples.png?width=3162&amp;height=1770&amp;name=nQuery%209.4%20-%20Mixed%20Models%20examples.png 3162w" sizes="(max-width: 1054px) 100vw, 1054px"><br><br>In nQuery 9.4, 7 new Mixed Model tables for End of Follow-up and Factorial 2x2 are added based on Ahn, Heo, and Zhang (2015).&nbsp;<br><br></span><strong>Tables added:<br></strong></p> <ul> <li aria-level="1">Mixed Models Test for Two Means at the End of Follow-Up in a 2-Level Hierarchical Design (Level 2 Randomization)</li> <li aria-level="1">Mixed Models Test for Two Means at the End of Follow-Up in a 3-Level Hierarchical Design (Level 3 Randomization)</li> <li aria-level="1">Mixed Models Test for Interaction Effect in 2x2 Factorial Design in a 3-Level Hierarchical Design (Level 3 Randomization)</li> <li aria-level="1">Mixed Models Test for Interaction Effect in 2x2 Factorial Design in a 3-Level Hierarchical Design (Level 2 Randomization)</li> <li aria-level="1">Mixed Models Test for Interaction Effect in 2x2 Factorial Design in a 3-Level Hierarchical Design (Level 1 Randomization)</li> <li aria-level="1">Mixed Models Test for Interaction Effect in 2x2 Factorial Design in a 2-Level Hierarchical Design (Level 2 Randomization)</li> <li aria-level="1">Mixed Models Test for Interaction Effect in 2x2 Factorial Design in a 2-Level Hierarchical Design (Level 1 Randomization)</li> </ul> <p>&nbsp;</p> <a id="correlation" data-hs-anchor="true"></a> <h4 style="font-size: 18px;"><span style="color: #2ec99b;"><strong>7. Correlation</strong></span></h4> <p>&nbsp;</p> <p><strong>What is it?</strong></p> <p>Correlations measures are interested in assessing the strength of the relationship between two variables. Common correlation measures include Pearson, Spearman and Kendall-Rank.<br><br>Dependent correlations indicate a common factor that may lead to a relationship between the two correlations which is equivalent to stating that at least one of the pairwise correlation coefficients is non-zero. When two correlations have a measurement index in common (here designated "y") then by comparison of correlations of two other measurements against the common measurement index must be dependent. In nQuery 9.4, 2 tables are added for tests of correlation between dependent (paired) measurements.</p> <p><strong><br>Tables added:<br></strong></p> <ul> <li aria-level="1">Test for Two Dependent Pearson Correlations (Common Index)</li> <li aria-level="1">Test for Two Dependent Pearson Correlations (No Common Index)</li> </ul> <p>&nbsp;</p> <a id="confidence-intervals" data-hs-anchor="true"></a> <h4 style="font-size: 18px;"><span style="color: #2ec99b;"><strong>8. Confidence Intervals</strong></span></h4> <p>&nbsp;</p> <p><strong>What is it?</strong></p> <p>Confidence Intervals are the most widely used statistical interval and represent an interval within which a population parameter is likely to lie with a given level of probability.&nbsp;</p> <p>&nbsp;</p> <p style="font-size: 16px;"><span>Count and incidence rates are a common type of data where the endpoint of interest is the number of events that occur in a given unit of time or repeated counts. Examples in clinical trials include the exacerbation incidence rate in a given year for respiratory diseases such as COPD or the count of the number of lesions found in MRI scans for conditions such as multiple sclerosis. Count models such as Poisson or Negative Binomial allow the full usage of all events found compared to binomial or survival modelling approaches. In nQuery 9.4, 1 table is added for the confidence interval for single Poisson incidence rate.<br><br><img src="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png?width=1050&amp;height=590&amp;name=nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png" width="1050" height="590" loading="lazy" alt="nQuery 9.4 - Confidence Intervals different counts" srcset="https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png?width=525&amp;height=295&amp;name=nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png 525w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png?width=1050&amp;height=590&amp;name=nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png 1050w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png?width=1575&amp;height=885&amp;name=nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png 1575w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png?width=2100&amp;height=1180&amp;name=nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png 2100w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png?width=2625&amp;height=1475&amp;name=nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png 2625w, https://www.statsols.com/hs-fs/hubfs/Master-Images/Page-Images/Landing_Pages_Images/New%20Release%20Page/nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png?width=3150&amp;height=1770&amp;name=nQuery%209.4%20-%20Confidence%20Intervals%20different%20counts.png 3150w" sizes="(max-width: 1050px) 100vw, 1050px"><br></span><span></span><span><strong>Tables added:<br></strong></span></p> <ul style="font-size: 16px;"> <li aria-level="1"><span>Confidence Interval for One Poisson Rate</span></li> </ul> <p style="font-size: 16px;">&nbsp;</p> <h4 style="font-size: 16px;"><span>How to update?</span></h4> <p style="font-size: 16px;"><span>nQuery should automatically prompt you to update.<strong>&nbsp;</strong></span><span>You can manually update nQuery Advanced by clicking&nbsp;<strong>Help&gt;Check for updates.&nbsp;<br><br></strong></span><span>To discuss any aspect of your subscription,&nbsp;<a href="https://www.statsols.com/nquery-sales-faq?hsLang=en-us#question" rel="noopener" target="_blank">click here</a>.</span></p> </div> </div> </div> </div> </div> </div> </div></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-17 dnd-section dnd_area-row-3-vertical-alignment"> <div class="row-fluid "> <div class="span4 widget-span widget-type-cell dnd-column cell_17205738960872-vertical-alignment" style="" data-widget-type="cell" data-x="0" data-w="4"> <div class="row-fluid-wrapper row-depth-1 row-number-18 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_17205738960879" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_17205738960879_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><a id="prediction" data-hs-anchor="true"></a></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-19 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_17205738960878" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><!-- module html --> <div class="relative"> <p class="text-[16px] "> nQuery Predict</p> <div class="absolute -left-2 md:-left-4 top-0 bottom-0 h-full w-[24px] md:w-[38px] flex items-center"> <div style="background-color: #BAB78D" class="w-full h-[2px] bg-[#BAB78D] -translate-x-full "></div> </div> </div></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-20 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_1720661007114" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_1720661007114_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><p style="font-size: 20px;">Accurately predict your key trial milestones. Identify roadblocks and take action to keep your trial on schedule.</p></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-21 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_172057389608710" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_172057389608710_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><p style="font-size: 16px;">nQuery Predict is the most recent module to be added to the nQuery platform for clinical trial design.</p></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-22 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_1720573952205" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_1720573952205_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><p style="font-size: 16px;">Only available in the expert tier, nQuery Predict is a suite of tools that uses current data to project the likely trajectory of future enrollment or event milestones. With the nQuery Predict module, you can make more informed decisions based on real trial data as it becomes available.</p></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-23 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_1720573959339" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_1720573959339_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><p style="font-size: 16px;">Listen to the short video below for more information about milestone prediction.</p></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> <div class="span8 widget-span widget-type-cell cell_17205738960873-padding dnd-column cell_17205738960873-vertical-alignment" style="" data-widget-type="cell" data-x="4" data-w="8"> <div class="row-fluid-wrapper row-depth-1 row-number-24 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_172057389608713" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"> <div id="embed_container" class="embed_container"> <div class="iframe_wrapper"> <div class="wistia_responsive_padding" style="padding:56.25% 0 0 0;position:relative;"><div class="wistia_responsive_wrapper" style="height:100%;left:0;position:absolute;top:0;width:100%;"><div class="wistia_video_foam_dummy" data-source-container-id="" style="border: 0px; display: block; height: 0px; margin: 0px; padding: 0px; position: static; visibility: hidden; width: auto;"></div><iframe src="https://fast.wistia.net/embed/iframe/18ycqiwnln?seo=false&amp;videoFoam=true" title="Introducing nQuery Predict Video" allow="autoplay; fullscreen" allowtransparency="true" frameborder="0" scrolling="no" class="wistia_embed" name="wistia_embed" msallowfullscreen=""></iframe></div></div> <script src="https://fast.wistia.net/assets/external/E-v1.js" async></script> </div> </div> </div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-25 dnd-section dnd_area-row-4-background-layers dnd_area-row-4-background-color dnd_area-row-4-padding"> <div class="row-fluid "> <div class="span12 widget-span widget-type-cell dnd-column" style="" data-widget-type="cell" data-x="0" data-w="12"> <div class="row-fluid-wrapper row-depth-1 row-number-26 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_17205746875557" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_17205746875557_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><h2 style="text-align: center; font-size: 33px; font-weight: bold;">Get started with nQuery today</h2> <p style="text-align: center;">Start for free and upgrade as your team grows</p></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-27 cell_17205746875553-row-1-hidden cell_17205746875553-row-1-vertical-alignment dnd-row"> <div class="row-fluid "> <div class="span6 widget-span widget-type-cell cell_17205746875558-vertical-alignment dnd-column" style="" data-widget-type="cell" data-x="0" data-w="6"> <div class="row-fluid-wrapper row-depth-1 row-number-28 dnd-row cell_17205746875558-row-0-vertical-alignment"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget module_172057468755511-vertical-alignment dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_172057468755511" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"> <div class="button-wrapper"> <a class="button" href="https://www.statsols.com/nquery-demo?hsLang=en-us"> Get Started </a> </div></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end 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class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><h2 style="text-align: center;"><span style="color: #ffffff;">Release Notes</span></h2></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> <div class="row-fluid-wrapper row-depth-1 row-number-35 dnd_area-row-6-padding dnd-section dnd_area-row-6-max-width-section-centering dnd_area-row-6-background-layers dnd_area-row-6-background-color"> <div class="row-fluid "> <div class="span6 widget-span widget-type-cell dnd-column" style="" data-widget-type="cell" data-x="0" data-w="6"> <div class="row-fluid-wrapper row-depth-1 row-number-36 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_widget_1721353092469" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_widget_1721353092469_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><ul> <li><a href="https://www.statsols.com/whats-new?hsLang=en-us" rel="noopener" style="color: #ffffff;">Latest Release</a></li> <li><a href="https://www.statsols.com/nquery-9.3-release-notes?hsLang=en-us" rel="noopener" style="color: #ffffff;">v9.3 Release Notes</a></li> <li><a href="https://www.statsols.com/nquery-9.2-release-notes?hsLang=en-us" rel="noopener" style="color: #ffffff;">v9.2 Release Notes</a></li> <li><a href="https://www.statsols.com/nquery-winter-2021-release?hsLang=en-us" rel="noopener" style="color: #ffffff;">v9.1 Release Notes</a></li> <li><a href="https://www.statsols.com/nquery-autumn-2021-release?hsLang=en-us" rel="noopener" style="color: #ffffff;">v9.0 Release Notes</a></li> </ul></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> <div class="span6 widget-span widget-type-cell dnd-column" style="" data-widget-type="cell" data-x="6" data-w="6"> <div class="row-fluid-wrapper row-depth-1 row-number-37 dnd-row"> <div class="row-fluid "> <div class="span12 widget-span widget-type-custom_widget dnd-module" style="" data-widget-type="custom_widget" data-x="0" data-w="12"> <div id="hs_cos_wrapper_module_17213531491213" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_module widget-type-rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="module"><span id="hs_cos_wrapper_module_17213531491213_" class="hs_cos_wrapper hs_cos_wrapper_widget hs_cos_wrapper_type_rich_text" style="" data-hs-cos-general-type="widget" data-hs-cos-type="rich_text"><ul> <li><a href="https://www.statsols.com/nquery-spring-2021-release?hsLang=en-us" rel="noopener" style="color: #ffffff;">v8.7 Release Notes</a></li> <li><a href="https://www.statsols.com/nquery-summer-2020-release?hsLang=en-us" rel="noopener" style="color: #ffffff;">v8.6 Release Notes</a></li> <li><a href="https://www.statsols.com/nquery-winter-2019-release?hsLang=en-us" rel="noopener" style="color: #ffffff;">v8.5 Release Notes</a></li> <li><a href="/nquery-summer-2019-release?hsLang=en-us" rel="noopener" style="color: #ffffff;">v8.4 Release Notes</a></li> <li><a href="https://www.statsols.com/nquery-winter-2018-release?hsLang=en-us" rel="noopener" style="color: #ffffff;">v8.4 Release Notes</a><br><br></li> </ul></span></div> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> </div><!--end row--> </div><!--end row-wrapper --> </div><!--end widget-span --> </div> </div> </div> </main> <div 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