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Editing physicscontents in nLab

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font-style: normal; text-align: center">Syntax tips</h3> <ol style="margin-left: 0em; padding-left: 0em"> <li style="font-size: 0.8em">The basic syntax is <a href="https://www.markdownguide.org/cheat-sheet/">extended Markdown</a>. </li> <li style="font-size: 0.8em">Links to other nLab pages should be made by surrounding the name of the page in double square brackets: [[ name of page ]]. To link to an nLab page but show a different link text, do the following: [[ name of page | link text to show ]].</li> <li style="font-size: 0.8em">LaTeX can be used inside single dollar signs (inline) or double dollar signs or \[ and \], as usual. </li> <li style="font-size: 0.8em">To create a table of contents, add \tableofcontents on its own line.</li> <li style="font-size: 0.8em">For a theorem or proof, use \begin{theorem} \end{theorem} as you would in LaTeX. Labelling and referencing is exactly as in LaTeX, with use of \label and \ref. The full list of supported environments can be found in the <a href="/nlab/show/HowTo#DefinitionTheoremProofEnvironments">HowTo</a>. </li> <li style="font-size: 0.8em">Tikz can be used for figures almost exactly as in LaTeX. Similarly, tikz-cd and xymatrix can be used for commutative diagrams. See the <a href="/nlab/show/HowTo#diagrams">HowTo</a>.</li> <li style="font-size: 0.8em">As an alternative to the Markdown syntax for sections (headings), one can use the usual LaTeX syntax \section, \subsection, etc.</li> <li style="font-size: 0.8em">For further help, see the <a href="/nlab/show/HowTo">HowTo</a>, or you are very welcome to ask at the <a href="https://nforum.ncatlab.org/">nForum</a>.</li> </ol> </div> <form accept-charset="utf-8" action="/nlab/save/physicscontents" id="editForm" method="post"> <div style="display: none;"> <input name="see_if_human" id="see_if_human" style="tabindex: -1; autocomplete: off"/> </div> <div> <textarea name="content" id="content" style="height: 45em; width: 70%;"> **[[physics]]**, [[mathematical physics]], [[philosophy of physics]] ## Surveys, textbooks and lecture notes * _[[higher category theory and physics|(higher) category theory and physics]]_ * _[[geometry of physics]]_ * [[books and reviews in mathematical physics|books and reviews]], [[physics resources]] *** [[theory (physics)]], [[model (physics)]] [[experiment]], [[measurement]], [[computable physics]] * **[[mechanics]]** * [[mass]], [[charge]], [[momentum]], [[angular momentum]], [[moment of inertia]] * [[dynamics on Lie groups]] * [[rigid body dynamics]] * [[field (physics)]] * [[Lagrangian mechanics]] * [[configuration space]], [[state]] * [[action functional]], [[Lagrangian]] * [[covariant phase space]], [[Euler-Lagrange equations]] * [[Hamiltonian mechanics]] * [[phase space]] * [[symplectic geometry]] * [[Poisson manifold]] * [[symplectic manifold]] * [[symplectic groupoid]] * [[multisymplectic geometry]] * [[n-symplectic manifold]] * [[spacetime]] * [[smooth Lorentzian manifold]] * [[special relativity]] * [[general relativity]] * [[gravity]] * [[supergravity]], [[dilaton gravity]] * [[black hole]] * **[[classical field theory|Classical field theory]]** * [[classical physics]] * [[classical mechanics]] * [[waves]] and [[optics]] * [[thermodynamics]] * **[[quantum mechanics|Quantum Mechanics]]** * [[quantum mechanics in terms of dagger-compact categories|in terms of ∞-compact categories]] * [[quantum information]] * [[Hamiltonian operator]] * [[density matrix]] * [[Kochen-Specker theorem]] * [[Bell&#39;s theorem]] * [[Gleason&#39;s theorem]] * **[[quantization|Quantization]]** * [[geometric quantization]] * [[deformation quantization]] * [[path integral|path integral quantization]] * [[semiclassical approximation]] * **[[quantum field theory|Quantum Field Theory]]** * Axiomatizations * [[AQFT|algebraic QFT]] * [[Wightman axioms]] * [[Haag-Kastler axioms]] * [[operator algebra]] * [[local net]] * [[conformal net]] * [[Reeh-Schlieder theorem]] * [[Osterwalder-Schrader theorem]] * [[PCT theorem]] * [[Bisognano-Wichmann theorem]] * [[modular theory]] * [[spin-statistics theorem]] * [[boson]], [[fermion]] * [[FQFT|functorial QFT]] * [[cobordism]] * [[(∞,n)-category of cobordisms]] * [[cobordism hypothesis]]-theorem * [[extended topological quantum field theory]] * Tools * [[perturbative quantum field theory]], [[vacuum]] * [[effective quantum field theory]] * [[renormalization]] * [[BV-BRST formalism]] * [[geometric ∞-function theory]] * [[particle physics]] * [[phenomenology]] * [[model (in particle phyiscs)|models]] * [[standard model of particle physics]] * [[fields and quanta - table|fields and quanta]] * [[GUT|Grand Unified Theories]], [[MSSM]] * [[scattering amplitude]] * [[on-shell recursion]], [[KLT relations]] * Structural phenomena * [[universality class]] * [[quantum anomaly]] * [[Green-Schwarz mechanism]] * [[instanton]] * [[spontaneously broken symmetry]] * [[Kaluza-Klein mechanism]] * [[integrable systems]] * [[holonomic quantum fields]] * Types of quantum field thories * [[TQFT]] * [[2d TQFT]] * [[Dijkgraaf-Witten theory]] * [[Chern-Simons theory]] * [[TCFT]] * [[A-model]], [[B-model]] * [[homological mirror symmetry]] * [[QFT with defects]] * [[conformal field theory]] * [[(1,1)-dimensional Euclidean field theories and K-theory]] * [[(2,1)-dimensional Euclidean field theory|(2,1)-dimensional Euclidean field theory and elliptic cohomology]] * [[CFT]] * [[WZW model]] * [[6d (2,0)-supersymmetric QFT]] * [[gauge theory]] * [[field strength]] * [[gauge group]], [[gauge transformation]], [[gauge fixing]] * examples * [[electromagnetic field]], [[QED]] * [[electric charge]] * [[magnetic charge]] * [[Yang-Mills field]], [[QCD]] * [[Yang-Mills theory]] * [[spinors in Yang-Mills theory]] * [[topological Yang-Mills theory]] * [[Kalb-Ramond field]] * [[supergravity C-field]] * [[RR field]] * [[first-order formulation of gravity]] * [[general covariance]] * [[supergravity]] * [[D&#39;Auria-Fre formulation of supergravity]] * [[gravity as a BF-theory]] * [[sigma-model]] * [[particle]], [[relativistic particle]], [[fundamental particle]], [[spinning particle]], [[superparticle]] * [[string]], [[spinning string]], [[superstring]] * [[membrane]] * [[AKSZ theory]] * [[string theory|String Theory]] * [[string theory results applied elsewhere]] * [[number theory and physics]] * [[Riemann hypothesis and physics]] &lt;div markdown=&quot;1&quot;&gt;[Edit this sidebar](/nlab/edit/physicscontents)&lt;/div&gt; [[!redirects physics contents]]</textarea> <p> <input id="alter_title" name="alter_title" onchange="toggleVisibility();" type="checkbox" value="1" /> <label for="alter_title">Change page name.</label><br/> <span id="title_change" style="display:none"><label for="new_name">New name:</label> <input id="new_name" name="new_name" onblur="addRedirect();" type="text" value="physicscontents" /></span> </p> <div> <p style="font-size: 0.8em; width: 70%;"> For non-trivial edits, please briefly describe your changes below. Your comments will be added to the <a href="https://nforum.ncatlab.org/discussion/792/#Item_4">nForum discussion thread</a> for this page, which can also be used for further discussion related to this page. For trivial edits, such as correcting typos, please leave the box below empty; feel free to ask for advice at the nForum if you are unsure. </p> </div> <div> <textarea name="announcement" id="announcement" style="height: 10em; width: 70%"></textarea> </div> <div id="editFormButtons"> <input type="submit" value="Submit" accesskey="s"/> as <input id="author" name="author" onblur="this.value == '' ? this.value = 'Anonymous' : true" onfocus="this.value == 'Anonymous' ? this.value = '' : true;" type="text" value="Anonymous" /> | <span> <a href="/nlab/cancel_edit/physicscontents" accesskey="c">Cancel</a> <span class="unlock">(unlocks page)</span> </span> </div> </div> </form> <script type="text/javascript"> <!--//--><![CDATA[//><!-- function toggleVisibility() { var span = document.getElementById('title_change'); if (span.style.display =='inline') { span.style.display ='none'; document.getElementById('new_name').value = "physicscontents"; var content = document.getElementById('content').value document.getElementById('content').value = content.replace(/\[\[!redirects physicscontents\]\]\n/, '') } else span.style.display ='inline' } function addRedirect(){ var e = document.getElementById('new_name').value; if ( e != "physicscontents" && e != '') { var content = document.getElementById('content'); content.value = '[[!redirects physicscontents]]\n' + content.value } } document.forms["editForm"].elements["content"].focus(); //--><!]]> </script> </div> <!-- Content --> </div> <!-- Container --> </body> </html>

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