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  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3761138">
    <title>Could AI solve physics? seaching for deeper Lagrangian effectively described close to SM+gravity?</title>
    <link>https://community.wolfram.com/groups/-/m/t/3761138</link>
    <description>Standard Model is extremely well tested, but e.g. is incompatible with general relativity, is rather for effective perturbative approximations, also uses this gigantic Lagrangian found in epicycle-style: by guess&amp;amp;fit terms.&#xD;
&#xD;
So maybe, like in Copernican Revolution, we should search for **compact deeper nonperturbative Lagrangian** (e.g. [Skyrme][1]-like), **effectively described close to Standard Model + gravity**?&#xD;
&#xD;
Nonperturbative Lagrangians look simple, but have extremely complex consequences - maybe AI could search through them, automatically performing simulations testing various agreements?&#xD;
&#xD;
This kind of approaches have already started, e.g.: &amp;#034;**Towards AI-assisted neutrino flavor theory design**&amp;#034;: https://www.nature.com/articles/s42005-026-02627-2 , &amp;#034;**Agentic Exploration of Physics Models**&amp;#034; https://journals.aps.org/prx/abstract/10.1103/xnqc-q6nt , or https://github.com/openwave-labs/openwave/blob/main/MODELS.md **actually testing such deeper Lagrangian candidates** - currently winning is [liquid-crystal-like][2]: just assumption that field has preferred anisotropy.&#xD;
&#xD;
What do you think about such approaches?&#xD;
Where to search for such deeper Lagrangians?&#xD;
&#xD;
Would be great if Wolfram had independent model benchmarking environment like OpenWave ...&#xD;
&#xD;
&#xD;
![enter image description here][3]&#xD;
&#xD;
&#xD;
  [1]: https://en.wikipedia.org/wiki/Skyrmion&#xD;
  [2]: https://en.wikipedia.org/wiki/Draft:Liquid_crystal_particle_analogs&#xD;
  [3]: https://community.wolfram.com//c/portal/getImageAttachment?filename=AI.png&amp;amp;userId=2844843</description>
    <dc:creator>Jarek Duda</dc:creator>
    <dc:date>2026-07-16T09:52:33Z</dc:date>
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  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3761128">
    <title>How Protect Your Credit Score with Soft Credit Inquiries</title>
    <link>https://community.wolfram.com/groups/-/m/t/3761128</link>
    <description>Applying for a home loan often raises concerns about credit checks. A hard inquiry can lower your score, even when you’re just exploring your options. That’s why I use soft credit pulls to help you start your journey with confidence.&#xD;
&#xD;
Benefits of a Soft Touch Credit Pull&#xD;
When you choose this method, you gain access to: • A full monthly payment analysis • A transparent closing cost breakdown • An accurate view of your debt-to-income ratio • A pre-qualification or even full pre-approval in many cases • Reliable insights based on your real mortgage scores&#xD;
&#xD;
Why It Matters&#xD;
Soft inquiries let you understand your eligibility for programs like FHA Loan Glen Allen, VA and conventional mortgages&amp;#x2014;without negatively impacting your financial profile.</description>
    <dc:creator>Duane Buziak</dc:creator>
    <dc:date>2026-07-16T07:50:41Z</dc:date>
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  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3761284">
    <title>Understanding Type 2 Diabetes: Causes, Symptoms &amp;amp; Management</title>
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    <description>Type 2 diabetes is a chronic condition in which the body becomes resistant to insulin or does not produce enough insulin to maintain healthy blood sugar levels. Managing the condition typically involves a combination of a balanced diet, regular physical activity, **[weight management][1]**, routine blood glucose monitoring, and medications prescribed by a healthcare professional when needed. Early diagnosis and consistent treatment can help reduce the risk of long-term complications affecting the heart, kidneys, eyes, and nerves. I&amp;#039;m interested in learning about the latest evidence-based approaches to diabetes management, lifestyle strategies, and how people use data and technology to better understand blood glucose trends and improve long-term health outcomes.&#xD;
&#xD;
&#xD;
  [1]: https://www.pills4cure.com/natural-weight-loss/</description>
    <dc:creator>barn addy</dc:creator>
    <dc:date>2026-07-16T07:07:44Z</dc:date>
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  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3756198">
    <title>Extending FindInstance</title>
    <link>https://community.wolfram.com/groups/-/m/t/3756198</link>
    <description>&amp;amp;[Wolfram Notebook][1]&#xD;
&#xD;
&#xD;
  [1]: https://www.wolframcloud.com/obj/09cd91f3-270c-4d8b-ad01-84ac631735bf</description>
    <dc:creator>Frank Kampas</dc:creator>
    <dc:date>2026-07-11T15:40:55Z</dc:date>
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    <title>[WSRP26] Simulating 3 vs. 3 basketball on a 2D point graph to find and create optimal strategies</title>
    <link>https://community.wolfram.com/groups/-/m/t/3753567</link>
    <description>![ Simulating 3 vs. 3 basketball on a 2D point graph to find and create optimal strategies][1]&#xD;
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&amp;amp;[Wolfram Notebook][2]&#xD;
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  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=Screenshot2026-07-09at7.39.16%E2%80%AFp.m..png&amp;amp;userId=3753153&#xD;
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    <title>[WSRP26] A model of economic trade using cellular automata</title>
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    <description>![A Model of Economic Trade Using Cellular Automata][1]&#xD;
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&amp;amp;[Wolfram Notebook][2]&#xD;
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  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=Screenshot2026-07-09at11.20.49%E2%80%AFAM.png&amp;amp;userId=3749498&#xD;
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    <description>&amp;amp;[Wolfram Notebook][1]&#xD;
&#xD;
&#xD;
  [1]: https://www.wolframcloud.com/obj/809a54a7-ed1c-4548-9763-0e0e7131c037</description>
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    <title>Get snarky: the cycle double cover conjecture -- an AI proof?</title>
    <link>https://community.wolfram.com/groups/-/m/t/3756327</link>
    <description>![Get snarky: the cycle double cover conjecture -- an AI proof?][1]&#xD;
&#xD;
&amp;amp;[Wolfram Notebook][2]&#xD;
&#xD;
&#xD;
  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=Getsnarkythecycledoublecoverconjecture.png&amp;amp;userId=20103&#xD;
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    <title>Mathematical Games: square packing</title>
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    <description>![Mathematical Games: square packing][1]&#xD;
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&amp;amp;[Wolfram Notebook][2]&#xD;
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&#xD;
  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=SquarePacking.png&amp;amp;userId=20103&#xD;
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    <dc:creator>Ed Pegg</dc:creator>
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  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3759572">
    <title>Agent skills: let your AI assistant build, simulate and analyze System Modeler models</title>
    <link>https://community.wolfram.com/groups/-/m/t/3759572</link>
    <description>We&amp;#039;ve just released a free set of agent skills that teach AI coding assistants&amp;#x2014;Claude Code, Codex or any agent with command-line access&amp;#x2014;to work with Wolfram System Modeler.&#xD;
&#xD;
With the skills installed, your assistant can create a model from a plain-language description, validate that it compiles, simulate it, plot the results, diagnose why a model is slow or failing and even answer Modelica questions with citations from the language specification and the System Modeler documentation. For post-processing&amp;#x2014;parameter sweeps, calibration, machine learning on results&amp;#x2014;it hands off to Wolfram Language via Wolfram MCP.&#xD;
&#xD;
The following video shows the idea end to end: from a hand-drawn sketch to a validated, simulation-ready model, with a single prompt.&#xD;
&#xD;
![enter image description here][1]&#xD;
&#xD;
Everything runs against your local System Modeler installation.&#xD;
&#xD;
Get the skills and setup instructions here: https://github.com/WolframResearch/system-modeler-ai-toolkit&#xD;
&#xD;
&#xD;
  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=a_small.gif&amp;amp;userId=1522613</description>
    <dc:creator>Ankit Naik</dc:creator>
    <dc:date>2026-07-15T09:18:26Z</dc:date>
  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3759545">
    <title>Darboux and Frenet-Serret Frames from a curve on space</title>
    <link>https://community.wolfram.com/groups/-/m/t/3759545</link>
    <description>&amp;amp;[Wolfram Notebook][1]&#xD;
&#xD;
&#xD;
  [1]: https://www.wolframcloud.com/obj/1b7d9d59-ffd1-4731-ac38-bc0fba8baafb</description>
    <dc:creator>Alejandro Latorre Chirot</dc:creator>
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  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3754018">
    <title>[WSRP26] Kinematic analysis and link-length optimization of planar robotic manipulators</title>
    <link>https://community.wolfram.com/groups/-/m/t/3754018</link>
    <description>![Kinematic analysis and link-length optimization of planar robotic manipulators][1]&#xD;
&#xD;
&amp;amp;[Wolfram Notebook][2]&#xD;
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&#xD;
  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=Screenshot2026-07-10at5.03.45%E2%80%AFAM.png&amp;amp;userId=3752588&#xD;
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  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3753679">
    <title>[WSRP26] An algorithm for the placement of a self-balancing prehensile tail on a leaning mass</title>
    <link>https://community.wolfram.com/groups/-/m/t/3753679</link>
    <description>![An algorithm for the placement of a self-balancing prehensile tail on a leaning mass][1]&#xD;
&#xD;
&amp;amp;[Wolfram Notebook][2]&#xD;
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&#xD;
  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=FinalModelScreenshot.png&amp;amp;userId=3753248&#xD;
  [2]: https://www.wolframcloud.com/obj/60b0cb02-9607-4f2e-8b8f-00815147d10a</description>
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  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3754125">
    <title>[WSRP26] Circadian-based optimization of personalized sleep schedules</title>
    <link>https://community.wolfram.com/groups/-/m/t/3754125</link>
    <description>![Circadian-based optimization of personalized sleep schedules][1]&#xD;
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&amp;amp;[Wolfram Notebook][2]&#xD;
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  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=Screenshot2026-07-09at7.30.59%E2%80%AFPM.png&amp;amp;userId=3753710&#xD;
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    <dc:creator>Warren Chen</dc:creator>
    <dc:date>2026-07-10T00:58:00Z</dc:date>
  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3754216">
    <title>[WSRP26] Investigating cognitive interference using a Wolfram language Stroop test</title>
    <link>https://community.wolfram.com/groups/-/m/t/3754216</link>
    <description>&amp;amp;[Wolfram Notebook][1]&#xD;
![Investigating cognitive interference using a Wolfram language Stroop test][2]&#xD;
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&#xD;
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    <dc:creator>Vedika Gautam</dc:creator>
    <dc:date>2026-07-10T01:04:42Z</dc:date>
  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3754163">
    <title>[WSRP26] Constructing a combinatorial glycan isomer calculator for GXM in Cryptococcus neoformans</title>
    <link>https://community.wolfram.com/groups/-/m/t/3754163</link>
    <description>![Constructing a combinatorial glycan isomer calculator for GXM in Cryptococcus neoformans][1]&#xD;
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&amp;amp;[Wolfram Notebook][2]&#xD;
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  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=thumbnail.png&amp;amp;userId=3748436&#xD;
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    <dc:creator>Annabella Sakunkoo (Koo)</dc:creator>
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  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3754199">
    <title>[WSRP26] Mapping structure-activity relationships and shape similarity in CYP11B1 inhibitors</title>
    <link>https://community.wolfram.com/groups/-/m/t/3754199</link>
    <description>![Mapping structure-activity relationships and shape similarity in CYP11B1 inhibitors][1]&#xD;
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&amp;amp;[Wolfram Notebook][2]&#xD;
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  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=titleimg.png&amp;amp;userId=3751401&#xD;
  [2]: https://www.wolframcloud.com/obj/016809dc-667c-4a9b-9a80-879e9d234df3</description>
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  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3753652">
    <title>[WSRP26] Exploring spaghettification around black holes</title>
    <link>https://community.wolfram.com/groups/-/m/t/3753652</link>
    <description>![Exploring spaghettification around black holes][1]&#xD;
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&amp;amp;[Wolfram Notebook][2]&#xD;
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  [1]: https://community.wolfram.com//c/portal/getImageAttachment?filename=ExploringSpaghettificationAroundBlackHoles.png&amp;amp;userId=20103&#xD;
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  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3753059">
    <title>[WSRP26] Exploring the placements of colored chess pieces across an infinite spiral chessboard</title>
    <link>https://community.wolfram.com/groups/-/m/t/3753059</link>
    <description>![Exploring the placements of colored chess pieces across an infinite spiral chessboard][1]&#xD;
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&amp;amp;[Wolfram Notebook][2]&#xD;
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  [2]: https://www.wolframcloud.com/obj/6730fd0d-0c48-4840-bf06-c6718cc4700b</description>
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  </item>
  <item rdf:about="https://community.wolfram.com/groups/-/m/t/3752569">
    <title>[WSRP26] Recursively constructing and analyzing dendritic polymers</title>
    <link>https://community.wolfram.com/groups/-/m/t/3752569</link>
    <description>![Recursively constructing and analyzing dendritic polymers][1]&#xD;
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&amp;amp;[Wolfram Notebook][2]&#xD;
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  [2]: https://www.wolframcloud.com/obj/0a80d0d1-1d1a-48e9-9fae-fa93a82e4f95</description>
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