lumbda/www/index.html
russell@unturf.com 9c25d46e13
home page: link to the WebAssembly playground
Adds a "Try it in your browser" section at the bottom of www/index.html
pointing to /playground/, plus a footer link for redundancy. Lands the
three-tier WASM SPA committed in 346b873 as a discoverable surface on
lumbda.com.
2026-06-14 11:49:40 -04:00

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<!doctype html>
<html lang="en">
<head>
<meta charset="utf-8">
<meta name="viewport" content="width=device-width,initial-scale=1">
<title>Lumbda — feedback as a primitive</title>
<meta name="description" content="Lumbda — a Lisp/Scheme-derived language with four execution backends (Python, Python bytecode VM, C + x86_64 JIT, pure x86_64 GNU asm), full first-class continuations, portal-based state migration, and a formally verified universality proof.">
<link rel="stylesheet" href="style.css">
<script src="https://uncloseai.com/uncloseai.js" type="module"></script>
</head>
<body>
<header>
<h1 aria-label="lumbda.">lumbda<span class="period" aria-hidden="true">.</span></h1>
<img class="lambda-mark" src="lumbda-logo-green.png?v=2" alt="" aria-hidden="true">
<p class="tagline">feedback as a primitive</p>
</header>
<main>
<section id="what">
<p class="lead">
Lumbda names a Lisp/Scheme-derived language carrying four independently implemented execution backends — one surface syntax, one test suite. A Python tree-walker with an optional bytecode VM, a C implementation that adds an x86_64 JIT, and a pure x86_64 GNU asm interpreter (~6,600 lines, ~23 KB stripped, zero external dependencies). Every backend runs a shared <code>.lsp</code> source byte-identically, with full first-class continuations, exact rationals, records, and hygienic macros.
</p>
</section>
<section id="quick">
<h2>Get it</h2>
<pre><code>git clone https://git.unturf.com/engineering/unturf/lumbda.git
cd lumbda
make test-all</code></pre>
<p>Run a program in any tier:</p>
<pre><code>python3 lumbda.py --fast examples/fibonacci.lsp
./c/lumbda examples/fibonacci.lsp
./asm/lumbda &lt; examples/fibonacci.lsp</code></pre>
</section>
<section id="tiers">
<h2>Four tiers, one language</h2>
<table>
<thead><tr><th>Tier</th><th>Lines</th><th>Binary</th><th>What a tier buys</th></tr></thead>
<tbody>
<tr><td>Python interpreter + bytecode VM</td><td>3,743</td><td>&mdash;</td><td>REPL hackability, debugging, reference</td></tr>
<tr><td>C tree-walker + bytecode VM</td><td>9,164</td><td>~215 KB</td><td>deep recursion, production workloads</td></tr>
<tr><td>C + x86_64 JIT</td><td>+patches</td><td>~215 KB</td><td>7&ndash;10&times; faster than CPython on recursive workloads</td></tr>
<tr><td>Pure x86_64 GNU asm</td><td>6,645</td><td>~23 KB</td><td>zero-dependency boot, auditability, embedded</td></tr>
<tr><td>GNU asm + naive mark-sweep GC + meta-GC arena</td><td>(same source, <code>GC_NAIVE=1</code>)</td><td>~27 KB</td><td>bounded memory without manual arena discipline</td></tr>
</tbody>
</table>
</section>
<section id="portal">
<h2>Portal: feedback across time</h2>
<p>A continuation carries feedback within a process. A portal carries feedback across processes. Same primitive, different scope: capture machine state, serialize, reload elsewhere, resume. Lumbda ships three portal formats with distinct trade-offs:</p>
<ul>
<li><strong>S-expression portal</strong> &mdash; Scheme source as a wire protocol. 16 of 16 producer&times;consumer cells green across Python, C, asm no-GC, and asm GC.</li>
<li><strong>JSON portal</strong> &mdash; graph-aware, preserves closures and live continuations (Python, C).</li>
<li><strong>Binary heap dump</strong> &mdash; asm only. 1.5 ms save+resume between two processes.</li>
</ul>
</section>
<section id="bend">
<h2>bend: dispatch to a GPU without rewriting your code</h2>
<p>Wrap any registered GPU-able form in <code>(bend …)</code> and lumbda decides per call whether to run it locally or ship it to a CUDA worker over our wire protocol. Tiny inputs stay local; heavy inputs bend to a worker that holds a warm CUDA context across requests.</p>
<pre><code>(bend (cuda-shake-fanout one-million-inputs 32)) ; → 157 ms on a 3090
; 12× faster than host hashlib</code></pre>
<p>Real workloads from the catalog: SHAKE256 fan-out (12&times; over host hashlib at 1 M inputs), secp256k1 batched point-mul (13.6 Mkeys/s on a 3090, ~309&times; coincurve CPU), tableau stabilizer sim (186&times; over Stim CPU, surveyed), and a quantum-reversible circuit simulator wired live to internal ECDSA research.</p>
<p><a class="cta" href="bend.html">Read the full bend page &mdash; protocol, benchmarks, form catalog</a></p>
</section>
<section id="proof">
<h2>EML universality proof</h2>
<p>A single operator <code>eml(x, y) = exp(x) &minus; ln(y)</code> with a constant 1 generates all elementary functions: <code>exp</code>, <code>ln</code>, arithmetic, negation, complex-plane access, trigonometry. Verified numerically in Python, verified in Lumbda's own bytecode, proven formally in Lean 4 with zero <code>sorry</code>. Lumbda's native symbolic-rewrite checker runs five theorems in 46 ms cold or 7 ms cached &mdash; roughly 16&times; faster than Lean's cold rebuild on identical hardware.</p>
</section>
<section id="doc">
<h2>Whitepaper</h2>
<p>Full language reference, tier-by-tier architecture, benchmarks, meta-GC design, universality proof.</p>
<p>
<a class="cta" href="lumbda-whitepaper.html">Read in browser (HTML)</a>
<a class="cta" href="lumbda-whitepaper.pdf">Download PDF (~2.7 MB)</a>
</p>
</section>
<section id="license">
<h2>License</h2>
<p>AGPL-3.0-only. Public domain for whitepapers, proofs, and disclosures through <a href="https://undefect.com">undefect.com</a>. Companion to <a href="https://unturf.com">unturf.com</a>&rsquo;s permacomputer project.</p>
</section>
<section id="playground">
<h2>Try it in your browser</h2>
<p>All three tiers compiled to WebAssembly &mdash; Python (Pyodide hosting <code>lumbda.py</code>), C (Emscripten), and a hand-written WAT parallel to <code>asm/lumbda.s</code>. Pick a demo, pick a tier (or run all three side by side), and watch the same Lisp source evaluate three different ways.</p>
<p><a class="cta" href="playground/">Open the playground &rarr;</a></p>
</section>
</main>
<footer>
<p>
<a href="https://git.unturf.com/engineering/unturf/lumbda">source</a>
&middot;
<a href="playground/">playground</a>
&middot;
<a href="lumbda-whitepaper.html">whitepaper (HTML)</a>
&middot;
<a href="lumbda-whitepaper.pdf">whitepaper (PDF)</a>
&middot;
<a href="https://unturf.com">unturf.com</a>
</p>
</footer>
</body>
</html>