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russell@unturf.com 5d1ad62f51
bend catalog Wave 4 — 20 surveyed forms across new domains
Covers lattice cryptography (Kyber, Falcon), lattice reduction
(G6K tensor sieve), privacy/MPC (Ironman OTE, Piranha, Fastplay),
ZK prover internals beyond MSM/NTT (zkSpeed sumcheck, Air-FRI),
sparse direct solvers (cuDSS Cholesky), real-time DSP (Kalman
batched 1386x, particle filter), computational biology beyond
pairwise (SCAMP matrix profile, cuDTW subsequence), erasure
coding (PErasure Reed-Solomon, Rabin fingerprint), computational
geometry (gDel3D, CudaHull), ODE/PDE (RK stiff ChemKin, FEM
assembly JIT), quantum chemistry (TeraChem DFT).

Headline picks for ECDSA mission:
  - cuda-g6k-tensor-sieve   1230x — lattice attacks on biased nonces
  - cuda-zkspeed-sumcheck    801x — sumcheck for ZK proof-of-equivalence
  - cuda-kalman-batched     1386x — batched estimation for candidate
                                    sweep + bluetooth/punters tracking

Headline picks for unsandbox/permacomputer mission:
  - cuda-kalman-batched     1386x — RSSI tracking, punters surface
  - cuda-ironman-ote         237x — cross-fleet PSI/MPC
  - cuda-perasure-crs        10x  + 10 GB/s — object-storage erasure
  - cuda-scamp-matrix-profile      — journald intrusion detection
  - cuda-rabin-fingerprint   16x  + 40 Gbps — CDN/proxy cache dedup

Headline picks for undefect mission:
  - cuda-cudss-cholesky    >100x — defect-graph eigenproblems
  - cuda-cufalcon-sign    29.5x — PQ disclosure signing
  - cuda-air-fri           22.8x — verifiable-defect-scan provenance

7 filter-outs noted (MAFFT, RAxML, AmgX CG, BVH Karras LBVH, LDPC
decode, mesh decimation, discrete Gaussian sampler) — kept honest
rather than padded.

Catalog total: 5 live + ~62 surveyed across 4 Waves.
2026-06-05 21:33:49 -04:00
asm asm: HEAP_SIZE 1MB → 4MB + mark-stack cap 16K → 256K (silent-drop fix) 2026-06-05 10:15:32 -04:00
c binary wire mode: 12x faster than host hashlib at 1M inputs 2026-06-05 09:40:45 -04:00
docs ticket 0005: mark resolved, document the four bug fixes 2026-04-24 12:18:44 -04:00
examples bend catalog Wave 4 — 20 surveyed forms across new domains 2026-06-05 21:33:49 -04:00
proof rename: uncommonlisp -> lumbda throughout the repo 2026-04-19 10:20:11 -04:00
tests c: enable Boehm GC by default, GC_INIT, file ops, regression test 2026-06-04 00:55:31 -04:00
whitepaper whitepaper: document the three asm tiers and five session-fixed defects 2026-04-24 12:52:59 -04:00
www bend catalog Wave 4 — 20 surveyed forms across new domains 2026-06-05 21:33:49 -04:00
.gitignore Add whitepaper: Feedback Is All You Need 2026-04-14 13:32:42 -04:00
.gitlab-ci.yml www + whitepaper: adopt custom λ mark from MPS, green, 3× wordmark size 2026-04-19 17:32:43 -04:00
bench.py rename: uncommonlisp -> lumbda throughout the repo 2026-04-19 10:20:11 -04:00
cl-compat.lsp asm/lumbda-full: Zoë's CL runs end-to-end (ticket 0005 follow-up) 2026-04-24 12:17:58 -04:00
CLAUDE.md bend: cuda-sim-ops-bin handler + per-call CPU/GPU telemetry 2026-06-05 10:18:11 -04:00
friction.sh rename: uncommonlisp -> lumbda throughout the repo 2026-04-19 10:20:11 -04:00
lumbda.py binary wire mode: 12x faster than host hashlib at 1M inputs 2026-06-05 09:40:45 -04:00
Makefile make gpu-worker: default to C tier 2026-06-05 08:34:43 -04:00
README.md rename: uncommonlisp -> lumbda throughout the repo 2026-04-19 10:20:11 -04:00
stdlib.lsp rename: uncommonlisp -> lumbda throughout the repo 2026-04-19 10:20:11 -04:00
tests.py rename followup: flip tests.py absolute path to /home/fox/git/lumbda 2026-04-19 10:29:51 -04:00

Lumbda

A Lisp/Scheme-derived, just-in-time lambda language. Four implementation tiers with MOAD defect isolation. Workloads migrate across basic UNIX systems.

Four implementation tiers sharing one wire format — Scheme source itself:

  • Python bytecode VM — reference, full first-class continuations
  • C tree-walker + bytecode VM — portable C, JSON portal
  • C + x86_64 JIT — pattern-matched native code, 710× faster than CPython
  • Pure x86_64 assembly — 22 KB stripped, zero libc, 14 syscalls

Feedback is the primitive across four scopes: continuations within a process, portal files across processes, S-expressions across implementations, TCP sockets across machines.

Home: lumbda.com

λ> (define (fib n)
     (let loop ((a 0) (b 1) (i 0))
       (if (= i n) a (loop b (+ a b) (+ i 1)))))
λ> (map fib (iota 10))
(0 1 1 2 3 5 8 13 21 34)

Usage

python3 lumbda.py                # interactive REPL
python3 lumbda.py script.lsp     # run a file
python3 lumbda.py -e '(+ 1 2)'  # eval an expression
python3 lumbda.py --fast script.lsp  # auto-compile (7-19x faster)

Bytecode compiler

Lumbda includes a stack-based bytecode compiler and VM. Enable it with --fast or (auto-compile! #t):

python3 lumbda.py --fast examples/fibonacci.lsp
(auto-compile! #t)
(define (ack m n)
  (cond ((= m 0) (+ n 1))
        ((= n 0) (ack (- m 1) 1))
        (else    (ack (- m 1) (ack m (- n 1))))))
(compiled? ack)  ; => #t
(ack 3 4)        ; => 125

The compiler handles: if, begin, and, or, when, unless, cond, define, set!, lambda, let, named-let, let*, letrec, do, call/cc, function calls with tail-call optimization. Macros are expanded at compile time. 20 specialized opcodes for hot builtins (+, -, *, =, <, car, cdr, cons, null?, etc.) avoid function call overhead.

Features:

  • Explicit frame stack — compiled-to-compiled calls don't grow the Python stack
  • Full continuationscall/cc supports upward continuations; generators work
  • Constant folding(+ 1 2) folds to 3 at compile time
  • Peephole optimizer — eliminates dead code (VOID+POP, JUMP-to-next)
  • (disassemble proc) — inspect generated bytecode

What's implemented

Core language

  • Full lexical scoping and closures
  • Tail-call optimization (TCO) — deep recursion never blows the stack
  • Hygienic macros via syntax-rules with ellipsis (...) support
  • define-macro / defmacro for procedural macros
  • call/cc — full continuations (escape + upward) in compiled code
  • values / call-with-values
  • dynamic-wind, guard, with-exception-handler
  • quasiquote / unquote / unquote-splicing with proper nesting
  • R7RS internal defines with letrec* body semantics
  • R7RS error objects
  • Exact rational arithmetic — (/ 1 3)1/3, (+ 1/4 3/4)1
  • String ports — open-input-string open-output-string read on ports
  • Mutable strings — string-set! string-fill! string-copy!
  • Module system — module / import with export lists
  • define-record-type with (inherit parent) for single-inheritance
  • Pretty-print — pp / pretty-print
  • Tracing — (trace fn) / (untrace fn)

Special forms define set! lambda λ if cond case and or when unless begin let let* letrec letrec* named-let do quasiquote define-macro define-syntax syntax-rules let-syntax letrec-syntax apply eval values call/cc dynamic-wind guard parameterize load error module import define-record-type

Built-ins

  • Arithmetic: + - * / quotient remainder modulo expt sqrt abs floor ceiling round truncate min max gcd lcm log exp trig functions, numerator denominator
  • Rationals: (/ 1 3)1/3, literal 1/3 syntax, exact / inexact conversion
  • Comparison: = < > <= >= zero? positive? negative? odd? even?
  • Pairs & lists: cons car cdr list length append reverse map for-each filter fold-left fold-right reduce any every sort partition find take drop zip flatten and more
  • SRFI-1: last firstfifth delete lset-union lset-intersection lset-difference unfold list-tabulate
  • Strings: string-length string-ref string-set! substring string-append string-copy string-copy! string-fill! string->list string->number format and more
  • Characters: char->integer integer->char char-alphabetic? char-upcase char-downcase
  • Vectors: make-vector vector vector-ref vector-set! vector-copy vector-copy!
  • Hash tables: make-hash-table hash-table-set! hash-table-ref hash-table-keys hash-table-values hash-table-walk and more
  • I/O: display write newline read read-char read-line open-input-string open-output-string with-output-to-string
  • File system: file-exists? delete-file rename-file directory-files current-directory
  • System: command-line get-environment-variable current-time exit
  • Python interop: py-eval py-exec py-import py-call py-attr
  • Compiler: compile compiled? disassemble auto-compile!

Standard library (stdlib.lsp) Additional macros, string/list/numeric/tree utilities, alist/hash helpers, simple object system, SRFI-2/8/64 test framework.

Examples

python3 lumbda.py --fast examples/fibonacci.lsp
python3 lumbda.py --fast examples/generator.lsp
python3 lumbda.py --fast examples/mergesort.lsp
python3 lumbda.py examples/objects.lsp
;; Generator using full continuations
(auto-compile! #t)
(define (make-gen thunk)
  (let ((k #f) (done #f))
    (lambda ()
      (if done 'done
          (call/cc (lambda (return)
            (if k (k return)
                (begin (thunk (lambda (val)
                         (call/cc (lambda (next)
                           (set! k next) (return val)))))
                       (set! done #t) (return 'done)))))))))

(define counter (make-gen (lambda (yield)
  (let loop ((i 0)) (yield i) (loop (+ i 1))))))
(counter) ; => 0
(counter) ; => 1
(counter) ; => 2

Running tests & benchmarks

make test          # run 529 tests
make test-verbose  # verbose output
make bench         # compare interpreter vs bytecode vs CPython
make lint          # syntax check all Python files

Portal — machine state migration

Serialize a running VM mid-computation, transfer to another machine, resume:

# Machine A: start a long computation with checkpoints
python3 lumbda.py --fast examples/portal-prime.lsp
# saves prime-state.portal at checkpoint

# Machine B: resume from checkpoint
python3 lumbda.py --portal-resume prime-state.portal
# continues from exact instruction

The portal captures the full env chain, compiled procedures, continuations, and frame stack as JSON. 16KB for a primality test in progress.

EML universality proof

The proof/ directory contains a formal verification that eml(x,y) = exp(x) - ln(y) with constant 1 generates all elementary functions (arXiv:2603.21852v2).

Three approaches, benchmarked:

Approach Time Guarantee
Python (numerical) 0.04s 1e-10 tolerance
Lumbda (numerical) 59s 1e-10 tolerance
Lean 4 (formal proof) 1.5s kernel-verified

The formal proof is 40x faster than brute-force search with infinitely stronger guarantees. See proof/benchmark_results.md for the full analysis — including why this is MOAD-0001 (the sedimentary defect) at the proof methodology layer.

File layout

lumbda.py   interpreter + bytecode compiler (one file, ~3200 lines)
stdlib.lsp        extended standard library
tests.py          test suite (571 tests)
bench.py          benchmarks vs CPython
examples/         example programs
proof/            EML universality proof (Python, Scheme, Lean 4)
Makefile          make test / make bench / make repl