# igneum-bench-cuda (proto-cuda) The NVIDIA twin of `proto-metal`. It runs the same random-program proof-of-work kernels on a CUDA GPU and checks them bit for bit against results produced on the Mac. This is a test harness, not a miner. No pool, no network, no wallet, no mining protocol. It fills a dataset, checks the GPU against known answers, and times the kernel. Nothing here earns anything. Status on 3 October 2026: the two closed-form packs ran on the RTX 5090 (96/96 vectors PASS each, see `docs/bench-log.md`). The memory-hard pack `igneum-genesis-mh` (added later the same day, construction in `../proto-metal/MEMHARD.md`) has passed only the clang emulation on the Mac; its 5090 and AMD runs are pending, and no NVIDIA figure for the memory-hard dataset exists yet. Status on 4 October 2026, generator version 2: every pack was regenerated by `igneum-pow export` (the Rust crate is now the pack source; the Swift exporter is a cross-check) with the adopted generator rule (exactly 16 loads per program, fresh-source loads, the acceptance rule of spec 01 section 1.4.6). All four packs pass the clang emulation (`emu/emu.sh`, 96/96 standalone, 2 warps per block in batch) and Apple OpenCL on the M5 Max; Metal cross-checked the exported genesis pack and a 2,000-program fuzz. The version 1 vectors, including the 5090's 192 of 192 from 3 October, are retired: the kernel text is unchanged, so those runs remain evidence that the ops agree on NVIDIA, but the first 5090 run on a version 2 pack is still owed (`docs/bench-log.md`, 4 October 2026 entry). `program.h` now carries `IGNEUM_GENERATOR 2`, `IGNEUM_PROGRAM_ATTEMPT` and `IGNEUM_PROGRAM_ID`; a worker built from a version 1 pack cannot serve a version 2 node. ## The one-click worker (nvrtc/, 4 October 2026) `nvrtc/worker.cpp` is the worker the Windows package ships as `igneum-worker-cuda.exe`: nothing to install but the NVIDIA driver. It opens `nvcuda.dll` (the driver API, in every driver) and `nvrtc64_120_0.dll` (NVIDIA's runtime compiler, redistributable, shipped next to the exe with `nvrtc-builtins64_128.dll`; `nvrtc/THIRD-PARTY.md`) with `LoadLibrary`/`GetProcAddress` (`nvrtc/cuda_api.h`), reads a pack directory at run time (`nvrtc/packfile.h`: program.h, seeds.txt, vectors.h), hands NVRTC the pack's `kernel.cu` and `kernel_bound.cu` up to the host launch wrappers with `program.h` and `memhard.h` as named headers, byte for byte, loads the cubin through the driver, fills the cache, builds the dataset and self-tests both plus the three vector warps against `vectors.h` before it serves a job. It speaks the same `--serve` protocol as `host.cu` (jobs, `prepare` in the background for the hourly swap, `found`/`done`); a job on seeds it has no pair for makes it look for the miner's pack by `seeds.txt` and build it in the foreground. `host.cu` stays the ahead-of-time harness and the launcher's fallback when the prebuilt worker is missing and a toolkit exists. ``` nvrtc/ worker.cpp the worker (C++17, driver API + NVRTC loaded at run time, cross-compiled with mingw) cuda_api.h the function-pointer table for the two libraries packfile.h C99 reader for a pack directory: sizes, seeds, vectors; the self-test verdict (shared with proto-opencl/host.c --pack) fetch-redist.sh downloads and verifies cuda.h, nvrtc.h, the two NVRTC DLLs and the Khronos OpenCL headers into nvrtc/redist/ (gitignored) build-windows.sh cross-compiles igneum-worker-cuda.exe and proto-opencl/igneum-worker-opencl.exe (static, KERNEL32 + Universal CRT only) THIRD-PARTY.md every third-party file, its URL, version, SHA-256 and licence clause emu/ the Mac check: emu_backend.cpp (driver API and NVRTC as host functions, the pack's kernels on host threads, the NVRTC source compared byte for byte with the pack), test.sh, serve-check.sh (shared with proto-opencl/test-generic.sh) ``` What was proven on the Mac (4 October 2026): `emu/test.sh` builds the worker against two real packs (the devnet epoch 0 pack and a second epoch and day exported by `igneum-pow`), runs `--check` (self-test PASS, 96 of 96 lanes) and a `--serve` session: 64 + 64 + 32 found on pack A including the nonces either side of the 32-bit boundary, pack B prepared in the background with its self-test PASS, the swap, the self-heal rebuild of pack A, 17 sampled hashes equal to `igneum-pow hash-bound`, and the NVRTC source check PASS for all four files (kernel.cu 7,385 of 8,893 bytes with the 1,508-byte host wrapper tail dropped, kernel_bound.cu 6,003 of 6,887, program.h and memhard.h identical). The exe cross-compiles and links with mingw. Not proven here: that the real NVRTC accepts the text with the two stub headers and that the driver runs the cubin; that is the RTX 5090 run (`windows-app/TEST.md`). ## Layout ``` proto-cuda/ host.cu host program: device info, dataset fill, self-test, vectors, bench, size sweep build.sh Linux build (nvcc) build.bat Windows build (nvcc + Visual Studio Build Tools) CHECKLIST.md Metal/CUDA equivalence, op by op, and what was verified where packs// one program pack per seed, written by igneum-pow export (generator v2, 4 October 2026) kernel.cu the program as a CUDA kernel, plus fill kernel and host launch wrappers kernel.cl the same program as OpenCL C for proto-opencl (AMD and any other OpenCL device), built at runtime program.h seed, day words, dataset size, loads per hash, wrapper declarations (C99-safe: proto-opencl/host.c includes it too) vectors.h expected outputs for 3 warps (96 x 64-bit) and dataset self-test values program.json the instruction list and all constants, for any other implementation vectors.json the same vectors as JSON program.metal the Metal source the Mac ran, for diffing by eye memhard.h memory-hard packs only: the cache fill and item derivation core, compiled for device and host memhard.metal memory-hard packs only: the Metal cache-fill and build kernels the Mac ran emu/ CPU emulation shim: compile and check a pack with plain clang++/g++, no GPU nvrtc/ the one-click worker (driver API + NVRTC at run time), its Mac emulation and the third-party record ``` Four packs are checked in, all generator version 2 with 128 loads per hash. `igneum-genesis` and `igneum-hourly` use the original closed-form dataset (`IGNEUM_DATASET_MODE 0`, implied when the macro is absent). `igneum-genesis-mh` is the same program as `igneum-genesis` over the memory-hard dataset (`IGNEUM_DATASET_MODE 1`): a 256 MiB cache of chained ChaCha12 blocks filled on the GPU from the day key, and every 64-byte dataset item derived from 8 dependent cache reads through a seed-parameterised mixer (`../proto-metal/MEMHARD.md`). The hash kernel text is identical in both packs; only the dataset contents differ, so the 96 expected outputs differ. All three were cross-checked on the Mac's Metal GPU before being written. ## Prerequisites Linux - An NVIDIA driver recent enough for the toolkit. For CUDA 12.8 that is the R570 series or newer (approximate, from memory; `nvidia-smi` prints the driver's maximum supported CUDA version in its header). - CUDA Toolkit 12.8 or newer. Blackwell (`sm_120`, RTX 50 series) is not known to older toolkits. - A host compiler the toolkit supports (gcc 11 to 13 for 12.8, approximate). Windows - The same driver requirement. - CUDA Toolkit 12.8 or newer. Tick the Visual Studio integration in the installer. - Visual Studio 2022 Build Tools with the "Desktop development with C++" workload. nvcc needs `cl.exe`. - Run `build.bat` from an "x64 Native Tools Command Prompt for VS 2022" so `cl.exe` is on PATH. ## Build Linux: ``` cd proto-cuda ./build.sh # pack igneum-genesis, -arch=sm_120 ./build.sh igneum-hourly # the second pack ./build.sh igneum-genesis-mh # the memory-hard pack (needs 256 MiB more device memory for the cache) ./build.sh igneum-genesis native # if sm_120 is refused, let nvcc pick the installed GPU ``` Windows (x64 Native Tools Command Prompt): ``` cd proto-cuda build.bat build.bat igneum-hourly build.bat igneum-genesis-mh build.bat igneum-genesis native ``` Both scripts run this one command (paths adjusted for the pack): ``` nvcc -O3 -std=c++17 -arch=sm_120 -I packs/igneum-genesis -o igneum-bench-cuda-igneum-genesis host.cu packs/igneum-genesis/kernel.cu ``` Notes - `-arch=sm_120` is Blackwell. `-arch=native` (CUDA 11.6 or newer) compiles for whatever GPU is in the machine and is the fallback if the toolkit is too old to know `sm_120` (which means it is too old for a 5090 anyway: upgrade). - If nvcc on Windows refuses the Visual Studio version, add `-allow-unsupported-compiler` to the nvcc line. - The host code is plain C++17 and the CUDA runtime API. No NVRTC, no third-party libraries, no JSON parser. The kernel is compiled ahead of time from the pack. ## Run ``` ./igneum-bench-cuda-igneum-genesis # 1 GiB dataset, 5 batches x 2^24 nonces, vectors checked ./igneum-bench-cuda-igneum-genesis --sweep # 4, 64, 256, 512, 1024 MiB in sequence (the Mac's sweep) ./igneum-bench-cuda-igneum-genesis --block-warps 4 # 4 warps per block instead of 1 (still bit-exact) ./igneum-bench-cuda-igneum-hourly # the second program ./igneum-bench-cuda-igneum-genesis-mh # memory-hard dataset: cache fill + build, cache check, vectors, bench ./igneum-bench-cuda-igneum-genesis-mh --sweep # the same sweep over the memory-hard dataset ``` On Windows the binaries are `igneum-bench-cuda-igneum-genesis.exe` and so on. Flags: `--dataset-mib N` (power of two, default 1024), `--sweep`, `--batch-log2 B` (default 24), `--batches N` (default 5), `--block-warps W` (default 1, mirrors the Metal run's one SIMD group per threadgroup), `--device D`. What it prints, in order: 1. GPU name, SM count, memory, clocks, L2, warp size, driver and runtime versions, registers per thread and resident warps per SM for the kernel, and which dataset construction the pack uses. 2. Memory-hard packs only: cache fill time on the GPU (twice), cache fill time on the host (one thread, the same `memhard.h` text), then the cache check: every one of the 2^26 words GPU versus host, the host FNV-1a 64 against the Mac's, and the head and last line against the Mac's. A FAIL here stops nothing but fails OVERALL. 3. Dataset fill time (closed form, twice, with write GB/s) or dataset build time (memory-hard, twice, with items/s and cache-line reads/s). 4. Dataset self-test: 16 head words and word `[MASK]` against values from the Mac, 64 random words against the host formula (closed form) or the host derivation from the host cache (memory-hard), and the Mac's 64 sampled words (memory-hard packs; those inside the current dataset size). 5. Vectors: 3 warps (base nonces 0, 4096, 1000000), each run standalone as one 32-thread block, then again read out of the warm-up batch so the bench configuration itself is checked. PASS or FAIL per warp, with the first differing lane printed on FAIL. 6. Timing: 5 batches of 2^24 hashes after a warm-up batch, GPU event time and wall time, Mhash/s, hashes/s, GB/s useful (loads per hash x 4 bytes x hashes/s, the same definition as the Mac's table). 7. A summary table in Markdown and `OVERALL: PASS` or `FAIL`. Exit code 0 on PASS, 1 on FAIL, 2 on a CUDA error. Vectors are only checked when the dataset is the pack's size (1024 MiB), because the outputs depend on the address mask. At other sizes the table says "skipped (not pack size)" and only the dataset self-test counts. ## What PASS means - Closed-form packs: the CUDA fill kernel produced the same dataset as the Mac's closed-form function (sampled, not every word). - Memory-hard pack: the CUDA cache-fill kernel produced, word for word, the same 256 MiB cache as the host and as the Mac (FNV-1a 64, head, last line), and the CUDA build kernel produced the same dataset words as the host derivation and the Mac's samples (sampled, not every word). The whole chain from day key to dataset word agrees across three compilers (Apple Metal, host C++, NVIDIA CUDA). - For 96 nonces spread across the nonce space, the RTX 5090 produced the same 64-bit outputs as the Mac's CPU interpreter, which had itself matched the Mac's Metal GPU. The random program, the register init, the warp shuffles, the multiply-high and rotates, and the dataset addressing all agree between Apple and NVIDIA. - With `--block-warps W` the in-batch check passing shows that packing W warps per block changed nothing. A FAIL with a small number of differing lanes points at a shuffle; a FAIL in every lane points at an arithmetic op or the dataset. Send the whole printout either way. ## Sending results back Copy the printed header lines (GPU, CUDA versions, kernel line, program line) and the summary table into `docs/bench-log.md` under a dated heading, together with the output of `nvcc --version` and the driver version from `nvidia-smi`. Keep the full stdout as well. Run both packs and the sweep so the log has the same shape as the Mac's entry. Do not edit the numbers; if a run looks odd, run it again and log both. ## Checking a pack without a GPU `emu/emu.sh [flags]` compiles `host.cu` and the pack's `kernel.cu` as plain C++17 against a shim `cuda_runtime.h` and runs the kernels on host threads (32 per warp, a barrier inside `__shfl_xor_sync`). Use small batches (`--batch-log2 13 --batches 1`). Only PASS/FAIL matters; the rates it prints are noise. This is how the CUDA text was checked on the Mac on 3 October 2026 (all three packs PASS, see `CHECKLIST.md`). The memory-hard pack builds the 1 GiB dataset on host threads, which takes about a second on the M5 Max; the cache fill on one host thread took 161 ms. It is not an nvcc build and says nothing about NVIDIA hardware. ## Regenerating a pack Since 4 October 2026 the packs are written by the Rust crate, which is the normative implementation: ``` cd igneum-pow && cargo build --release ./target/release/igneum-pow export --seed igneum-genesis --out ../proto-cuda/packs/igneum-genesis-mh # memory-hard (default) ./target/release/igneum-pow export --closed-form --seed igneum-genesis --out ../proto-cuda/packs/igneum-genesis ./target/release/igneum-pow export --closed-form --seed igneum-hourly --out ../proto-cuda/packs/igneum-hourly ./target/release/igneum-pow export --epoch-hex <32-byte epoch seed> --day-hex --out ../proto-cuda/packs/ cargo test --release # the packs must match the emitters byte for byte ``` The fourth form is the chain's derivation (`igneum-devnet-v4-epoch0`: the devnet genesis hash and the day bytes of 2026-10-04). The Metal cross-check is a separate step: `proto-metal/igneum-bench --seed --export-pack ` derives the same program with the Swift generator, runs the Metal kernel for the three vector warps and refuses to write unless all 96 outputs match its CPU interpreter; diff its `program.json` instruction list and `vectors.json` against the Rust pack (identical on every seed tried, `docs/bench-log.md`). `--day` and `--dataset-log2` change the dataset constants and are recorded in the pack.