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authorKawrakow <48489457+ikawrakow@users.noreply.github.com>2024-08-20 17:15:47 +0300
committerGitHub <noreply@github.com>2024-08-20 17:15:47 +0300
commitd259a50ca6fd3a0821abe6a16b73c0b19c5b4651 (patch)
tree4f83bbbbbbd9323192d8c0bceb51de5b0fb620c2 /tests
parenta325745000114a43c1546323f91720db503ed0a9 (diff)
Fused soft cap and SIMD-ified GeLU (#9)
* Softcap: WIP Fuses scale + tanh + scale as used for softcaping in some models. Just CPU for now. ~1.4% for PP-512 on Gemma2-9b, no effect on TG. Somewhat surprisingly the improvement does not increase as I go to longer contexts. Gemma2 does softcap on K*Q, which grows quadratically with context length, so I would have thought the benefit from fusing scale, tanh, scale would increase. But no, no luck. * softcap: CUDA * softcap: CUDA ~1% speedup for Gemma2-9b * softcap: Metal and NEON About 1% speedup. * Simdified gelu Gives ~1% speedup for Gemma2-9b prompt processing on AVX512/AVX2. It looks like the gelu operation is memory bound on my CPU's after SIMD-ifying it. By not using the 128 kb gelu lookup table we gain a small advantage. On the M2-Max the lookup table is slightly faster than the SIMD version, so left the lookup table for ARM_NEON. * softcap, tanh: avoid NaNs for large arguments (AVX2, AVX512) Not that I have encountered this in practice, but just to be sure. This does it for AVX512 and AVX2, still need a guard for ARM_NEON. * llama-bench: add ability to turn off warmup runs So we don't need to wait forever on, e.g., benchmarks involving long contexts. * softcap, tanh: avoid NaNs for large arguments (NEON) --------- Co-authored-by: Iwan Kawrakow <iwan.kawrakow@gmail.com>
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