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add Benchmark (pytest) benchmark result for 403b89a
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@@ -1,5 +1,5 @@ | ||
window.BENCHMARK_DATA = { | ||
"lastUpdate": 1725911973416, | ||
"lastUpdate": 1726130265672, | ||
"repoUrl": "https://github.com/MPACT-ORG/mpact-compiler", | ||
"entries": { | ||
"Benchmark": [ | ||
|
@@ -2146,6 +2146,114 @@ window.BENCHMARK_DATA = { | |
"extra": "mean: 47.87539610000806 msec\nrounds: 20" | ||
} | ||
] | ||
}, | ||
{ | ||
"commit": { | ||
"author": { | ||
"email": "[email protected]", | ||
"name": "Aart Bik", | ||
"username": "aartbik" | ||
}, | ||
"committer": { | ||
"email": "[email protected]", | ||
"name": "GitHub", | ||
"username": "web-flow" | ||
}, | ||
"distinct": true, | ||
"id": "403b89ab41116c776eadfb820fe60913ca9db50f", | ||
"message": "[mpact][external] bump torch-mlir to @6934ab81b0efe105a4800 (#77)\n\nNote that this is actually to get the\r\nbump llvm/llvm-project@b6603e1 so we\r\ncan proceed with parallelization", | ||
"timestamp": "2024-09-11T23:55:32-07:00", | ||
"tree_id": "dbe6a99ce84898e6d741974bcbe8fe725070267f", | ||
"url": "https://github.com/MPACT-ORG/mpact-compiler/commit/403b89ab41116c776eadfb820fe60913ca9db50f" | ||
}, | ||
"date": 1726130264834, | ||
"tool": "pytest", | ||
"benches": [ | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_mv_dense", | ||
"value": 5880.22273057667, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.000005747201264405737", | ||
"extra": "mean: 170.06158538860834 usec\nrounds: 1985" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_mm_dense", | ||
"value": 34.74348405826911, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.0004076555335279264", | ||
"extra": "mean: 28.782375374987623 msec\nrounds: 32" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_add_dense", | ||
"value": 5905.171066717692, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.00003325796699268225", | ||
"extra": "mean: 169.3431043236206 usec\nrounds: 2473" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_mul_dense", | ||
"value": 5838.5530347877, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.00002769470012890522", | ||
"extra": "mean: 171.27531325685075 usec\nrounds: 3569" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_nop_dense", | ||
"value": 861017.9499771309, | ||
"unit": "iter/sec", | ||
"range": "stddev: 2.3005870367371787e-7", | ||
"extra": "mean: 1.1614159728337379 usec\nrounds: 114469" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_sddmm_dense", | ||
"value": 31.799853250085047, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.00041125989025708385", | ||
"extra": "mean: 31.446685999952706 msec\nrounds: 32" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_mv_sparse", | ||
"value": 12427.09635712358, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.000005585997139614233", | ||
"extra": "mean: 80.46932052850546 usec\nrounds: 3070" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_mm_sparse", | ||
"value": 20.075227153039297, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.0010209501300545074", | ||
"extra": "mean: 49.81263685719265 msec\nrounds: 21" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_add_sparse", | ||
"value": 203.67254016890678, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.00048136664868827383", | ||
"extra": "mean: 4.9098420394359215 msec\nrounds: 279" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_mul_sparse", | ||
"value": 187.7039387130781, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.00011991751551451542", | ||
"extra": "mean: 5.327538712592427 msec\nrounds: 167" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_nop_sparse", | ||
"value": 841734.075128053, | ||
"unit": "iter/sec", | ||
"range": "stddev: 1.889107373087626e-7", | ||
"extra": "mean: 1.1880236639438293 usec\nrounds: 133281" | ||
}, | ||
{ | ||
"name": "benchmark/python/benchmarks/regression_benchmark.py::test_sddmm_sparse", | ||
"value": 21.945676409007767, | ||
"unit": "iter/sec", | ||
"range": "stddev: 0.00048762387827381654", | ||
"extra": "mean: 45.56706211112922 msec\nrounds: 18" | ||
} | ||
] | ||
} | ||
] | ||
} | ||
|