log_extract.py 3.7 KB

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  1. # mypy: allow-untyped-defs
  2. from contextlib import contextmanager
  3. from typing import Any, cast
  4. import random
  5. import torch
  6. import time
  7. from torch.utils.benchmark import Timer
  8. def extract_ir(filename: str) -> list[str]:
  9. BEGIN = "<GRAPH_EXPORT>"
  10. END = "</GRAPH_EXPORT>"
  11. pfx = None
  12. graphs = []
  13. with open(filename) as f:
  14. split_strs = f.read().split(BEGIN)
  15. for i, split_str in enumerate(split_strs):
  16. if i == 0:
  17. continue
  18. end_loc = split_str.find(END)
  19. if end_loc == -1:
  20. continue
  21. s = split_str[:end_loc]
  22. pfx = split_strs[i - 1].splitlines()[-1]
  23. lines = [x[len(pfx):] for x in s.splitlines(keepends=True)]
  24. graphs.append(''.join(lines))
  25. return graphs
  26. def make_tensor_from_type(inp_type: torch._C.TensorType):
  27. size = inp_type.sizes()
  28. stride = inp_type.strides()
  29. device = inp_type.device()
  30. dtype = inp_type.dtype()
  31. assert size is not None
  32. assert stride is not None
  33. assert device is not None
  34. assert dtype is not None
  35. return torch.empty_strided(size=size, stride=stride, device=device, dtype=dtype)
  36. def load_graph_and_inputs(ir: str) -> tuple[Any, list[Any]]:
  37. graph = torch._C.parse_ir(ir, parse_tensor_constants=True)
  38. graph.makeMultiOutputIntoTuple()
  39. inputs = []
  40. for inp in graph.inputs():
  41. if isinstance(inp.type(), torch._C.FloatType):
  42. inputs.append(random.uniform(.1, 100))
  43. elif isinstance(inp.type(), torch._C.IntType):
  44. inputs.append(random.randint(1, 100))
  45. elif isinstance(inp.type(), torch._C.TensorType):
  46. tensorType = cast(torch._C.TensorType, inp.type())
  47. inputs.append(make_tensor_from_type(tensorType))
  48. elif isinstance(inp.type(), torch._C.BoolType):
  49. inputs.append(random.randint(0, 1) == 1)
  50. else:
  51. raise NotImplementedError(f"A default value is not implemented for type {inp.type()}")
  52. func = torch._C._create_function_from_graph("forward", graph)
  53. torch._C._jit_pass_erase_shape_information(func.graph)
  54. return (func, inputs)
  55. def time_cuda(fn, inputs, test_runs):
  56. t = Timer(stmt="fn(*inputs)", globals={"fn": fn, "inputs" : inputs})
  57. times = t.blocked_autorange()
  58. return times.median * 1000 # time in ms
  59. def time_cpu(fn, inputs, test_runs):
  60. s = time.perf_counter()
  61. for _ in range(test_runs):
  62. fn(*inputs)
  63. e = time.perf_counter()
  64. return (e - s) / test_runs * 1000 # time in ms
  65. def run_test(ir, inputs, *, warmup_runs=10, test_runs=20) -> float:
  66. graph, _ = load_graph_and_inputs(ir)
  67. for _ in range(warmup_runs):
  68. graph(*inputs)
  69. is_cpu = None
  70. for input in inputs:
  71. if isinstance(input, torch.Tensor):
  72. is_cpu = input.device.type == "cpu"
  73. break
  74. assert is_cpu is not None
  75. out = time_cpu(graph, inputs, test_runs) if is_cpu else time_cuda(graph, inputs, test_runs)
  76. return out
  77. @contextmanager
  78. def no_fuser(*args, **kwargs):
  79. old_optimize = torch._C._get_graph_executor_optimize(False)
  80. try:
  81. yield
  82. finally:
  83. torch._C._get_graph_executor_optimize(old_optimize)
  84. def run_baseline_no_fusion(ir, inputs) -> float:
  85. with no_fuser():
  86. return run_test(ir, inputs)
  87. def run_nnc(ir, inputs, dynamic) -> float:
  88. try:
  89. strat = [("DYNAMIC", 10)] if dynamic else [("STATIC", 10)]
  90. old_strat = torch.jit.set_fusion_strategy(strat)
  91. with torch.jit.fuser("fuser1"):
  92. return run_test(ir, inputs)
  93. finally:
  94. torch.jit.set_fusion_strategy(old_strat)
  95. def run_nvfuser(ir, inputs) -> float:
  96. with torch.jit.fuser("fuser2"):
  97. return run_test(ir, inputs)