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| import copy
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| import io
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| import logging
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| import numpy as np
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| from typing import List
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| import onnx
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| import onnx.optimizer
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| import torch
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| from caffe2.proto import caffe2_pb2
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| from caffe2.python import core
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| from caffe2.python.onnx.backend import Caffe2Backend
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| from tabulate import tabulate
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| from termcolor import colored
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| from torch.onnx import OperatorExportTypes
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|
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| from .shared import (
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| ScopedWS,
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| construct_init_net_from_params,
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| fuse_alias_placeholder,
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| fuse_copy_between_cpu_and_gpu,
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| get_params_from_init_net,
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| group_norm_replace_aten_with_caffe2,
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| infer_device_type,
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| remove_dead_end_ops,
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| remove_reshape_for_fc,
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| save_graph,
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| )
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|
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| logger = logging.getLogger(__name__)
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|
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| def export_onnx_model(model, inputs):
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| """
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| Trace and export a model to onnx format.
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| Args:
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| model (nn.Module):
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| inputs (tuple[args]): the model will be called by `model(*inputs)`
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|
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| Returns:
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| an onnx model
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| """
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| assert isinstance(model, torch.nn.Module)
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| def _check_eval(module):
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| assert not module.training
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| model.apply(_check_eval)
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| with torch.no_grad():
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| with io.BytesIO() as f:
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| torch.onnx.export(
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| model,
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| inputs,
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| f,
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| operator_export_type=OperatorExportTypes.ONNX_ATEN_FALLBACK,
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| )
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| onnx_model = onnx.load_from_string(f.getvalue())
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|
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| return onnx_model
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| def _op_stats(net_def):
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| type_count = {}
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| for t in [op.type for op in net_def.op]:
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| type_count[t] = type_count.get(t, 0) + 1
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| type_count_list = sorted(type_count.items(), key=lambda kv: kv[0])
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| type_count_list = sorted(type_count_list, key=lambda kv: -kv[1])
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| return "\n".join("{:>4}x {}".format(count, name) for name, count in type_count_list)
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|
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| def _assign_device_option(
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| predict_net: caffe2_pb2.NetDef, init_net: caffe2_pb2.NetDef, tensor_inputs: List[torch.Tensor]
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| ):
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| """
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| ONNX exported network doesn't have concept of device, assign necessary
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| device option for each op in order to make it runable on GPU runtime.
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| """
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|
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| def _get_device_type(torch_tensor):
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| assert torch_tensor.device.type in ["cpu", "cuda"]
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| assert torch_tensor.device.index == 0
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| return torch_tensor.device.type
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|
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| def _assign_op_device_option(net_proto, net_ssa, blob_device_types):
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| for op, ssa_i in zip(net_proto.op, net_ssa):
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| if op.type in ["CopyCPUToGPU", "CopyGPUToCPU"]:
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| op.device_option.CopyFrom(core.DeviceOption(caffe2_pb2.CUDA, 0))
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| else:
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| devices = [blob_device_types[b] for b in ssa_i[0] + ssa_i[1]]
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| assert all(d == devices[0] for d in devices)
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| if devices[0] == "cuda":
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| op.device_option.CopyFrom(core.DeviceOption(caffe2_pb2.CUDA, 0))
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| predict_net_input_device_types = {
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| (name, 0): _get_device_type(tensor)
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| for name, tensor in zip(predict_net.external_input, tensor_inputs)
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| }
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| predict_net_device_types = infer_device_type(
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| predict_net, known_status=predict_net_input_device_types, device_name_style="pytorch"
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| )
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| predict_net_ssa, _ = core.get_ssa(predict_net)
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| _assign_op_device_option(predict_net, predict_net_ssa, predict_net_device_types)
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| init_net_ssa, versions = core.get_ssa(init_net)
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| init_net_output_device_types = {
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| (name, versions[name]): predict_net_device_types[(name, 0)]
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| for name in init_net.external_output
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| }
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| init_net_device_types = infer_device_type(
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| init_net, known_status=init_net_output_device_types, device_name_style="pytorch"
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| )
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| _assign_op_device_option(init_net, init_net_ssa, init_net_device_types)
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| def export_caffe2_detection_model(model: torch.nn.Module, tensor_inputs: List[torch.Tensor]):
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| """
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| Export a caffe2-compatible Detectron2 model to caffe2 format via ONNX.
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| Arg:
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| model: a caffe2-compatible version of detectron2 model, defined in caffe2_modeling.py
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| tensor_inputs: a list of tensors that caffe2 model takes as input.
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| """
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| model = copy.deepcopy(model)
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| assert isinstance(model, torch.nn.Module)
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| assert hasattr(model, "encode_additional_info")
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| logger.info(
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| "Exporting a {} model via ONNX ...".format(type(model).__name__)
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| + " Some warnings from ONNX are expected and are usually not to worry about."
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| )
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| onnx_model = export_onnx_model(model, (tensor_inputs,))
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|
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| init_net, predict_net = Caffe2Backend.onnx_graph_to_caffe2_net(onnx_model)
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| ops_table = [[op.type, op.input, op.output] for op in predict_net.op]
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| table = tabulate(ops_table, headers=["type", "input", "output"], tablefmt="pipe")
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| logger.info(
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| "ONNX export Done. Exported predict_net (before optimizations):\n" + colored(table, "cyan")
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| )
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| fuse_alias_placeholder(predict_net, init_net)
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| if any(t.device.type != "cpu" for t in tensor_inputs):
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| fuse_copy_between_cpu_and_gpu(predict_net)
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| remove_dead_end_ops(init_net)
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| _assign_device_option(predict_net, init_net, tensor_inputs)
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| params, device_options = get_params_from_init_net(init_net)
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| predict_net, params = remove_reshape_for_fc(predict_net, params)
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| init_net = construct_init_net_from_params(params, device_options)
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| group_norm_replace_aten_with_caffe2(predict_net)
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| model.encode_additional_info(predict_net, init_net)
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| logger.info("Operators used in predict_net: \n{}".format(_op_stats(predict_net)))
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| logger.info("Operators used in init_net: \n{}".format(_op_stats(init_net)))
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|
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| return predict_net, init_net
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|
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|
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| def run_and_save_graph(predict_net, init_net, tensor_inputs, graph_save_path):
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| """
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| Run the caffe2 model on given inputs, recording the shape and draw the graph.
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|
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| predict_net/init_net: caffe2 model.
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| tensor_inputs: a list of tensors that caffe2 model takes as input.
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| graph_save_path: path for saving graph of exported model.
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| """
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| logger.info("Saving graph of ONNX exported model to {} ...".format(graph_save_path))
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| save_graph(predict_net, graph_save_path, op_only=False)
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| logger.info("Running ONNX exported model ...")
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| with ScopedWS("__ws_tmp__", True) as ws:
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| ws.RunNetOnce(init_net)
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| initialized_blobs = set(ws.Blobs())
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| uninitialized = [inp for inp in predict_net.external_input if inp not in initialized_blobs]
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| for name, blob in zip(uninitialized, tensor_inputs):
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| ws.FeedBlob(name, blob)
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|
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| try:
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| ws.RunNetOnce(predict_net)
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| except RuntimeError as e:
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| logger.warning("Encountered RuntimeError: \n{}".format(str(e)))
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| ws_blobs = {b: ws.FetchBlob(b) for b in ws.Blobs()}
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| blob_sizes = {b: ws_blobs[b].shape for b in ws_blobs if isinstance(ws_blobs[b], np.ndarray)}
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| logger.info("Saving graph with blob shapes to {} ...".format(graph_save_path))
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| save_graph(predict_net, graph_save_path, op_only=False, blob_sizes=blob_sizes)
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| return ws_blobs
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|