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https://github.com/PaddlePaddle/PaddleOCR.git
synced 2026-09-24 23:33:08 +08:00
add trt min max opt shape
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+77
-3
@@ -139,9 +139,83 @@ def create_predictor(args, mode, logger):
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config.enable_use_gpu(args.gpu_mem, 0)
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if args.use_tensorrt:
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config.enable_tensorrt_engine(
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precision_mode=inference.PrecisionType.Half
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if args.use_fp16 else inference.PrecisionType.Float32,
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max_batch_size=args.max_batch_size)
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precision_mode=inference.PrecisionType.Float32,
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max_batch_size=args.max_batch_size,
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min_subgraph_size=3) # skip the minmum trt subgraph
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if mode == "det" and "mobile" in model_file_path:
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min_input_shape = {
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"x": [1, 3, 50, 50],
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"conv2d_92.tmp_0": [1, 96, 20, 20],
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"conv2d_91.tmp_0": [1, 96, 10, 10],
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"nearest_interp_v2_1.tmp_0": [1, 96, 10, 10],
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"nearest_interp_v2_2.tmp_0": [1, 96, 20, 20],
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"nearest_interp_v2_3.tmp_0": [1, 24, 20, 20],
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"nearest_interp_v2_4.tmp_0": [1, 24, 20, 20],
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"nearest_interp_v2_5.tmp_0": [1, 24, 20, 20],
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"elementwise_add_7": [1, 56, 2, 2],
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"nearest_interp_v2_0.tmp_0": [1, 96, 2, 2]
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}
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max_input_shape = {
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"x": [1, 3, 2000, 2000],
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"conv2d_92.tmp_0": [1, 96, 400, 400],
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"conv2d_91.tmp_0": [1, 96, 200, 200],
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"nearest_interp_v2_1.tmp_0": [1, 96, 200, 200],
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"nearest_interp_v2_2.tmp_0": [1, 96, 400, 400],
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"nearest_interp_v2_3.tmp_0": [1, 24, 400, 400],
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"nearest_interp_v2_4.tmp_0": [1, 24, 400, 400],
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"nearest_interp_v2_5.tmp_0": [1, 24, 400, 400],
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"elementwise_add_7": [1, 56, 400, 400],
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"nearest_interp_v2_0.tmp_0": [1, 96, 400, 400]
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}
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opt_input_shape = {
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"x": [1, 3, 640, 640],
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"conv2d_92.tmp_0": [1, 96, 160, 160],
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"conv2d_91.tmp_0": [1, 96, 80, 80],
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"nearest_interp_v2_1.tmp_0": [1, 96, 80, 80],
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"nearest_interp_v2_2.tmp_0": [1, 96, 160, 160],
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"nearest_interp_v2_3.tmp_0": [1, 24, 160, 160],
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"nearest_interp_v2_4.tmp_0": [1, 24, 160, 160],
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"nearest_interp_v2_5.tmp_0": [1, 24, 160, 160],
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"elementwise_add_7": [1, 56, 40, 40],
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"nearest_interp_v2_0.tmp_0": [1, 96, 40, 40]
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}
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if mode == "det" and "server" in model_file_path:
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min_input_shape = {
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"x": [1, 3, 50, 50],
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"conv2d_59.tmp_0": [1, 96, 20, 20],
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"nearest_interp_v2_2.tmp_0": [1, 96, 20, 20],
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"nearest_interp_v2_3.tmp_0": [1, 24, 20, 20],
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"nearest_interp_v2_4.tmp_0": [1, 24, 20, 20],
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"nearest_interp_v2_5.tmp_0": [1, 24, 20, 20]
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}
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max_input_shape = {
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"x": [1, 3, 2000, 2000],
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"conv2d_59.tmp_0": [1, 96, 400, 400],
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"nearest_interp_v2_2.tmp_0": [1, 96, 400, 400],
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"nearest_interp_v2_3.tmp_0": [1, 24, 400, 400],
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"nearest_interp_v2_4.tmp_0": [1, 24, 400, 400],
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"nearest_interp_v2_5.tmp_0": [1, 24, 400, 400]
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}
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opt_input_shape = {
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"x": [1, 3, 640, 640],
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"conv2d_59.tmp_0": [1, 96, 160, 160],
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"nearest_interp_v2_2.tmp_0": [1, 96, 160, 160],
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"nearest_interp_v2_3.tmp_0": [1, 24, 160, 160],
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"nearest_interp_v2_4.tmp_0": [1, 24, 160, 160],
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"nearest_interp_v2_5.tmp_0": [1, 24, 160, 160]
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}
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elif mode == "rec":
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min_input_shape = {"x": [args.rec_batch_num, 3, 32, 10]}
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max_input_shape = {"x": [args.rec_batch_num, 3, 32, 2000]}
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opt_input_shape = {"x": [args.rec_batch_num, 3, 32, 320]}
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elif mode == "cls":
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min_input_shape = {"x": [args.rec_batch_num, 3, 48, 10]}
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max_input_shape = {"x": [args.rec_batch_num, 3, 48, 2000]}
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opt_input_shape = {"x": [args.rec_batch_num, 3, 48, 320]}
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config.set_trt_dynamic_shape_info(min_input_shape, max_input_shape,
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opt_input_shape)
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else:
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config.disable_gpu()
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if hasattr(args, "cpu_threads"):
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