forked from mindspore-Ecosystem/mindspore
Fixup py Normalize doc: takes input CHW
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@ -220,7 +220,7 @@ class Decode:
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class Normalize:
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"""
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Normalize the input Numpy image array of shape (H, W, C) with the given mean and standard deviation.
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Normalize the input Numpy image array of shape (C, H, W) with the given mean and standard deviation.
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The values of the array need to be in range [0.0, 1.0].
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@ -15,7 +15,7 @@
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import mindspore.dataset.transforms.vision.c_transforms as vision
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import numpy as np
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import matplotlib.pyplot as plt
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import mindspore.dataset as ds
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from mindspore import log as logger
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@ -114,6 +114,7 @@ def test_decode_op():
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# plt.subplot(131)
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# plt.imshow(image)
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# plt.title("DE image")
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# plt.show()
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num_iter += 1
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@ -138,8 +139,8 @@ def test_decode_normalize_op():
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# plt.subplot(131)
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# plt.imshow(image)
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# plt.title("DE image")
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# plt.show()
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num_iter += 1
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break
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if __name__ == "__main__":
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@ -182,8 +182,6 @@ def test_random_color_jitter_op_saturation():
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]
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transform = py_vision.ComposeOp(transforms)
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data2 = ds.TFRecordDataset(DATA_DIR, SCHEMA_DIR, columns_list=["image"], shuffle=False)
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# data2 = data2.map(input_columns=["image"], operations=decode_op)
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# data2 = data2.map(input_columns=["image"], operations=c_vision.Decode())
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data2 = data2.map(input_columns=["image"], operations=transform())
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num_iter = 0
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@ -220,8 +218,6 @@ def test_random_color_jitter_op_hue():
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# First dataset
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data1 = ds.TFRecordDataset(DATA_DIR, SCHEMA_DIR, columns_list=["image"], shuffle=False)
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decode_op = c_vision.Decode()
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# channel_swap_op = c_vision.ChannelSwap()
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# change_mode_op = c_vision.ChangeMode()
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random_jitter_op = c_vision.RandomColorAdjust((1, 1), (1, 1), (1, 1), (0.2, 0.2))
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