Add missing BN layer in ResNet-34 and remove bias in Conv2D
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3313c21723
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f0b432eb59
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@ -588,8 +588,8 @@
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"metadata": {},
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"outputs": [],
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"source": [
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"DefaultConv2D = partial(keras.layers.Conv2D,\n",
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" kernel_size=3, strides=1, padding=\"SAME\")\n",
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"DefaultConv2D = partial(keras.layers.Conv2D, kernel_size=3, strides=1,\n",
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" padding=\"SAME\", use_bias=False)\n",
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"\n",
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"class ResidualUnit(keras.layers.Layer):\n",
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" def __init__(self, filters, strides=1, activation=\"relu\", **kwargs):\n",
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@ -626,6 +626,8 @@
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"model = keras.models.Sequential()\n",
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"model.add(DefaultConv2D(64, kernel_size=7, strides=2,\n",
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" input_shape=[224, 224, 3]))\n",
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"model.add(keras.layers.BatchNormalization())\n",
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"model.add(keras.layers.Activation(\"relu\"))\n",
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"model.add(keras.layers.MaxPool2D(pool_size=3, strides=2, padding=\"SAME\"))\n",
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"prev_filters = 64\n",
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"for filters in [64] * 3 + [128] * 4 + [256] * 6 + [512] * 3:\n",
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