update from upstream
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2
.gitignore
vendored
2
.gitignore
vendored
@@ -10,5 +10,3 @@ my_*
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datasets/words
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datasets/flowers
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datasets/spam
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*.gz
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datasets/mnist/train-labels-idx1-ubyte
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@@ -1,16 +0,0 @@
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name: handson-ml
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dependencies:
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- python=3.5
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- jupyter
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- matplotlib
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- numexpr
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- numpy
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- pandas
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- Pillow
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- psutil
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- scikit-learn
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- scipy
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- sympy
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- pip:
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- tensorflow
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- watermark
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@@ -607,7 +607,7 @@
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"cell_type": "markdown",
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"metadata": {},
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"source": [
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"Okay, let's start by creating a trainable variable of shape (1, 1152, 10, 16, 8) that will hold all the transformation matrices. The first dimension of size 1 will make this array easy to tile. We initialize this variable randomly using a normal distribution with a standard deviation to 0.01."
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"Okay, let's start by creating a trainable variable of shape (1, 1152, 10, 16, 8) that will hold all the transformation matrices. The first dimension of size 1 will make this array easy to tile. We initialize this variable randomly using a normal distribution with a standard deviation to 0.1."
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]
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},
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{
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@@ -616,7 +616,7 @@
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"metadata": {},
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"outputs": [],
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"source": [
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"init_sigma = 0.01\n",
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"init_sigma = 0.1\n",
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"\n",
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"W_init = tf.random_normal(\n",
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" shape=(1, caps1_n_caps, caps2_n_caps, caps2_n_dims, caps1_n_dims),\n",
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