290 lines
442 KiB
Plaintext
290 lines
442 KiB
Plaintext
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{
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"cells": [
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{
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"cell_type": "code",
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"execution_count": 1,
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"metadata": {},
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"outputs": [],
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"source": [
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"import torch\n",
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"import torch.nn as nn\n",
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"import torch.nn.functional as F\n",
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"import matplotlib.pyplot as plt\n",
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"import sklearn.datasets"
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]
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},
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{
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"cell_type": "code",
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"execution_count": 2,
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"metadata": {},
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"outputs": [],
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"source": [
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"x, y = sklearn.datasets.make_moons(200, noise=0.2)"
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]
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},
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{
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"cell_type": "code",
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"execution_count": 5,
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"metadata": {},
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"outputs": [
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{
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"data": {
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"image/png": "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"text/plain": [
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"<Figure size 432x288 with 1 Axes>"
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]
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},
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"metadata": {
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"needs_background": "light"
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},
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"output_type": "display_data"
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}
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],
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"source": [
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"plt.scatter(x[:,0],x[:,1], s=40, c=y, cmap=plt.cm.Spectral)\n",
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"plt.show()"
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]
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},
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{
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"cell_type": "code",
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"execution_count": 6,
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"metadata": {},
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"outputs": [],
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"source": [
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"x = torch.FloatTensor(x)\n",
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"y = torch.LongTensor(y)"
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]
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},
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{
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"cell_type": "code",
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"execution_count": 7,
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"metadata": {},
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"outputs": [],
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"source": [
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"class FeedForward(torch.nn.Module):\n",
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" \n",
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" def __init__(self, input_neurons, hidden_neurons, output_neurons):\n",
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" super(FeedForward, self).__init__()\n",
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" self.hidden = nn.Linear(input_neurons, hidden_neurons)\n",
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" self.out = nn.Linear(hidden_neurons, output_neurons)\n",
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" \n",
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" def forward(self, x):\n",
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" x = self.hidden(x)\n",
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" x = F.relu(x)\n",
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" x = self.out(x)\n",
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" return x\n",
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" "
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]
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},
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{
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"cell_type": "code",
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"execution_count": 12,
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"metadata": {},
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"outputs": [
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{
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"data": {
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"text/plain": [
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"2"
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]
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},
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"execution_count": 12,
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"metadata": {},
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"output_type": "execute_result"
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}
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],
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"source": [
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"len(y.unique())"
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]
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},
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{
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"cell_type": "code",
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"execution_count": 15,
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"metadata": {},
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"outputs": [],
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"source": [
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"network = FeedForward(input_neurons=x.shape[1], hidden_neurons=50, output_neurons=len(y.unique()))\n",
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"optimizer = torch.optim.SGD(network.parameters(), lr=0.02)\n",
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"loss_function = torch.nn.CrossEntropyLoss()"
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]
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},
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{
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"cell_type": "code",
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"execution_count": 16,
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"metadata": {},
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"outputs": [
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{
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"data": {
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|
"image/png": "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
|
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|
"text/plain": [
|
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|
"<Figure size 432x288 with 1 Axes>"
|
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]
|
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|
},
|
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|
"metadata": {
|
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|
"needs_background": "light"
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},
|
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|
"output_type": "display_data"
|
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|
},
|
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|
{
|
||
|
"data": {
|
||
|
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||
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"text/plain": [
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||
|
"<Figure size 432x288 with 1 Axes>"
|
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|
]
|
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},
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|
"metadata": {
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||
|
"needs_background": "light"
|
||
|
},
|
||
|
"output_type": "display_data"
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||
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},
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{
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"data": {
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|
||
|
"text/plain": [
|
||
|
"<Figure size 432x288 with 1 Axes>"
|
||
|
]
|
||
|
},
|
||
|
"metadata": {
|
||
|
"needs_background": "light"
|
||
|
},
|
||
|
"output_type": "display_data"
|
||
|
},
|
||
|
{
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||
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"data": {
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"text/plain": [
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"<Figure size 432x288 with 1 Axes>"
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]
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},
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"metadata": {
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|
"needs_background": "light"
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},
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"output_type": "display_data"
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},
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{
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"data": {
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|
||
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"text/plain": [
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||
|
"<Figure size 432x288 with 1 Axes>"
|
||
|
]
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||
|
},
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||
|
"metadata": {
|
||
|
"needs_background": "light"
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||
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},
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||
|
"output_type": "display_data"
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},
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{
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"data": {
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||
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"text/plain": [
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|
"<Figure size 432x288 with 1 Axes>"
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]
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},
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"metadata": {
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|
"needs_background": "light"
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},
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"output_type": "display_data"
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},
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{
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"data": {
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|
||
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"text/plain": [
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||
|
"<Figure size 432x288 with 1 Axes>"
|
||
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]
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|
},
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||
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"metadata": {
|
||
|
"needs_background": "light"
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||
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},
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||
|
"output_type": "display_data"
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},
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{
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"data": {
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"text/plain": [
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|
"<Figure size 432x288 with 1 Axes>"
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]
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},
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"metadata": {
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"needs_background": "light"
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},
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"output_type": "display_data"
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},
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{
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"data": {
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|
||
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"text/plain": [
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|
"<Figure size 432x288 with 1 Axes>"
|
||
|
]
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},
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||
|
"metadata": {
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||
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"needs_background": "light"
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},
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"output_type": "display_data"
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},
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{
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"data": {
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||
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"image/png": "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
|
||
|
"text/plain": [
|
||
|
"<Figure size 432x288 with 1 Axes>"
|
||
|
]
|
||
|
},
|
||
|
"metadata": {
|
||
|
"needs_background": "light"
|
||
|
},
|
||
|
"output_type": "display_data"
|
||
|
}
|
||
|
],
|
||
|
"source": [
|
||
|
"plt.ion()\n",
|
||
|
"for epoch in range(10000):\n",
|
||
|
" out = network(x)\n",
|
||
|
" loss = loss_function(out,y)\n",
|
||
|
" optimizer.zero_grad()\n",
|
||
|
" loss.backward()\n",
|
||
|
" optimizer.step()\n",
|
||
|
" \n",
|
||
|
" if epoch%1000 == 0:\n",
|
||
|
" # Show learning process till this moment\n",
|
||
|
" max_value, prediction = torch.max(out,1)\n",
|
||
|
" predicted_y = prediction.data.numpy()\n",
|
||
|
" target_y = y.data.numpy()\n",
|
||
|
" plt.scatter(x.data.numpy()[:,0],x.data.numpy()[:,1], s=40, c=predicted_y, lw=0, cmap=plt.cm.Spectral)\n",
|
||
|
" accuracy = (predicted_y==target_y).sum() / target_y.size\n",
|
||
|
" plt.text(3,-1, \"Accuracy = {:.2f}\".format(accuracy), fontdict={'size':14})\n",
|
||
|
" plt.pause(0.1)\n",
|
||
|
" \n",
|
||
|
"plt.ioff()\n",
|
||
|
"plt.show()\n",
|
||
|
" "
|
||
|
]
|
||
|
},
|
||
|
{
|
||
|
"cell_type": "code",
|
||
|
"execution_count": null,
|
||
|
"metadata": {},
|
||
|
"outputs": [],
|
||
|
"source": []
|
||
|
}
|
||
|
],
|
||
|
"metadata": {
|
||
|
"kernelspec": {
|
||
|
"display_name": "Python 3",
|
||
|
"language": "python",
|
||
|
"name": "python3"
|
||
|
},
|
||
|
"language_info": {
|
||
|
"codemirror_mode": {
|
||
|
"name": "ipython",
|
||
|
"version": 3
|
||
|
},
|
||
|
"file_extension": ".py",
|
||
|
"mimetype": "text/x-python",
|
||
|
"name": "python",
|
||
|
"nbconvert_exporter": "python",
|
||
|
"pygments_lexer": "ipython3",
|
||
|
"version": "3.7.6"
|
||
|
}
|
||
|
},
|
||
|
"nbformat": 4,
|
||
|
"nbformat_minor": 4
|
||
|
}
|