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https://github.com/ArthurDanjou/handson-ml3.git
synced 2026-01-14 12:14:36 +01:00
Compute the losses only when needed
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@@ -1521,10 +1521,10 @@
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"for iteration in range(n_iterations):\n",
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" logits = X_train.dot(Theta)\n",
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" Y_proba = softmax(logits)\n",
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" loss = -np.mean(np.sum(Y_train_one_hot * np.log(Y_proba + epsilon), axis=1))\n",
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" error = Y_proba - Y_train_one_hot\n",
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" if iteration % 500 == 0:\n",
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" loss = -np.mean(np.sum(Y_train_one_hot * np.log(Y_proba + epsilon), axis=1))\n",
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" print(iteration, loss)\n",
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" error = Y_proba - Y_train_one_hot\n",
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" gradients = 1/m * X_train.T.dot(error)\n",
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" Theta = Theta - eta * gradients"
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]
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@@ -1590,12 +1590,12 @@
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"for iteration in range(n_iterations):\n",
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" logits = X_train.dot(Theta)\n",
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" Y_proba = softmax(logits)\n",
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" xentropy_loss = -np.mean(np.sum(Y_train_one_hot * np.log(Y_proba + epsilon), axis=1))\n",
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" l2_loss = 1/2 * np.sum(np.square(Theta[1:]))\n",
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" loss = xentropy_loss + alpha * l2_loss\n",
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" error = Y_proba - Y_train_one_hot\n",
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" if iteration % 500 == 0:\n",
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" xentropy_loss = -np.mean(np.sum(Y_train_one_hot * np.log(Y_proba + epsilon), axis=1))\n",
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" l2_loss = 1/2 * np.sum(np.square(Theta[1:]))\n",
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" loss = xentropy_loss + alpha * l2_loss\n",
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" print(iteration, loss)\n",
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" error = Y_proba - Y_train_one_hot\n",
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" gradients = 1/m * X_train.T.dot(error) + np.r_[np.zeros([1, n_outputs]), alpha * Theta[1:]]\n",
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" Theta = Theta - eta * gradients"
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]
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@@ -1793,7 +1793,7 @@
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"name": "python",
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"nbconvert_exporter": "python",
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"pygments_lexer": "ipython3",
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"version": "3.7.8"
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"version": "3.7.9"
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},
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"nav_menu": {},
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"toc": {
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