From a2753f1c1b82954dfea91cd0b652fd2ebddd8b3a Mon Sep 17 00:00:00 2001
From: Achille Mbogol Touye <achille.mbogol-touye@univ-grenoble-alpes.fr>
Date: Wed, 1 Nov 2023 13:48:36 +0100
Subject: [PATCH] Replace 01-DNN-Wine-Regression-lightning.ipynb

---
 .../01-DNN-Wine-Regression-lightning.ipynb    | 2160 +----------------
 1 file changed, 33 insertions(+), 2127 deletions(-)

diff --git a/Wine.Lightning/01-DNN-Wine-Regression-lightning.ipynb b/Wine.Lightning/01-DNN-Wine-Regression-lightning.ipynb
index 54b6972..b07da28 100644
--- a/Wine.Lightning/01-DNN-Wine-Regression-lightning.ipynb
+++ b/Wine.Lightning/01-DNN-Wine-Regression-lightning.ipynb
@@ -57,105 +57,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 1,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "data": {
-      "text/html": [
-       "<style>\n",
-       "\n",
-       "div.warn {    \n",
-       "    background-color: #fcf2f2;\n",
-       "    border-color: #dFb5b4;\n",
-       "    border-left: 5px solid #dfb5b4;\n",
-       "    padding: 0.5em;\n",
-       "    font-weight: bold;\n",
-       "    font-size: 1.1em;;\n",
-       "    }\n",
-       "\n",
-       "\n",
-       "\n",
-       "div.nota {    \n",
-       "    background-color: #DAFFDE;\n",
-       "    border-left: 5px solid #92CC99;\n",
-       "    padding: 0.5em;\n",
-       "    }\n",
-       "\n",
-       "div.todo:before { content:url(data:image/svg+xml;base64,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);\n",
-       "    float:left;\n",
-       "    margin-right:20px;\n",
-       "    margin-top:-20px;\n",
-       "    margin-bottom:20px;\n",
-       "}\n",
-       "div.todo{\n",
-       "    font-weight: bold;\n",
-       "    font-size: 1.1em;\n",
-       "    margin-top:40px;\n",
-       "}\n",
-       "div.todo ul{\n",
-       "    margin: 0.2em;\n",
-       "}\n",
-       "div.todo li{\n",
-       "    margin-left:60px;\n",
-       "    margin-top:0;\n",
-       "    margin-bottom:0;\n",
-       "}\n",
-       "\n",
-       "div .comment{\n",
-       "    font-size:0.8em;\n",
-       "    color:#696969;\n",
-       "}\n",
-       "\n",
-       "\n",
-       "\n",
-       "</style>\n",
-       "\n"
-      ],
-      "text/plain": [
-       "<IPython.core.display.HTML object>"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "data": {
-      "text/markdown": [
-       "<br>**FIDLE - Environment initialization**"
-      ],
-      "text/plain": [
-       "<IPython.core.display.Markdown object>"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "name": "stdout",
-     "output_type": "stream",
-     "text": [
-      "Version              : 2.2b7\n",
-      "Run id               : WINE1-Lightning\n",
-      "Run dir              : ./run/WINE1-Lightning\n",
-      "Datasets dir         : /home/achille-touye/fidle-tp/datasets-fidle\n",
-      "Start time           : 01/11/23 13:44:36\n",
-      "Hostname             : achilletouye-Precision-3571 (Linux)\n",
-      "Tensorflow log level : Info + Warning + Error  (=0)\n",
-      "Update keras cache   : False\n",
-      "Update torch cache   : False\n",
-      "Save figs            : ./run/WINE1-Lightning/figs (False)\n",
-      "numpy                : 1.24.4\n",
-      "sklearn              : 1.3.2\n",
-      "yaml                 : 6.0.1\n",
-      "matplotlib           : 3.7.3\n",
-      "pandas               : 2.0.3\n",
-      "torch                : 2.1.0+cu121\n",
-      "torchvision          : 0.16.0+cu121\n",
-      "lightning            : 2.1.0\n"
-     ]
-    }
-   ],
+   "outputs": [],
    "source": [
     "# Import some packages\n",
     "import os\n",
@@ -194,7 +98,7 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 2,
+   "execution_count": null,
    "metadata": {},
    "outputs": [],
    "source": [
@@ -211,7 +115,7 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 3,
+   "execution_count": null,
    "metadata": {},
    "outputs": [],
    "source": [
@@ -227,126 +131,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 4,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "data": {
-      "text/html": [
-       "<style type=\"text/css\">\n",
-       "</style>\n",
-       "<table id=\"T_bdac6\">\n",
-       "  <thead>\n",
-       "    <tr>\n",
-       "      <th class=\"blank level0\" >&nbsp;</th>\n",
-       "      <th id=\"T_bdac6_level0_col0\" class=\"col_heading level0 col0\" >fixed acidity</th>\n",
-       "      <th id=\"T_bdac6_level0_col1\" class=\"col_heading level0 col1\" >volatile acidity</th>\n",
-       "      <th id=\"T_bdac6_level0_col2\" class=\"col_heading level0 col2\" >citric acid</th>\n",
-       "      <th id=\"T_bdac6_level0_col3\" class=\"col_heading level0 col3\" >residual sugar</th>\n",
-       "      <th id=\"T_bdac6_level0_col4\" class=\"col_heading level0 col4\" >chlorides</th>\n",
-       "      <th id=\"T_bdac6_level0_col5\" class=\"col_heading level0 col5\" >free sulfur dioxide</th>\n",
-       "      <th id=\"T_bdac6_level0_col6\" class=\"col_heading level0 col6\" >total sulfur dioxide</th>\n",
-       "      <th id=\"T_bdac6_level0_col7\" class=\"col_heading level0 col7\" >density</th>\n",
-       "      <th id=\"T_bdac6_level0_col8\" class=\"col_heading level0 col8\" >pH</th>\n",
-       "      <th id=\"T_bdac6_level0_col9\" class=\"col_heading level0 col9\" >sulphates</th>\n",
-       "      <th id=\"T_bdac6_level0_col10\" class=\"col_heading level0 col10\" >alcohol</th>\n",
-       "      <th id=\"T_bdac6_level0_col11\" class=\"col_heading level0 col11\" >quality</th>\n",
-       "    </tr>\n",
-       "  </thead>\n",
-       "  <tbody>\n",
-       "    <tr>\n",
-       "      <th id=\"T_bdac6_level0_row0\" class=\"row_heading level0 row0\" >0</th>\n",
-       "      <td id=\"T_bdac6_row0_col0\" class=\"data row0 col0\" >7.40</td>\n",
-       "      <td id=\"T_bdac6_row0_col1\" class=\"data row0 col1\" >0.70</td>\n",
-       "      <td id=\"T_bdac6_row0_col2\" class=\"data row0 col2\" >0.00</td>\n",
-       "      <td id=\"T_bdac6_row0_col3\" class=\"data row0 col3\" >1.90</td>\n",
-       "      <td id=\"T_bdac6_row0_col4\" class=\"data row0 col4\" >0.08</td>\n",
-       "      <td id=\"T_bdac6_row0_col5\" class=\"data row0 col5\" >11.00</td>\n",
-       "      <td id=\"T_bdac6_row0_col6\" class=\"data row0 col6\" >34.00</td>\n",
-       "      <td id=\"T_bdac6_row0_col7\" class=\"data row0 col7\" >1.00</td>\n",
-       "      <td id=\"T_bdac6_row0_col8\" class=\"data row0 col8\" >3.51</td>\n",
-       "      <td id=\"T_bdac6_row0_col9\" class=\"data row0 col9\" >0.56</td>\n",
-       "      <td id=\"T_bdac6_row0_col10\" class=\"data row0 col10\" >9.40</td>\n",
-       "      <td id=\"T_bdac6_row0_col11\" class=\"data row0 col11\" >5.00</td>\n",
-       "    </tr>\n",
-       "    <tr>\n",
-       "      <th id=\"T_bdac6_level0_row1\" class=\"row_heading level0 row1\" >1</th>\n",
-       "      <td id=\"T_bdac6_row1_col0\" class=\"data row1 col0\" >7.80</td>\n",
-       "      <td id=\"T_bdac6_row1_col1\" class=\"data row1 col1\" >0.88</td>\n",
-       "      <td id=\"T_bdac6_row1_col2\" class=\"data row1 col2\" >0.00</td>\n",
-       "      <td id=\"T_bdac6_row1_col3\" class=\"data row1 col3\" >2.60</td>\n",
-       "      <td id=\"T_bdac6_row1_col4\" class=\"data row1 col4\" >0.10</td>\n",
-       "      <td id=\"T_bdac6_row1_col5\" class=\"data row1 col5\" >25.00</td>\n",
-       "      <td id=\"T_bdac6_row1_col6\" class=\"data row1 col6\" >67.00</td>\n",
-       "      <td id=\"T_bdac6_row1_col7\" class=\"data row1 col7\" >1.00</td>\n",
-       "      <td id=\"T_bdac6_row1_col8\" class=\"data row1 col8\" >3.20</td>\n",
-       "      <td id=\"T_bdac6_row1_col9\" class=\"data row1 col9\" >0.68</td>\n",
-       "      <td id=\"T_bdac6_row1_col10\" class=\"data row1 col10\" >9.80</td>\n",
-       "      <td id=\"T_bdac6_row1_col11\" class=\"data row1 col11\" >5.00</td>\n",
-       "    </tr>\n",
-       "    <tr>\n",
-       "      <th id=\"T_bdac6_level0_row2\" class=\"row_heading level0 row2\" >2</th>\n",
-       "      <td id=\"T_bdac6_row2_col0\" class=\"data row2 col0\" >7.80</td>\n",
-       "      <td id=\"T_bdac6_row2_col1\" class=\"data row2 col1\" >0.76</td>\n",
-       "      <td id=\"T_bdac6_row2_col2\" class=\"data row2 col2\" >0.04</td>\n",
-       "      <td id=\"T_bdac6_row2_col3\" class=\"data row2 col3\" >2.30</td>\n",
-       "      <td id=\"T_bdac6_row2_col4\" class=\"data row2 col4\" >0.09</td>\n",
-       "      <td id=\"T_bdac6_row2_col5\" class=\"data row2 col5\" >15.00</td>\n",
-       "      <td id=\"T_bdac6_row2_col6\" class=\"data row2 col6\" >54.00</td>\n",
-       "      <td id=\"T_bdac6_row2_col7\" class=\"data row2 col7\" >1.00</td>\n",
-       "      <td id=\"T_bdac6_row2_col8\" class=\"data row2 col8\" >3.26</td>\n",
-       "      <td id=\"T_bdac6_row2_col9\" class=\"data row2 col9\" >0.65</td>\n",
-       "      <td id=\"T_bdac6_row2_col10\" class=\"data row2 col10\" >9.80</td>\n",
-       "      <td id=\"T_bdac6_row2_col11\" class=\"data row2 col11\" >5.00</td>\n",
-       "    </tr>\n",
-       "    <tr>\n",
-       "      <th id=\"T_bdac6_level0_row3\" class=\"row_heading level0 row3\" >3</th>\n",
-       "      <td id=\"T_bdac6_row3_col0\" class=\"data row3 col0\" >11.20</td>\n",
-       "      <td id=\"T_bdac6_row3_col1\" class=\"data row3 col1\" >0.28</td>\n",
-       "      <td id=\"T_bdac6_row3_col2\" class=\"data row3 col2\" >0.56</td>\n",
-       "      <td id=\"T_bdac6_row3_col3\" class=\"data row3 col3\" >1.90</td>\n",
-       "      <td id=\"T_bdac6_row3_col4\" class=\"data row3 col4\" >0.07</td>\n",
-       "      <td id=\"T_bdac6_row3_col5\" class=\"data row3 col5\" >17.00</td>\n",
-       "      <td id=\"T_bdac6_row3_col6\" class=\"data row3 col6\" >60.00</td>\n",
-       "      <td id=\"T_bdac6_row3_col7\" class=\"data row3 col7\" >1.00</td>\n",
-       "      <td id=\"T_bdac6_row3_col8\" class=\"data row3 col8\" >3.16</td>\n",
-       "      <td id=\"T_bdac6_row3_col9\" class=\"data row3 col9\" >0.58</td>\n",
-       "      <td id=\"T_bdac6_row3_col10\" class=\"data row3 col10\" >9.80</td>\n",
-       "      <td id=\"T_bdac6_row3_col11\" class=\"data row3 col11\" >6.00</td>\n",
-       "    </tr>\n",
-       "    <tr>\n",
-       "      <th id=\"T_bdac6_level0_row4\" class=\"row_heading level0 row4\" >4</th>\n",
-       "      <td id=\"T_bdac6_row4_col0\" class=\"data row4 col0\" >7.40</td>\n",
-       "      <td id=\"T_bdac6_row4_col1\" class=\"data row4 col1\" >0.70</td>\n",
-       "      <td id=\"T_bdac6_row4_col2\" class=\"data row4 col2\" >0.00</td>\n",
-       "      <td id=\"T_bdac6_row4_col3\" class=\"data row4 col3\" >1.90</td>\n",
-       "      <td id=\"T_bdac6_row4_col4\" class=\"data row4 col4\" >0.08</td>\n",
-       "      <td id=\"T_bdac6_row4_col5\" class=\"data row4 col5\" >11.00</td>\n",
-       "      <td id=\"T_bdac6_row4_col6\" class=\"data row4 col6\" >34.00</td>\n",
-       "      <td id=\"T_bdac6_row4_col7\" class=\"data row4 col7\" >1.00</td>\n",
-       "      <td id=\"T_bdac6_row4_col8\" class=\"data row4 col8\" >3.51</td>\n",
-       "      <td id=\"T_bdac6_row4_col9\" class=\"data row4 col9\" >0.56</td>\n",
-       "      <td id=\"T_bdac6_row4_col10\" class=\"data row4 col10\" >9.40</td>\n",
-       "      <td id=\"T_bdac6_row4_col11\" class=\"data row4 col11\" >5.00</td>\n",
-       "    </tr>\n",
-       "  </tbody>\n",
-       "</table>\n"
-      ],
-      "text/plain": [
-       "<pandas.io.formats.style.Styler at 0x7f6d346eeaf0>"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "name": "stdout",
-     "output_type": "stream",
-     "text": [
-      "Missing Data :  0   Shape is :  (1599, 12)\n"
-     ]
-    }
-   ],
+   "outputs": [],
    "source": [
     "csv_file_path=f'{datasets_dir}/WineQuality/origine/{dataset_name}'\n",
     "datasets=WineQualityDataset(csv_file_path)\n",
@@ -375,7 +162,7 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 5,
+   "execution_count": null,
    "metadata": {},
    "outputs": [],
    "source": [
@@ -386,72 +173,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 6,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "data": {
-      "text/markdown": [
-       "before normalization :"
-      ],
-      "text/plain": [
-       "<IPython.core.display.Markdown object>"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "data": {
-      "text/plain": [
-       "array([[ 7.4  ,  0.7  ,  0.   , ...,  3.51 ,  0.56 ,  9.4  ],\n",
-       "       [ 7.8  ,  0.88 ,  0.   , ...,  3.2  ,  0.68 ,  9.8  ],\n",
-       "       [ 7.8  ,  0.76 ,  0.04 , ...,  3.26 ,  0.65 ,  9.8  ],\n",
-       "       ...,\n",
-       "       [ 6.3  ,  0.51 ,  0.13 , ...,  3.42 ,  0.75 , 11.   ],\n",
-       "       [ 5.9  ,  0.645,  0.12 , ...,  3.57 ,  0.71 , 10.2  ],\n",
-       "       [ 6.   ,  0.31 ,  0.47 , ...,  3.39 ,  0.66 , 11.   ]],\n",
-       "      dtype=float32)"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "name": "stdout",
-     "output_type": "stream",
-     "text": [
-      "\n"
-     ]
-    },
-    {
-     "data": {
-      "text/markdown": [
-       "After normalization :"
-      ],
-      "text/plain": [
-       "<IPython.core.display.Markdown object>"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "data": {
-      "text/plain": [
-       "tensor([[-0.5282,  0.9616, -1.3910,  ...,  1.2882, -0.5790, -0.9599],\n",
-       "        [-0.2985,  1.9668, -1.3910,  ..., -0.7197,  0.1289, -0.5846],\n",
-       "        [-0.2985,  1.2967, -1.1857,  ..., -0.3311, -0.0481, -0.5846],\n",
-       "        ...,\n",
-       "        [-1.1600, -0.0995, -0.7237,  ...,  0.7053,  0.5419,  0.5415],\n",
-       "        [-1.3897,  0.6544, -0.7750,  ...,  1.6769,  0.3059, -0.2092],\n",
-       "        [-1.3323, -1.2165,  1.0217,  ...,  0.5110,  0.0109,  0.5415]])"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    }
-   ],
+   "outputs": [],
    "source": [
     "display(Markdown(\"before normalization :\"))\n",
     "display(datasets[:][\"features\"])\n",
@@ -473,19 +197,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 7,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "name": "stdout",
-     "output_type": "stream",
-     "text": [
-      "Original data shape was :  (1599, 12)\n",
-      "x_train :  torch.Size([1279, 11]) y_train :  torch.Size([1279, 1])\n",
-      "x_test  :  torch.Size([320, 11]) y_test  :  torch.Size([320, 1])\n"
-     ]
-    }
-   ],
+   "outputs": [],
    "source": [
     "# ---- Split => train, test\n",
     "#\n",
@@ -519,7 +233,7 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 8,
+   "execution_count": null,
    "metadata": {},
    "outputs": [],
    "source": [
@@ -555,7 +269,7 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 9,
+   "execution_count": null,
    "metadata": {},
    "outputs": [],
    "source": [
@@ -657,25 +371,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 10,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "name": "stdout",
-     "output_type": "stream",
-     "text": [
-      "LitRegression(\n",
-      "  (model): Sequential(\n",
-      "    (0): Linear(in_features=11, out_features=128, bias=True)\n",
-      "    (1): ReLU()\n",
-      "    (2): Linear(in_features=128, out_features=128, bias=True)\n",
-      "    (3): ReLU()\n",
-      "    (4): Linear(in_features=128, out_features=1, bias=True)\n",
-      "  )\n",
-      ")\n"
-     ]
-    }
-   ],
+   "outputs": [],
    "source": [
     "reg=LitRegression(in_features=11)\n",
     "print(reg) "
@@ -690,7 +388,7 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 11,
+   "execution_count": null,
    "metadata": {},
    "outputs": [],
    "source": [
@@ -715,7 +413,7 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 12,
+   "execution_count": null,
    "metadata": {},
    "outputs": [],
    "source": [
@@ -725,1471 +423,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 13,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "name": "stderr",
-     "output_type": "stream",
-     "text": [
-      "GPU available: True (cuda), used: True\n",
-      "TPU available: False, using: 0 TPU cores\n",
-      "IPU available: False, using: 0 IPUs\n",
-      "HPU available: False, using: 0 HPUs\n",
-      "2023-11-01 13:44:37.819090: I tensorflow/core/util/port.cc:110] oneDNN custom operations are on. You may see slightly different numerical results due to floating-point round-off errors from different computation orders. To turn them off, set the environment variable `TF_ENABLE_ONEDNN_OPTS=0`.\n",
-      "2023-11-01 13:44:37.820282: I tensorflow/tsl/cuda/cudart_stub.cc:28] Could not find cuda drivers on your machine, GPU will not be used.\n",
-      "2023-11-01 13:44:37.844348: I tensorflow/core/platform/cpu_feature_guard.cc:182] This TensorFlow binary is optimized to use available CPU instructions in performance-critical operations.\n",
-      "To enable the following instructions: AVX2 AVX_VNNI FMA, in other operations, rebuild TensorFlow with the appropriate compiler flags.\n",
-      "2023-11-01 13:44:38.255107: W tensorflow/compiler/tf2tensorrt/utils/py_utils.cc:38] TF-TRT Warning: Could not find TensorRT\n",
-      "/home/achille-touye/.local/lib/python3.8/site-packages/lightning/pytorch/callbacks/model_checkpoint.py:630: Checkpoint directory ./run/models/ exists and is not empty.\n",
-      "LOCAL_RANK: 0 - CUDA_VISIBLE_DEVICES: [0]\n",
-      "\n",
-      "  | Name  | Type       | Params\n",
-      "-------------------------------------\n",
-      "0 | model | Sequential | 18.2 K\n",
-      "-------------------------------------\n",
-      "18.2 K    Trainable params\n",
-      "0         Non-trainable params\n",
-      "18.2 K    Total params\n",
-      "0.073     Total estimated model params size (MB)\n"
-     ]
-    },
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-       "Sanity Checking: |                                                                                         | 0…"
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-      "text/plain": [
-       "Validation: |                                                                                              | 0…"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "data": {
-      "application/vnd.jupyter.widget-view+json": {
-       "model_id": "",
-       "version_major": 2,
-       "version_minor": 0
-      },
-      "text/plain": [
-       "Validation: |                                                                                              | 0…"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "data": {
-      "application/vnd.jupyter.widget-view+json": {
-       "model_id": "",
-       "version_major": 2,
-       "version_minor": 0
-      },
-      "text/plain": [
-       "Validation: |                                                                                              | 0…"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "data": {
-      "application/vnd.jupyter.widget-view+json": {
-       "model_id": "",
-       "version_major": 2,
-       "version_minor": 0
-      },
-      "text/plain": [
-       "Validation: |                                                                                              | 0…"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "data": {
-      "application/vnd.jupyter.widget-view+json": {
-       "model_id": "",
-       "version_major": 2,
-       "version_minor": 0
-      },
-      "text/plain": [
-       "Validation: |                                                                                              | 0…"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "data": {
-      "application/vnd.jupyter.widget-view+json": {
-       "model_id": "",
-       "version_major": 2,
-       "version_minor": 0
-      },
-      "text/plain": [
-       "Validation: |                                                                                              | 0…"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "name": "stderr",
-     "output_type": "stream",
-     "text": [
-      "`Trainer.fit` stopped: `max_epochs=100` reached.\n"
-     ]
-    }
-   ],
+   "outputs": [],
    "source": [
     "# train model\n",
     "trainer = pl.Trainer(accelerator='auto',\n",
@@ -2212,40 +448,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 14,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "name": "stderr",
-     "output_type": "stream",
-     "text": [
-      "LOCAL_RANK: 0 - CUDA_VISIBLE_DEVICES: [0]\n"
-     ]
-    },
-    {
-     "data": {
-      "application/vnd.jupyter.widget-view+json": {
-       "model_id": "7b73adbf29284541bbf8c1adbe91b1ae",
-       "version_major": 2,
-       "version_minor": 0
-      },
-      "text/plain": [
-       "Validation: |                                                                                              | 0…"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "name": "stdout",
-     "output_type": "stream",
-     "text": [
-      "x_test / loss      : 0.4608\n",
-      "x_test / mae       : 0.5277\n",
-      "x_test / mse       : 0.4608\n"
-     ]
-    }
-   ],
+   "outputs": [],
    "source": [
     "score=trainer.validate(model=reg, dataloaders=test_loader, verbose=False)\n",
     "\n",
@@ -2263,36 +468,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 15,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "data": {
-      "text/html": [
-       "\n",
-       "      <iframe id=\"tensorboard-frame-e3a514f888c1c91a\" width=\"100%\" height=\"800\" frameborder=\"0\">\n",
-       "      </iframe>\n",
-       "      <script>\n",
-       "        (function() {\n",
-       "          const frame = document.getElementById(\"tensorboard-frame-e3a514f888c1c91a\");\n",
-       "          const url = new URL(\"/\", window.location);\n",
-       "          const port = 6006;\n",
-       "          if (port) {\n",
-       "            url.port = port;\n",
-       "          }\n",
-       "          frame.src = url;\n",
-       "        })();\n",
-       "      </script>\n",
-       "    "
-      ],
-      "text/plain": [
-       "<IPython.core.display.HTML object>"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    }
-   ],
+   "outputs": [],
    "source": [
     "# launch Tensorboard \n",
     "%reload_ext tensorboard\n",
@@ -2315,26 +493,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 16,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "name": "stdout",
-     "output_type": "stream",
-     "text": [
-      "Loaded:\n",
-      "LitRegression(\n",
-      "  (model): Sequential(\n",
-      "    (0): Linear(in_features=11, out_features=128, bias=True)\n",
-      "    (1): ReLU()\n",
-      "    (2): Linear(in_features=128, out_features=128, bias=True)\n",
-      "    (3): ReLU()\n",
-      "    (4): Linear(in_features=128, out_features=1, bias=True)\n",
-      "  )\n",
-      ")\n"
-     ]
-    }
-   ],
+   "outputs": [],
    "source": [
     "# Load the model from a checkpoint\n",
     "loaded_model = LitRegression.load_from_checkpoint(savemodel_callback.best_model_path)\n",
@@ -2351,40 +512,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 17,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "name": "stderr",
-     "output_type": "stream",
-     "text": [
-      "LOCAL_RANK: 0 - CUDA_VISIBLE_DEVICES: [0]\n"
-     ]
-    },
-    {
-     "data": {
-      "application/vnd.jupyter.widget-view+json": {
-       "model_id": "84ebfa2b48fc4d598f7fddcf45b1da88",
-       "version_major": 2,
-       "version_minor": 0
-      },
-      "text/plain": [
-       "Validation: |                                                                                              | 0…"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    },
-    {
-     "name": "stdout",
-     "output_type": "stream",
-     "text": [
-      "x_test / loss      : 0.4533\n",
-      "x_test / mae       : 0.5209\n",
-      "x_test / mse       : 0.4533\n"
-     ]
-    }
-   ],
+   "outputs": [],
    "source": [
     "score=trainer.validate(model=loaded_model, dataloaders=test_loader, verbose=False)\n",
     "\n",
@@ -2402,7 +532,7 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 18,
+   "execution_count": null,
    "metadata": {},
    "outputs": [],
    "source": [
@@ -2415,7 +545,7 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 19,
+   "execution_count": null,
    "metadata": {},
    "outputs": [],
    "source": [
@@ -2430,217 +560,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 20,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "name": "stdout",
-     "output_type": "stream",
-     "text": [
-      "Wine    Prediction   Real   Delta\n",
-      "000        5.81       6.0      +0.19 \n",
-      "001        4.93       5.0      +0.07 \n",
-      "002        6.22       7.0      +0.78 \n",
-      "003        5.21       3.0      -2.21 \n",
-      "004        6.46       7.0      +0.54 \n",
-      "005        5.03       5.0      -0.03 \n",
-      "006        6.59       7.0      +0.41 \n",
-      "007        5.86       5.0      -0.86 \n",
-      "008        6.55       7.0      +0.45 \n",
-      "009        6.71       7.0      +0.29 \n",
-      "010        5.65       5.0      -0.65 \n",
-      "011        5.25       5.0      -0.25 \n",
-      "012        6.31       6.0      -0.31 \n",
-      "013        6.94       8.0      +1.06 \n",
-      "014        5.55       5.0      -0.55 \n",
-      "015        5.47       7.0      +1.53 \n",
-      "016        5.49       5.0      -0.49 \n",
-      "017        6.81       8.0      +1.19 \n",
-      "018        5.40       5.0      -0.40 \n",
-      "019        5.86       6.0      +0.14 \n",
-      "020        5.15       6.0      +0.85 \n",
-      "021        4.76       5.0      +0.24 \n",
-      "022        5.34       6.0      +0.66 \n",
-      "023        5.55       7.0      +1.45 \n",
-      "024        6.02       7.0      +0.98 \n",
-      "025        5.92       6.0      +0.08 \n",
-      "026        5.16       5.0      -0.16 \n",
-      "027        4.92       5.0      +0.08 \n",
-      "028        5.68       6.0      +0.32 \n",
-      "029        5.63       5.0      -0.63 \n",
-      "030        5.27       5.0      -0.27 \n",
-      "031        5.93       7.0      +1.07 \n",
-      "032        6.55       7.0      +0.45 \n",
-      "033        5.15       6.0      +0.85 \n",
-      "034        6.94       6.0      -0.94 \n",
-      "035        5.29       5.0      -0.29 \n",
-      "036        5.19       5.0      -0.19 \n",
-      "037        6.97       7.0      +0.03 \n",
-      "038        4.95       5.0      +0.05 \n",
-      "039        5.85       7.0      +1.15 \n",
-      "040        5.84       5.0      -0.84 \n",
-      "041        6.59       7.0      +0.41 \n",
-      "042        5.47       5.0      -0.47 \n",
-      "043        6.31       7.0      +0.69 \n",
-      "044        6.71       7.0      +0.29 \n",
-      "045        5.47       5.0      -0.47 \n",
-      "046        5.14       6.0      +0.86 \n",
-      "047        6.59       7.0      +0.41 \n",
-      "048        4.76       5.0      +0.24 \n",
-      "049        5.28       5.0      -0.28 \n",
-      "050        5.54       6.0      +0.46 \n",
-      "051        5.36       6.0      +0.64 \n",
-      "052        6.44       6.0      -0.44 \n",
-      "053        6.46       4.0      -2.46 \n",
-      "054        6.46       4.0      -2.46 \n",
-      "055        5.14       6.0      +0.86 \n",
-      "056        5.08       5.0      -0.08 \n",
-      "057        5.56       5.0      -0.56 \n",
-      "058        5.57       4.0      -1.57 \n",
-      "059        5.86       6.0      +0.14 \n",
-      "060        5.23       6.0      +0.77 \n",
-      "061        5.18       5.0      -0.18 \n",
-      "062        4.92       5.0      +0.08 \n",
-      "063        5.63       5.0      -0.63 \n",
-      "064        6.49       7.0      +0.51 \n",
-      "065        5.55       5.0      -0.55 \n",
-      "066        6.55       7.0      +0.45 \n",
-      "067        6.94       6.0      -0.94 \n",
-      "068        6.07       6.0      -0.07 \n",
-      "069        6.46       7.0      +0.54 \n",
-      "070        6.02       6.0      -0.02 \n",
-      "071        5.36       6.0      +0.64 \n",
-      "072        6.09       7.0      +0.91 \n",
-      "073        5.81       6.0      +0.19 \n",
-      "074        6.27       6.0      -0.27 \n",
-      "075        4.89       5.0      +0.11 \n",
-      "076        5.48       5.0      -0.48 \n",
-      "077        5.21       5.0      -0.21 \n",
-      "078        6.71       6.0      -0.71 \n",
-      "079        5.68       6.0      +0.32 \n",
-      "080        5.33       5.0      -0.33 \n",
-      "081        5.43       5.0      -0.43 \n",
-      "082        5.23       6.0      +0.77 \n",
-      "083        4.84       5.0      +0.16 \n",
-      "084        6.28       8.0      +1.72 \n",
-      "085        6.32       7.0      +0.68 \n",
-      "086        6.30       7.0      +0.70 \n",
-      "087        6.07       6.0      -0.07 \n",
-      "088        5.91       6.0      +0.09 \n",
-      "089        5.43       5.0      -0.43 \n",
-      "090        5.79       5.0      -0.79 \n",
-      "091        5.27       6.0      +0.73 \n",
-      "092        5.95       6.0      +0.05 \n",
-      "093        6.41       6.0      -0.41 \n",
-      "094        5.04       5.0      -0.04 \n",
-      "095        5.44       6.0      +0.56 \n",
-      "096        5.15       6.0      +0.85 \n",
-      "097        6.39       6.0      -0.39 \n",
-      "098        4.96       5.0      +0.04 \n",
-      "099        5.12       5.0      -0.12 \n",
-      "100        5.89       7.0      +1.11 \n",
-      "101        5.86       6.0      +0.14 \n",
-      "102        5.65       5.0      -0.65 \n",
-      "103        5.32       6.0      +0.68 \n",
-      "104        5.96       5.0      -0.96 \n",
-      "105        4.91       5.0      +0.09 \n",
-      "106        5.22       4.0      -1.22 \n",
-      "107        5.96       7.0      +1.04 \n",
-      "108        6.22       7.0      +0.78 \n",
-      "109        5.96       5.0      -0.96 \n",
-      "110        5.08       5.0      -0.08 \n",
-      "111        5.92       6.0      +0.08 \n",
-      "112        6.06       7.0      +0.94 \n",
-      "113        5.43       5.0      -0.43 \n",
-      "114        5.22       5.0      -0.22 \n",
-      "115        6.08       6.0      -0.08 \n",
-      "116        6.07       7.0      +0.93 \n",
-      "117        5.21       5.0      -0.21 \n",
-      "118        4.75       5.0      +0.25 \n",
-      "119        5.31       6.0      +0.69 \n",
-      "120        6.07       6.0      -0.07 \n",
-      "121        5.58       6.0      +0.42 \n",
-      "122        5.05       5.0      -0.05 \n",
-      "123        5.49       5.0      -0.49 \n",
-      "124        5.36       5.0      -0.36 \n",
-      "125        5.75       7.0      +1.25 \n",
-      "126        5.78       6.0      +0.22 \n",
-      "127        5.94       7.0      +1.06 \n",
-      "128        6.44       6.0      -0.44 \n",
-      "129        5.12       5.0      -0.12 \n",
-      "130        5.46       5.0      -0.46 \n",
-      "131        4.81       6.0      +1.19 \n",
-      "132        5.05       5.0      -0.05 \n",
-      "133        5.01       5.0      -0.01 \n",
-      "134        4.53       6.0      +1.47 \n",
-      "135        5.94       4.0      -1.94 \n",
-      "136        6.04       5.0      -1.04 \n",
-      "137        5.61       5.0      -0.61 \n",
-      "138        5.85       6.0      +0.15 \n",
-      "139        5.01       5.0      -0.01 \n",
-      "140        5.36       6.0      +0.64 \n",
-      "141        5.15       5.0      -0.15 \n",
-      "142        6.26       6.0      -0.26 \n",
-      "143        5.49       5.0      -0.49 \n",
-      "144        4.89       4.0      -0.89 \n",
-      "145        5.58       5.0      -0.58 \n",
-      "146        5.94       4.0      -1.94 \n",
-      "147        6.45       7.0      +0.55 \n",
-      "148        4.60       5.0      +0.40 \n",
-      "149        5.10       5.0      -0.10 \n",
-      "150        5.77       7.0      +1.23 \n",
-      "151        4.86       5.0      +0.14 \n",
-      "152        5.03       5.0      -0.03 \n",
-      "153        6.08       6.0      -0.08 \n",
-      "154        6.35       7.0      +0.65 \n",
-      "155        5.63       5.0      -0.63 \n",
-      "156        5.16       5.0      -0.16 \n",
-      "157        5.40       5.0      -0.40 \n",
-      "158        5.70       6.0      +0.30 \n",
-      "159        5.91       6.0      +0.09 \n",
-      "160        6.31       7.0      +0.69 \n",
-      "161        6.06       6.0      -0.06 \n",
-      "162        5.52       6.0      +0.48 \n",
-      "163        6.73       7.0      +0.27 \n",
-      "164        5.18       5.0      -0.18 \n",
-      "165        5.68       5.0      -0.68 \n",
-      "166        5.56       5.0      -0.56 \n",
-      "167        5.39       5.0      -0.39 \n",
-      "168        5.36       5.0      -0.36 \n",
-      "169        5.36       5.0      -0.36 \n",
-      "170        4.93       5.0      +0.07 \n",
-      "171        6.30       7.0      +0.70 \n",
-      "172        5.49       5.0      -0.49 \n",
-      "173        6.59       7.0      +0.41 \n",
-      "174        5.69       6.0      +0.31 \n",
-      "175        5.29       5.0      -0.29 \n",
-      "176        6.42       6.0      -0.42 \n",
-      "177        6.97       7.0      +0.03 \n",
-      "178        5.56       5.0      -0.56 \n",
-      "179        5.41       5.0      -0.41 \n",
-      "180        6.30       5.0      -1.30 \n",
-      "181        5.57       6.0      +0.43 \n",
-      "182        5.94       7.0      +1.06 \n",
-      "183        5.13       5.0      -0.13 \n",
-      "184        5.19       5.0      -0.19 \n",
-      "185        5.05       5.0      -0.05 \n",
-      "186        5.48       6.0      +0.52 \n",
-      "187        5.23       5.0      -0.23 \n",
-      "188        6.07       7.0      +0.93 \n",
-      "189        5.16       5.0      -0.16 \n",
-      "190        6.31       6.0      -0.31 \n",
-      "191        5.24       5.0      -0.24 \n",
-      "192        6.02       6.0      -0.02 \n",
-      "193        5.03       5.0      -0.03 \n",
-      "194        5.63       5.0      -0.63 \n",
-      "195        5.33       6.0      +0.67 \n",
-      "196        5.43       5.0      -0.43 \n",
-      "197        4.75       5.0      +0.25 \n",
-      "198        5.33       6.0      +0.67 \n",
-      "199        5.42       5.0      -0.42 \n"
-     ]
-    }
-   ],
+   "outputs": [],
    "source": [
     "# ---- Show it\n",
     "print('Wine    Prediction   Real   Delta')\n",
@@ -2653,25 +575,9 @@
   },
   {
    "cell_type": "code",
-   "execution_count": 21,
+   "execution_count": null,
    "metadata": {},
-   "outputs": [
-    {
-     "data": {
-      "text/markdown": [
-       "**End time :** 01/11/23 13:46:01  \n",
-       "**Duration :** 00:01:25 977ms  \n",
-       "This notebook ends here :-)  \n",
-       "[https://fidle.cnrs.fr](https://fidle.cnrs.fr)"
-      ],
-      "text/plain": [
-       "<IPython.core.display.Markdown object>"
-      ]
-     },
-     "metadata": {},
-     "output_type": "display_data"
-    }
-   ],
+   "outputs": [],
    "source": [
     "fidle.end()"
    ]
-- 
GitLab