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my_runs/2/config.json
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my_runs/2/config.json
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{
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"dropout_layer_value": 0.3,
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"num_epochs": 200,
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"seed": 487013218
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}
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my_runs/2/cout.txt
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my_runs/2/cout.txt
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2.16.1
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1.2.0
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3.2.1
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1.23.5
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1.5.2
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C:\Users\obses\AppData\Local\Programs\Python\Python310\lib\site-packages\sklearn\preprocessing\_encoders.py:808: FutureWarning: `sparse` was renamed to `sparse_output` in version 1.2 and will be removed in 1.4. `sparse_output` is ignored unless you leave `sparse` to its default value.
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warnings.warn(
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C:\Users\obses\AppData\Local\Programs\Python\Python310\lib\site-packages\keras\src\layers\core\dense.py:86: UserWarning: Do not pass an `input_shape`/`input_dim` argument to a layer. When using Sequential models, prefer using an `Input(shape)` object as the first layer in the model instead.
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super().__init__(activity_regularizer=activity_regularizer, **kwargs)
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Epoch 1/200
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2/2 - 1s - 341ms/step - accuracy: 0.2195 - loss: 2.1532 - val_accuracy: 0.1071 - val_loss: 2.0147
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Epoch 2/200
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2/2 - 0s - 22ms/step - accuracy: 0.2683 - loss: 2.0820 - val_accuracy: 0.1786 - val_loss: 1.9722
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Epoch 3/200
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2/2 - 0s - 21ms/step - accuracy: 0.3171 - loss: 2.0352 - val_accuracy: 0.2500 - val_loss: 1.9284
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Epoch 4/200
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2/2 - 0s - 23ms/step - accuracy: 0.3902 - loss: 2.0307 - val_accuracy: 0.2500 - val_loss: 1.8926
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Epoch 5/200
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2/2 - 0s - 22ms/step - accuracy: 0.3415 - loss: 2.0465 - val_accuracy: 0.4286 - val_loss: 1.8532
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Epoch 6/200
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2/2 - 0s - 25ms/step - accuracy: 0.4878 - loss: 1.9187 - val_accuracy: 0.6786 - val_loss: 1.8218
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Epoch 7/200
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2/2 - 0s - 23ms/step - accuracy: 0.4878 - loss: 1.9450 - val_accuracy: 0.7500 - val_loss: 1.7915
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Epoch 8/200
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2/2 - 0s - 28ms/step - accuracy: 0.4634 - loss: 1.9840 - val_accuracy: 0.8571 - val_loss: 1.7630
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Epoch 9/200
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2/2 - 0s - 25ms/step - accuracy: 0.5366 - loss: 1.8964 - val_accuracy: 0.8571 - val_loss: 1.7411
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Epoch 10/200
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2/2 - 0s - 24ms/step - accuracy: 0.6098 - loss: 1.8146 - val_accuracy: 0.8571 - val_loss: 1.7117
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Epoch 11/200
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2/2 - 0s - 22ms/step - accuracy: 0.6341 - loss: 1.7571 - val_accuracy: 0.8571 - val_loss: 1.6873
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Epoch 12/200
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2/2 - 0s - 23ms/step - accuracy: 0.6341 - loss: 1.7847 - val_accuracy: 0.8571 - val_loss: 1.6686
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Epoch 13/200
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2/2 - 0s - 25ms/step - accuracy: 0.6585 - loss: 1.8141 - val_accuracy: 0.8571 - val_loss: 1.6528
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Epoch 14/200
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2/2 - 0s - 23ms/step - accuracy: 0.6098 - loss: 1.8549 - val_accuracy: 0.8571 - val_loss: 1.6383
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Epoch 15/200
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2/2 - 0s - 22ms/step - accuracy: 0.7561 - loss: 1.7476 - val_accuracy: 0.8571 - val_loss: 1.6207
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Epoch 16/200
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2/2 - 0s - 26ms/step - accuracy: 0.7561 - loss: 1.7351 - val_accuracy: 0.8571 - val_loss: 1.6039
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Epoch 17/200
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2/2 - 0s - 23ms/step - accuracy: 0.7561 - loss: 1.7050 - val_accuracy: 0.8571 - val_loss: 1.5861
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Epoch 18/200
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2/2 - 0s - 22ms/step - accuracy: 0.7317 - loss: 1.6731 - val_accuracy: 0.8571 - val_loss: 1.5715
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Epoch 19/200
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2/2 - 0s - 22ms/step - accuracy: 0.7073 - loss: 1.7423 - val_accuracy: 0.8571 - val_loss: 1.5589
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Epoch 20/200
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2/2 - 0s - 22ms/step - accuracy: 0.8049 - loss: 1.6414 - val_accuracy: 0.8571 - val_loss: 1.5441
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Epoch 21/200
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2/2 - 0s - 21ms/step - accuracy: 0.8293 - loss: 1.6985 - val_accuracy: 0.8571 - val_loss: 1.5328
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Epoch 22/200
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2/2 - 0s - 22ms/step - accuracy: 0.8049 - loss: 1.6529 - val_accuracy: 0.8571 - val_loss: 1.5257
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Epoch 23/200
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2/2 - 0s - 22ms/step - accuracy: 0.7805 - loss: 1.7366 - val_accuracy: 0.8571 - val_loss: 1.5157
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Epoch 24/200
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2/2 - 0s - 22ms/step - accuracy: 0.7317 - loss: 1.6614 - val_accuracy: 0.8571 - val_loss: 1.5040
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Epoch 25/200
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2/2 - 0s - 24ms/step - accuracy: 0.7805 - loss: 1.6441 - val_accuracy: 0.8571 - val_loss: 1.4938
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Epoch 26/200
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2/2 - 0s - 23ms/step - accuracy: 0.7805 - loss: 1.5172 - val_accuracy: 0.8571 - val_loss: 1.4833
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Epoch 27/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.6298 - val_accuracy: 0.8571 - val_loss: 1.4746
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Epoch 28/200
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2/2 - 0s - 23ms/step - accuracy: 0.8293 - loss: 1.6074 - val_accuracy: 0.8571 - val_loss: 1.4663
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Epoch 29/200
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2/2 - 0s - 23ms/step - accuracy: 0.8293 - loss: 1.5785 - val_accuracy: 0.8571 - val_loss: 1.4557
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Epoch 30/200
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2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.5357 - val_accuracy: 0.8571 - val_loss: 1.4468
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Epoch 31/200
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2/2 - 0s - 24ms/step - accuracy: 0.7805 - loss: 1.6030 - val_accuracy: 0.8571 - val_loss: 1.4381
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Epoch 32/200
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2/2 - 0s - 22ms/step - accuracy: 0.8293 - loss: 1.5175 - val_accuracy: 0.8571 - val_loss: 1.4274
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Epoch 33/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.5605 - val_accuracy: 0.8571 - val_loss: 1.4181
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Epoch 34/200
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2/2 - 0s - 23ms/step - accuracy: 0.8049 - loss: 1.5746 - val_accuracy: 0.8571 - val_loss: 1.4086
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Epoch 35/200
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2/2 - 0s - 23ms/step - accuracy: 0.8293 - loss: 1.5316 - val_accuracy: 0.8571 - val_loss: 1.4028
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Epoch 36/200
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2/2 - 0s - 23ms/step - accuracy: 0.8293 - loss: 1.4663 - val_accuracy: 0.8571 - val_loss: 1.3950
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Epoch 37/200
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2/2 - 0s - 22ms/step - accuracy: 0.7805 - loss: 1.5547 - val_accuracy: 0.8571 - val_loss: 1.3888
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Epoch 38/200
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2/2 - 0s - 22ms/step - accuracy: 0.8293 - loss: 1.5016 - val_accuracy: 0.8571 - val_loss: 1.3825
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Epoch 39/200
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2/2 - 0s - 22ms/step - accuracy: 0.8780 - loss: 1.5481 - val_accuracy: 0.8571 - val_loss: 1.3769
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Epoch 40/200
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2/2 - 0s - 22ms/step - accuracy: 0.8293 - loss: 1.4685 - val_accuracy: 0.8571 - val_loss: 1.3710
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Epoch 41/200
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2/2 - 0s - 23ms/step - accuracy: 0.8049 - loss: 1.4536 - val_accuracy: 0.8571 - val_loss: 1.3648
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Epoch 42/200
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2/2 - 0s - 22ms/step - accuracy: 0.8049 - loss: 1.5299 - val_accuracy: 0.8571 - val_loss: 1.3620
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Epoch 43/200
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2/2 - 0s - 22ms/step - accuracy: 0.8780 - loss: 1.4518 - val_accuracy: 0.8571 - val_loss: 1.3558
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Epoch 44/200
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2/2 - 0s - 23ms/step - accuracy: 0.8293 - loss: 1.3933 - val_accuracy: 0.8571 - val_loss: 1.3482
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Epoch 45/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.4994 - val_accuracy: 0.8571 - val_loss: 1.3430
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Epoch 46/200
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2/2 - 0s - 24ms/step - accuracy: 0.8049 - loss: 1.5360 - val_accuracy: 0.8571 - val_loss: 1.3383
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Epoch 47/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.5738 - val_accuracy: 0.8571 - val_loss: 1.3366
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Epoch 48/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.4864 - val_accuracy: 0.8571 - val_loss: 1.3335
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Epoch 49/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.5336 - val_accuracy: 0.8571 - val_loss: 1.3292
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Epoch 50/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.4462 - val_accuracy: 0.8571 - val_loss: 1.3244
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Epoch 51/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.4624 - val_accuracy: 0.8571 - val_loss: 1.3198
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Epoch 52/200
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2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.4040 - val_accuracy: 0.8571 - val_loss: 1.3156
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Epoch 53/200
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2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.4051 - val_accuracy: 0.8571 - val_loss: 1.3118
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Epoch 54/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.4144 - val_accuracy: 0.8571 - val_loss: 1.3061
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Epoch 55/200
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2/2 - 0s - 24ms/step - accuracy: 0.8293 - loss: 1.4836 - val_accuracy: 0.8571 - val_loss: 1.3033
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Epoch 56/200
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2/2 - 0s - 25ms/step - accuracy: 0.8537 - loss: 1.4531 - val_accuracy: 0.8571 - val_loss: 1.2983
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Epoch 57/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.4848 - val_accuracy: 0.8571 - val_loss: 1.2964
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Epoch 58/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.4361 - val_accuracy: 0.8571 - val_loss: 1.2939
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Epoch 59/200
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2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.4567 - val_accuracy: 0.8571 - val_loss: 1.2912
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Epoch 60/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.3697 - val_accuracy: 0.8571 - val_loss: 1.2865
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Epoch 61/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.4033 - val_accuracy: 0.8571 - val_loss: 1.2813
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Epoch 62/200
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2/2 - 0s - 30ms/step - accuracy: 0.8537 - loss: 1.4114 - val_accuracy: 0.8571 - val_loss: 1.2804
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Epoch 63/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.3471 - val_accuracy: 0.8571 - val_loss: 1.2759
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Epoch 64/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.4630 - val_accuracy: 0.8571 - val_loss: 1.2738
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Epoch 65/200
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2/2 - 0s - 23ms/step - accuracy: 0.8293 - loss: 1.3782 - val_accuracy: 0.8571 - val_loss: 1.2697
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Epoch 66/200
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2/2 - 0s - 26ms/step - accuracy: 0.8537 - loss: 1.3674 - val_accuracy: 0.8571 - val_loss: 1.2650
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Epoch 67/200
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2/2 - 0s - 24ms/step - accuracy: 0.8293 - loss: 1.4286 - val_accuracy: 0.8571 - val_loss: 1.2608
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Epoch 68/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.3000 - val_accuracy: 0.8571 - val_loss: 1.2573
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Epoch 69/200
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2/2 - 0s - 27ms/step - accuracy: 0.8537 - loss: 1.4976 - val_accuracy: 0.8571 - val_loss: 1.2559
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Epoch 70/200
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2/2 - 0s - 27ms/step - accuracy: 0.8537 - loss: 1.3845 - val_accuracy: 0.8571 - val_loss: 1.2551
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Epoch 71/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.3196 - val_accuracy: 0.8571 - val_loss: 1.2515
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Epoch 72/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.3727 - val_accuracy: 0.8571 - val_loss: 1.2476
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Epoch 73/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.4068 - val_accuracy: 0.8571 - val_loss: 1.2452
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Epoch 74/200
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2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.3918 - val_accuracy: 0.8571 - val_loss: 1.2443
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Epoch 75/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.3303 - val_accuracy: 0.8571 - val_loss: 1.2417
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Epoch 76/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2839 - val_accuracy: 0.8571 - val_loss: 1.2387
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Epoch 77/200
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2/2 - 0s - 25ms/step - accuracy: 0.8537 - loss: 1.3413 - val_accuracy: 0.8571 - val_loss: 1.2357
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Epoch 78/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.3142 - val_accuracy: 0.8571 - val_loss: 1.2324
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Epoch 79/200
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2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2841 - val_accuracy: 0.8571 - val_loss: 1.2303
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Epoch 80/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2535 - val_accuracy: 0.8571 - val_loss: 1.2264
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Epoch 81/200
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2/2 - 0s - 25ms/step - accuracy: 0.8293 - loss: 1.3405 - val_accuracy: 0.8571 - val_loss: 1.2234
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Epoch 82/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.3469 - val_accuracy: 0.8571 - val_loss: 1.2209
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Epoch 83/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2764 - val_accuracy: 0.8571 - val_loss: 1.2176
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Epoch 84/200
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2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.3213 - val_accuracy: 0.8571 - val_loss: 1.2163
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Epoch 85/200
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2/2 - 0s - 27ms/step - accuracy: 0.8537 - loss: 1.3561 - val_accuracy: 0.8571 - val_loss: 1.2138
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Epoch 86/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.3907 - val_accuracy: 0.8571 - val_loss: 1.2119
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Epoch 87/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.3074 - val_accuracy: 0.8571 - val_loss: 1.2087
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Epoch 88/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.2177 - val_accuracy: 0.8571 - val_loss: 1.2045
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Epoch 89/200
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2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.2806 - val_accuracy: 0.8571 - val_loss: 1.2026
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Epoch 90/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2198 - val_accuracy: 0.8571 - val_loss: 1.1989
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Epoch 91/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.3314 - val_accuracy: 0.8571 - val_loss: 1.1972
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Epoch 92/200
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2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.3292 - val_accuracy: 0.8571 - val_loss: 1.1946
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Epoch 93/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.2781 - val_accuracy: 0.8571 - val_loss: 1.1925
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Epoch 94/200
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2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.3490 - val_accuracy: 0.8571 - val_loss: 1.1915
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Epoch 95/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.3358 - val_accuracy: 0.8571 - val_loss: 1.1894
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Epoch 96/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.3639 - val_accuracy: 0.8571 - val_loss: 1.1884
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Epoch 97/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.3290 - val_accuracy: 0.8571 - val_loss: 1.1859
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Epoch 98/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.2283 - val_accuracy: 0.8571 - val_loss: 1.1826
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Epoch 99/200
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2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.1849 - val_accuracy: 0.8571 - val_loss: 1.1794
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Epoch 100/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2317 - val_accuracy: 0.8571 - val_loss: 1.1760
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Epoch 101/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2240 - val_accuracy: 0.8571 - val_loss: 1.1737
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Epoch 102/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.3227 - val_accuracy: 0.8571 - val_loss: 1.1733
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Epoch 103/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2884 - val_accuracy: 0.8571 - val_loss: 1.1714
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Epoch 104/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2427 - val_accuracy: 0.8571 - val_loss: 1.1698
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Epoch 105/200
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2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2661 - val_accuracy: 0.8571 - val_loss: 1.1673
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Epoch 106/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2791 - val_accuracy: 0.8571 - val_loss: 1.1659
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Epoch 107/200
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2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.3218 - val_accuracy: 0.8571 - val_loss: 1.1651
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Epoch 108/200
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2/2 - 0s - 20ms/step - accuracy: 0.8537 - loss: 1.2642 - val_accuracy: 0.8571 - val_loss: 1.1631
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Epoch 109/200
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2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2632 - val_accuracy: 0.8571 - val_loss: 1.1618
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Epoch 110/200
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2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2707 - val_accuracy: 0.8571 - val_loss: 1.1596
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Epoch 111/200
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2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.3358 - val_accuracy: 0.8571 - val_loss: 1.1585
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Epoch 112/200
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2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2766 - val_accuracy: 0.8571 - val_loss: 1.1573
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Epoch 113/200
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2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2075 - val_accuracy: 0.8571 - val_loss: 1.1543
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Epoch 114/200
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2/2 - 0s - 20ms/step - accuracy: 0.8537 - loss: 1.2420 - val_accuracy: 0.8571 - val_loss: 1.1516
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Epoch 115/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1918 - val_accuracy: 0.8571 - val_loss: 1.1505
|
||||
Epoch 116/200
|
||||
2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.2107 - val_accuracy: 0.8571 - val_loss: 1.1481
|
||||
Epoch 117/200
|
||||
2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.1907 - val_accuracy: 0.8571 - val_loss: 1.1456
|
||||
Epoch 118/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1850 - val_accuracy: 0.8571 - val_loss: 1.1431
|
||||
Epoch 119/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1576 - val_accuracy: 0.8571 - val_loss: 1.1403
|
||||
Epoch 120/200
|
||||
2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.2675 - val_accuracy: 0.8571 - val_loss: 1.1398
|
||||
Epoch 121/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2585 - val_accuracy: 0.8571 - val_loss: 1.1380
|
||||
Epoch 122/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2300 - val_accuracy: 0.8571 - val_loss: 1.1363
|
||||
Epoch 123/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2724 - val_accuracy: 0.8571 - val_loss: 1.1346
|
||||
Epoch 124/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2943 - val_accuracy: 0.8571 - val_loss: 1.1329
|
||||
Epoch 125/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2581 - val_accuracy: 0.8571 - val_loss: 1.1324
|
||||
Epoch 126/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2611 - val_accuracy: 0.8571 - val_loss: 1.1317
|
||||
Epoch 127/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2528 - val_accuracy: 0.8571 - val_loss: 1.1301
|
||||
Epoch 128/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1598 - val_accuracy: 0.8571 - val_loss: 1.1273
|
||||
Epoch 129/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2340 - val_accuracy: 0.8571 - val_loss: 1.1253
|
||||
Epoch 130/200
|
||||
2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.1844 - val_accuracy: 0.8571 - val_loss: 1.1228
|
||||
Epoch 131/200
|
||||
2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.2072 - val_accuracy: 0.8571 - val_loss: 1.1218
|
||||
Epoch 132/200
|
||||
2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.2265 - val_accuracy: 0.8571 - val_loss: 1.1200
|
||||
Epoch 133/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0870 - val_accuracy: 0.8571 - val_loss: 1.1173
|
||||
Epoch 134/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1787 - val_accuracy: 0.8571 - val_loss: 1.1153
|
||||
Epoch 135/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1851 - val_accuracy: 0.8571 - val_loss: 1.1136
|
||||
Epoch 136/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1922 - val_accuracy: 0.8571 - val_loss: 1.1127
|
||||
Epoch 137/200
|
||||
2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.2262 - val_accuracy: 0.8571 - val_loss: 1.1107
|
||||
Epoch 138/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2387 - val_accuracy: 0.8571 - val_loss: 1.1089
|
||||
Epoch 139/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2239 - val_accuracy: 0.8571 - val_loss: 1.1076
|
||||
Epoch 140/200
|
||||
2/2 - 0s - 25ms/step - accuracy: 0.8537 - loss: 1.2184 - val_accuracy: 0.8571 - val_loss: 1.1061
|
||||
Epoch 141/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1624 - val_accuracy: 0.8571 - val_loss: 1.1037
|
||||
Epoch 142/200
|
||||
2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.1146 - val_accuracy: 0.8571 - val_loss: 1.1016
|
||||
Epoch 143/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1702 - val_accuracy: 0.8571 - val_loss: 1.1000
|
||||
Epoch 144/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1891 - val_accuracy: 0.8571 - val_loss: 1.0976
|
||||
Epoch 145/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1246 - val_accuracy: 0.8571 - val_loss: 1.0954
|
||||
Epoch 146/200
|
||||
2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.1617 - val_accuracy: 0.8571 - val_loss: 1.0933
|
||||
Epoch 147/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1355 - val_accuracy: 0.8571 - val_loss: 1.0918
|
||||
Epoch 148/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1685 - val_accuracy: 0.8571 - val_loss: 1.0902
|
||||
Epoch 149/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1003 - val_accuracy: 0.8571 - val_loss: 1.0878
|
||||
Epoch 150/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2653 - val_accuracy: 0.8571 - val_loss: 1.0869
|
||||
Epoch 151/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1866 - val_accuracy: 0.8571 - val_loss: 1.0850
|
||||
Epoch 152/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1047 - val_accuracy: 0.8571 - val_loss: 1.0823
|
||||
Epoch 153/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0743 - val_accuracy: 0.8571 - val_loss: 1.0803
|
||||
Epoch 154/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1167 - val_accuracy: 0.8571 - val_loss: 1.0783
|
||||
Epoch 155/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.2002 - val_accuracy: 0.8571 - val_loss: 1.0778
|
||||
Epoch 156/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1217 - val_accuracy: 0.8571 - val_loss: 1.0753
|
||||
Epoch 157/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1792 - val_accuracy: 0.8571 - val_loss: 1.0732
|
||||
Epoch 158/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0793 - val_accuracy: 0.8571 - val_loss: 1.0709
|
||||
Epoch 159/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1644 - val_accuracy: 0.8571 - val_loss: 1.0701
|
||||
Epoch 160/200
|
||||
2/2 - 0s - 20ms/step - accuracy: 0.8537 - loss: 1.2049 - val_accuracy: 0.8571 - val_loss: 1.0684
|
||||
Epoch 161/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.0399 - val_accuracy: 0.8571 - val_loss: 1.0663
|
||||
Epoch 162/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0994 - val_accuracy: 0.8571 - val_loss: 1.0644
|
||||
Epoch 163/200
|
||||
2/2 - 0s - 20ms/step - accuracy: 0.8537 - loss: 1.1512 - val_accuracy: 0.8571 - val_loss: 1.0633
|
||||
Epoch 164/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.2293 - val_accuracy: 0.8571 - val_loss: 1.0629
|
||||
Epoch 165/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.0654 - val_accuracy: 0.8571 - val_loss: 1.0609
|
||||
Epoch 166/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1464 - val_accuracy: 0.8571 - val_loss: 1.0593
|
||||
Epoch 167/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0558 - val_accuracy: 0.8571 - val_loss: 1.0571
|
||||
Epoch 168/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1222 - val_accuracy: 0.8571 - val_loss: 1.0559
|
||||
Epoch 169/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1631 - val_accuracy: 0.8571 - val_loss: 1.0545
|
||||
Epoch 170/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1823 - val_accuracy: 0.8571 - val_loss: 1.0534
|
||||
Epoch 171/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1564 - val_accuracy: 0.8571 - val_loss: 1.0521
|
||||
Epoch 172/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1264 - val_accuracy: 0.8571 - val_loss: 1.0507
|
||||
Epoch 173/200
|
||||
2/2 - 0s - 20ms/step - accuracy: 0.8537 - loss: 1.1188 - val_accuracy: 0.8571 - val_loss: 1.0501
|
||||
Epoch 174/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1830 - val_accuracy: 0.8571 - val_loss: 1.0493
|
||||
Epoch 175/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.0920 - val_accuracy: 0.8571 - val_loss: 1.0481
|
||||
Epoch 176/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0943 - val_accuracy: 0.8571 - val_loss: 1.0460
|
||||
Epoch 177/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1190 - val_accuracy: 0.8571 - val_loss: 1.0439
|
||||
Epoch 178/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1286 - val_accuracy: 0.8571 - val_loss: 1.0428
|
||||
Epoch 179/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0424 - val_accuracy: 0.8571 - val_loss: 1.0410
|
||||
Epoch 180/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1394 - val_accuracy: 0.8571 - val_loss: 1.0398
|
||||
Epoch 181/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1651 - val_accuracy: 0.8571 - val_loss: 1.0384
|
||||
Epoch 182/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.0441 - val_accuracy: 0.8571 - val_loss: 1.0364
|
||||
Epoch 183/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0563 - val_accuracy: 0.8571 - val_loss: 1.0346
|
||||
Epoch 184/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.0919 - val_accuracy: 0.8571 - val_loss: 1.0331
|
||||
Epoch 185/200
|
||||
2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.1528 - val_accuracy: 0.8571 - val_loss: 1.0317
|
||||
Epoch 186/200
|
||||
2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.1534 - val_accuracy: 0.8571 - val_loss: 1.0301
|
||||
Epoch 187/200
|
||||
2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.0890 - val_accuracy: 0.8571 - val_loss: 1.0286
|
||||
Epoch 188/200
|
||||
2/2 - 0s - 23ms/step - accuracy: 0.8537 - loss: 1.1421 - val_accuracy: 0.8571 - val_loss: 1.0277
|
||||
Epoch 189/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.0819 - val_accuracy: 0.8571 - val_loss: 1.0258
|
||||
Epoch 190/200
|
||||
2/2 - 0s - 22ms/step - accuracy: 0.8537 - loss: 1.1676 - val_accuracy: 0.8571 - val_loss: 1.0250
|
||||
Epoch 191/200
|
||||
2/2 - 0s - 27ms/step - accuracy: 0.8537 - loss: 1.1186 - val_accuracy: 0.8571 - val_loss: 1.0233
|
||||
Epoch 192/200
|
||||
2/2 - 0s - 24ms/step - accuracy: 0.8537 - loss: 1.0423 - val_accuracy: 0.8571 - val_loss: 1.0221
|
||||
Epoch 193/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0493 - val_accuracy: 0.8571 - val_loss: 1.0209
|
||||
Epoch 194/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.1021 - val_accuracy: 0.8571 - val_loss: 1.0196
|
||||
Epoch 195/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0699 - val_accuracy: 0.8571 - val_loss: 1.0180
|
||||
Epoch 196/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0480 - val_accuracy: 0.8571 - val_loss: 1.0169
|
||||
Epoch 197/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0680 - val_accuracy: 0.8571 - val_loss: 1.0154
|
||||
Epoch 198/200
|
||||
2/2 - 0s - 21ms/step - accuracy: 0.8537 - loss: 1.0319 - val_accuracy: 0.8571 - val_loss: 1.0141
|
||||
Epoch 199/200
|
||||
2/2 - 0s - 20ms/step - accuracy: 0.8537 - loss: 1.0785 - val_accuracy: 0.8571 - val_loss: 1.0121
|
||||
Epoch 200/200
|
||||
2/2 - 0s - 20ms/step - accuracy: 0.8537 - loss: 1.0730 - val_accuracy: 0.8571 - val_loss: 1.0109
|
||||
1/1 - 0s - 18ms/step - accuracy: 0.8571 - loss: 1.0109
|
||||
[0.1071428582072258, 0.1785714328289032, 0.25, 0.25, 0.4285714328289032, 0.6785714030265808, 0.75, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064, 0.8571428656578064]
|
||||
Dokładność testowa: 85.71%
|
||||
[1m1/1[0m [32m━━━━━━━━━━━━━━━━━━━━[0m[37m[0m [1m0s[0m 19ms/step - accuracy: 0.8571 - loss: 1.0109
[1m1/1[0m [32m━━━━━━━━━━━━━━━━━━━━[0m[37m[0m [1m0s[0m 20ms/step - accuracy: 0.8571 - loss: 1.0109
|
15
my_runs/2/info.json
Normal file
15
my_runs/2/info.json
Normal file
@ -0,0 +1,15 @@
|
||||
{
|
||||
"dropout_layer_value": 0.3,
|
||||
"num_epochs": 200,
|
||||
"training_ts": {
|
||||
"__reduce__": [
|
||||
{
|
||||
"py/type": "datetime.datetime"
|
||||
},
|
||||
[
|
||||
"B+gGCQ06MADLXg=="
|
||||
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448
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||||
1.0784775018692017,
|
||||
1.0729658603668213
|
||||
]
|
||||
]
|
||||
}
|
||||
}
|
BIN
my_runs/2/model.keras
Normal file
BIN
my_runs/2/model.keras
Normal file
Binary file not shown.
Loading…
Reference in New Issue
Block a user