preprocess_yoco / deps /laps.py
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from tensorflow.keras.optimizers import RMSprop
from tensorflow.keras.models import Sequential
from tensorflow.keras.layers import *
# input
model = Sequential()
model.add(Dense(441, input_shape=(21, 21, 1)))
# H(2)
for i in range(2):
for j in [3, 2, 1]:
model.add(Conv2D(16, j, activation='elu'))
model.add(MaxPooling2D(pool_size=(2, 2)))
model.add(BatchNormalization())
# F(128)
model.add(Dense(128, activation='elu'))
model.add(Dropout(0.5))
model.add(Flatten())
# output
model.add(Dense(2, activation='softmax'))
model.compile(RMSprop(learning_rate=0.001),
loss='categorical_crossentropy',
metrics=['categorical_accuracy'])