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python - TensorFlow 2.0 dataset.__iter__() 仅在启用即时执行时才受支持

转载 作者:行者123 更新时间:2023-11-28 21:32:55 25 4
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我在 TensorFlow 2 中使用以下自定义训练代码:

def parse_function(filename, filename2):
image = read_image(fn)
def ret1(): return image, read_image(fn2), 0
def ret2(): return image, preprocess(image), 1
return tf.case({tf.less(tf.random.uniform([1])[0], tf.constant(0.5)): ret2}, default=ret1)

dataset = tf.data.Dataset.from_tensor_slices((train,shuffled_train))
dataset = dataset.shuffle(len(train))
dataset = dataset.map(parse_function, num_parallel_calls=4)
dataset = dataset.batch(1)
dataset = dataset.prefetch(buffer_size=4)

@tf.function
def train(model, dataset, optimizer):
for x1, x2, y in enumerate(dataset):
with tf.GradientTape() as tape:
left, right = model([x1, x2])
loss = contrastive_loss(left, right, tf.cast(y, tf.float32))
gradients = tape.gradient(loss, model.trainable_variables)
optimizer.apply_gradients(zip(gradients, model.trainable_variables))

siamese_net.compile(optimizer=tf.keras.optimizers.RMSprop(learning_rate=1e-3))
train(siamese_net, dataset, tf.keras.optimizers.RMSprop(learning_rate=1e-3))

这段代码给我错误:

dataset.__iter__() is only supported when eager execution is enabled.

但是,它在 TensorFlow 2.0 中默认启用。tf.executing_eagerly() 也返回“True”。

最佳答案

我通过在导入 tensorflow 后启用 eager execution 来修复它:

import tensorflow as tf

tf.enable_eager_execution()

引用:Tensorflow

关于python - TensorFlow 2.0 dataset.__iter__() 仅在启用即时执行时才受支持,我们在Stack Overflow上找到一个类似的问题: https://stackoverflow.com/questions/55576133/

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