将多个大数据集加载到张量流中的正确方法是什么?
我有三个大数据集(文件),分别用于训练,验证和测试.我可以通过tf.train.string_input_producer成功加载训练集,并将其输入到tf.train.shuffle_batch对象中.然后我可以迭代地获取批量数据以优化我的模型.
但是,当我尝试以同样的方式加载我的验证集时,我遇到了困难,程序一直说"OutOfRange Error",即使我没有在string_input_producer中设置num_epochs.
任何人都可以点亮它吗?除此之外,我还在考虑在tensorflow中进行训练/验证的正确方法是什么?实际上,我没有看到任何在大数据集上进行训练和测试的例子(我经常搜索).这对我来说太奇怪了......
下面的代码片段.
def extract_validationset(filename, batch_size):
with tf.device("/cpu:0"):
queue = tf.train.string_input_producer([filename])
reader = tf.TextLineReader()
_, line = reader.read(queue)
line = tf.decode_csv(...)
label = line[0]
feature = tf.pack(list(line[1:]))
l, f = tf.train.batch([label, feature], batch_size=batch_size, num_threads=8)
return l, f
def extract_trainset(train, batch_size):
with tf.device("/cpu:0"):
train_files = tf.train.string_input_producer([train])
reader = tf.TextLineReader()
_, train_line = reader.read(train_files)
train_line = tf.decode_csv(...)
l, f = tf.train.shuffle_batch(...,
batch_size=batch_size, capacity=50000, min_after_dequeue=10000, num_threads=8)
return l, f
....
label_batch, feature_batch = extract_trainset("train", batch_size)
label_eval, feature_eval = extract_validationset("test", batch_size)
with tf.Session() as sess:
tf.initialize_all_variables().run()
coord = tf.train.Coordinator()
threads = tf.train.start_queue_runners(coord=coord)
# Loop through training steps.
for step in xrange(int(num_epochs * train_size) // batch_size):
feature, label = sess.run([feature_batch, label_batch])
feed_dict = {train_data_node: feature, train_labels_node: label}
_, l, predictions = sess.run([optimizer, loss, evaluation], feed_dict=feed_dict)
# after EVAL_FREQUENCY steps, do evaluation on whole test set
if step % EVAL_FREQUENCY == 0:
for step in xrange(steps_per_epoch):
f, l = sess.run([feature_eval, label_eval])
true_count += sess.run(evaluation, feed_dict={train_data_node: f, train_labels_node: l})
print('Precision @ 1: %0.04f' % true_count / num_examples)
<!---- ERROR ---->
tensorflow.python.framework.errors.OutOfRangeError: FIFOQueue '_5_batch/fifo_queue' is closed and has insufficient elements (requested 334, current size 0)
[[Node: batch = QueueDequeueMany[component_types=[DT_FLOAT, DT_FLOAT], timeout_ms=-1, _device="/job:localhost/replica:0/task:0/cpu:0"](batch/fifo_queue, batch/n)]]
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由op u'batch'引起,定义于:
这可能已经晚了,但我也遇到了同样的问题。就我而言,在使用 coord.request_stop()、coord.join_threads() 关闭商店后,我愚蠢地调用了 sess.run。
也许您有类似 coord.request_stop() 的东西在您的“火车”代码中运行,当您尝试加载验证数据时关闭队列。
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