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  • TensorFlow activatefunction 和可视化(2)

    # View more python learning tutorial on my Youtube and Youku channel!!!
    
    # Youtube video tutorial: https://www.youtube.com/channel/UCdyjiB5H8Pu7aDTNVXTTpcg
    # Youku video tutorial: http://i.youku.com/pythontutorial
    
    """
    Please note, this code is only for python 3+. If you are using python 2+, please modify the code accordingly.
    """
    from __future__ import print_function
    import tensorflow as tf
    
    
    def add_layer(inputs, in_size, out_size, activation_function=None):
        # add one more layer and return the output of this layer
        with tf.name_scope('layer'):
            with tf.name_scope('weights'):
                Weights = tf.Variable(tf.random_normal([in_size, out_size]), name='W')
            with tf.name_scope('biases'):
                biases = tf.Variable(tf.zeros([1, out_size]) + 0.1, name='b')
            with tf.name_scope('Wx_plus_b'):
                Wx_plus_b = tf.add(tf.matmul(inputs, Weights), biases)
            if activation_function is None:
                outputs = Wx_plus_b
            else:
                outputs = activation_function(Wx_plus_b, )
            return outputs
    
    
    # define placeholder for inputs to network
    with tf.name_scope('inputs'):
        xs = tf.placeholder(tf.float32, [None, 1], name='x_input')
        ys = tf.placeholder(tf.float32, [None, 1], name='y_input')
    
    # add hidden layer
    l1 = add_layer(xs, 1, 10, activation_function=tf.nn.relu)
    # add output layer
    prediction = add_layer(l1, 10, 1, activation_function=None)
    
    # the error between prediciton and real data
    with tf.name_scope('loss'):
        loss = tf.reduce_mean(tf.reduce_sum(tf.square(ys - prediction),
                                            reduction_indices=[1]))
    
    with tf.name_scope('train'):
        train_step = tf.train.GradientDescentOptimizer(0.1).minimize(loss)
    
    sess = tf.Session()
    
    # tf.train.SummaryWriter soon be deprecated, use following
    if int((tf.__version__).split('.')[1]) < 12 and int((tf.__version__).split('.')[0]) < 1:  # tensorflow version < 0.12
        writer = tf.train.SummaryWriter('logs/', sess.graph)  # 把整个框架logging到一个文件中去
    else:  # tensorflow version >= 0.12
        writer = tf.summary.FileWriter("logs/", sess.graph)
    
    # tf.initialize_all_variables() no long valid from
    # 2017-03-02 if using tensorflow >= 0.12
    if int((tf.__version__).split('.')[1]) < 12 and int((tf.__version__).split('.')[0]) < 1:
        init = tf.initialize_all_variables()
    else:
        init = tf.global_variables_initializer()
    sess.run(init)
    
    # direct to the local dir and run this in terminal:
    # $ tensorboard --logdir=logs

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  • 原文地址:https://www.cnblogs.com/francischeng/p/9693069.html
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