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Python network_units.add_var_initialized方法代碼示例

本文整理匯總了Python中dragnn.python.network_units.add_var_initialized方法的典型用法代碼示例。如果您正苦於以下問題:Python network_units.add_var_initialized方法的具體用法?Python network_units.add_var_initialized怎麽用?Python network_units.add_var_initialized使用的例子?那麽, 這裏精選的方法代碼示例或許可以為您提供幫助。您也可以進一步了解該方法所在dragnn.python.network_units的用法示例。


在下文中一共展示了network_units.add_var_initialized方法的3個代碼示例,這些例子默認根據受歡迎程度排序。您可以為喜歡或者感覺有用的代碼點讚,您的評價將有助於係統推薦出更棒的Python代碼示例。

示例1: IdentityInitializerHelper

# 需要導入模塊: from dragnn.python import network_units [as 別名]
# 或者: from dragnn.python.network_units import add_var_initialized [as 別名]
def IdentityInitializerHelper(self, shape, expected, divisor=1.0, std=1e-4):
    """Tests identity initialization by comparing expected to actual array.

    Tests the given expected array against the result of calling
    network_units.add_var_initialized() with the given params and
    init_type='identity'.

    Args:
      shape: shape of the array
      expected: expected contents of the array to initialize
      divisor: numerator for identity initialization where the last two dims
        of the array are not equal; should divide both of the last two dims
      std: standard deviation for random normal samples
    """
    with tf.Graph().as_default(), self.test_session() as session:
      np.random.seed(4)
      tensor = network_units.add_var_initialized('tensor', shape, 'identity',
                                                 divisor=divisor, stddev=std)
      session.run(tf.global_variables_initializer())
      actual = session.run(tensor)
      self.assertAllClose(actual, expected, 1e-8, 1e-8) 
開發者ID:rky0930,項目名稱:yolo_v2,代碼行數:23,代碼來源:network_units_test.py

示例2: __init__

# 需要導入模塊: from dragnn.python import network_units [as 別名]
# 或者: from dragnn.python.network_units import add_var_initialized [as 別名]
def __init__(self, component):
    super(PairwiseBilinearLabelNetwork, self).__init__(component)
    parameters = component.spec.network_unit.parameters

    self._num_labels = int(parameters['num_labels'])

    self._source_dim = self._linked_feature_dims['sources']
    self._target_dim = self._linked_feature_dims['targets']

    self._weights = []
    self._weights.append(
        network_units.add_var_initialized('bilinear',
                                          [self._source_dim,
                                           self._num_labels,
                                           self._target_dim],
                                          'xavier'))

    self._params.extend(self._weights)
    self._regularized_weights.extend(self._weights)
    self._layers.append(network_units.Layer(component,
                                            name='bilinear_scores',
                                            dim=self._num_labels)) 
開發者ID:rky0930,項目名稱:yolo_v2,代碼行數:24,代碼來源:transformer_units.py

示例3: IdentityInitializerHelper

# 需要導入模塊: from dragnn.python import network_units [as 別名]
# 或者: from dragnn.python.network_units import add_var_initialized [as 別名]
def IdentityInitializerHelper(self, shape, expected, divisor=1.0, std=1e-4):
    """Tests identity initialization by comparing expected to actual array.

    Tests the given expected array against the result of calling
    network_units.add_var_initialized() with the given params and
    init_type='identity'.

    Args:
      shape: shape of the array
      expected: expected contents of the array to initialize
      divisor: numerator for identity initialization where the last two dims
        of the array are not equal; should divide both of the last two dims
      std: standard deviation for random normal samples
    """
    with tf.Graph().as_default(), self.test_session() as session:
      np.random.seed(4)
      tensor = network_units.add_var_initialized(
          'tensor', shape, 'identity', divisor=divisor, stddev=std)
      session.run(tf.global_variables_initializer())
      actual = session.run(tensor)
      self.assertAllClose(actual, expected, 1e-8, 1e-8) 
開發者ID:generalized-iou,項目名稱:g-tensorflow-models,代碼行數:23,代碼來源:network_units_test.py


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