提交 b4ba35ca 编写于 作者: H hedaoyuan

Add groups test.

上级 1dd639eb
......@@ -15,28 +15,36 @@ class TestConv2dOp(OpTest):
filter_width = 3
stride = 1
padding = 0
groups = 3
output_height = (input_height - filter_height + 2 * padding
) / stride + 1
output_width = (input_width - filter_width + 2 * padding) / stride + 1
input = np.random.random((batch_size, input_channels, input_height,
input_width)).astype("float32")
filter = np.random.random(
(output_channels, input_channels, filter_height,
(output_channels, input_channels / groups, filter_height,
filter_width)).astype("float32")
output = np.ndarray(
(batch_size, output_channels, output_height, output_width))
self.inputs = {'Input': input, 'Filter': filter}
self.attrs = {'strides': [1, 1], 'paddings': [0, 0]}
self.attrs = {'strides': [1, 1], 'paddings': [0, 0], 'groups': groups}
output_group_channels = output_channels / groups
input_group_channels = input_channels / groups
for batchid in xrange(batch_size):
for channelid in xrange(output_channels):
for group in xrange(groups):
for outchannelid in range(group * output_group_channels,
(group + 1) * output_group_channels):
for rowid in xrange(output_height):
for colid in xrange(output_width):
start_h = (rowid * stride) - padding
start_w = (colid * stride) - padding
output_value = 0.0
for inchannelid in xrange(input_channels):
for inchannelid in range(
group * input_group_channels,
(group + 1) * input_group_channels):
for frowid in xrange(filter_height):
for fcolid in xrange(filter_width):
input_value = 0.0
......@@ -48,10 +56,12 @@ class TestConv2dOp(OpTest):
incolid < input_width)):
input_value = input[batchid][
inchannelid][inrowid][incolid]
filter_value = filter[channelid][
inchannelid][frowid][fcolid]
filter_value = filter[outchannelid][
inchannelid % input_group_channels][
frowid][fcolid]
output_value += input_value * filter_value
output[batchid][channelid][rowid][colid] = output_value
output[batchid][outchannelid][rowid][
colid] = output_value
self.outputs = {'Output': output}
......
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