basic.py 996 Bytes
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# -*- coding: utf-8 -*-
# @Time    : 2019/12/6 11:19
# @Author  : zhoujun
from paddle import nn


class ConvBnRelu(nn.Layer):
    def __init__(self,
                 in_channels,
                 out_channels,
                 kernel_size,
                 stride=1,
                 padding=0,
                 dilation=1,
                 groups=1,
                 bias=True,
                 padding_mode='zeros',
                 inplace=True):
        super().__init__()
        self.conv = nn.Conv2D(
            in_channels=in_channels,
            out_channels=out_channels,
            kernel_size=kernel_size,
            stride=stride,
            padding=padding,
            dilation=dilation,
            groups=groups,
            bias_attr=bias,
            padding_mode=padding_mode)
        self.bn = nn.BatchNorm2D(out_channels)
        self.relu = nn.ReLU()

    def forward(self, x):
        x = self.conv(x)
        x = self.bn(x)
        x = self.relu(x)
        return x