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* init commit: fast_scnn * 247917iters * 4x8_80k * configs placed in configs_unify. 4x8_80k exp.running. * mmseg/utils/collect_env.py modified to support Windows * study on lr * bug in configs_unify/***/cityscapes.py fixed. * lr0.08_100k * lr_power changed to 1.2 * log_config by_epoch set to False. * lr1.2 * doc strings added * add fast_scnn backbone test * 80k 0.08,0.12 * add 450k * fast_scnn test: fix BN bug. * Add different config files into configs/ * .gitignore recovered. * configs_unify del * .gitignore recovered. * delete sub-optimal config files of fast-scnn * Code style improved. * add docstrings to component modules of fast-scnn * relevant files modified according to Jerry's instructions * relevant files modified according to Jerry's instructions * lint problems fixed. * fast_scnn config extremely simplified. * InvertedResidual * fixed padding problems * add unit test for inverted_residual * add unit test for inverted_residual: debug 0 * add unit test for inverted_residual: debug 1 * add unit test for inverted_residual: debug 2 * add unit test for inverted_residual: debug 3 * add unit test for sep_fcn_head: debug 0 * add unit test for sep_fcn_head: debug 1 * add unit test for sep_fcn_head: debug 2 * add unit test for sep_fcn_head: debug 3 * add unit test for sep_fcn_head: debug 4 * add unit test for sep_fcn_head: debug 5 * FastSCNN type(dwchannels) changed to tuple. * t changed to expand_ratio. * Spaces fixed. * Update mmseg/models/backbones/fast_scnn.py Co-authored-by: Jerry Jiarui XU <xvjiarui0826@gmail.com> * Update mmseg/models/decode_heads/sep_fcn_head.py Co-authored-by: Jerry Jiarui XU <xvjiarui0826@gmail.com> * Update mmseg/models/decode_heads/sep_fcn_head.py Co-authored-by: Jerry Jiarui XU <xvjiarui0826@gmail.com> * Docstrings fixed. * Docstrings fixed. * Inverted Residual kept coherent with mmcl. * Inverted Residual kept coherent with mmcl. Debug 0 * _make_layer parameters renamed. * final commit * Arg scale_factor deleted. * Expand_ratio docstrings updated. * final commit * Readme for Fast-SCNN added. * model-zoo.md modified. * fast_scnn README updated. * Move InvertedResidual module into mmseg/utils. * test_inverted_residual module corrected. * test_inverted_residual.py moved. * encoder_decoder modified to avoid bugs when running PSPNet. getting_started.md bug fixed. * Revert "encoder_decoder modified to avoid bugs when running PSPNet. " This reverts commit dd0aadfb Co-authored-by: Jerry Jiarui XU <xvjiarui0826@gmail.com>
51 lines
2.0 KiB
Python
51 lines
2.0 KiB
Python
from mmseg.ops import DepthwiseSeparableConvModule
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from ..builder import HEADS
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from .fcn_head import FCNHead
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@HEADS.register_module()
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class DepthwiseSeparableFCNHead(FCNHead):
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"""Depthwise-Separable Fully Convolutional Network for Semantic
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Segmentation.
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This head is implemented according to Fast-SCNN paper.
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Args:
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in_channels(int): Number of output channels of FFM.
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channels(int): Number of middle-stage channels in the decode head.
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concat_input(bool): Whether to concatenate original decode input into
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the result of several consecutive convolution layers.
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Default: True.
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num_classes(int): Used to determine the dimension of
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final prediction tensor.
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in_index(int): Correspond with 'out_indices' in FastSCNN backbone.
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norm_cfg (dict | None): Config of norm layers.
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align_corners (bool): align_corners argument of F.interpolate.
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Default: False.
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loss_decode(dict): Config of loss type and some
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relevant additional options.
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"""
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def __init__(self, **kwargs):
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super(DepthwiseSeparableFCNHead, self).__init__(**kwargs)
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self.convs[0] = DepthwiseSeparableConvModule(
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self.in_channels,
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self.channels,
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kernel_size=self.kernel_size,
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padding=self.kernel_size // 2,
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norm_cfg=self.norm_cfg)
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for i in range(1, self.num_convs):
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self.convs[i] = DepthwiseSeparableConvModule(
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self.channels,
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self.channels,
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kernel_size=self.kernel_size,
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padding=self.kernel_size // 2,
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norm_cfg=self.norm_cfg)
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if self.concat_input:
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self.conv_cat = DepthwiseSeparableConvModule(
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self.in_channels + self.channels,
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self.channels,
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kernel_size=self.kernel_size,
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padding=self.kernel_size // 2,
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norm_cfg=self.norm_cfg)
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