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import torch.nn as nn
from isegm.utils.serialization import serialize
from .is_model import ISModel
from .modeling.hrnet_ocr import HighResolutionNet
from isegm.model.modifiers import LRMult
class HRNetModel(ISModel):
@serialize
def __init__(self, width=48, ocr_width=256, small=False, backbone_lr_mult=0.1,
norm_layer=nn.BatchNorm2d, **kwargs):
super().__init__(norm_layer=norm_layer, **kwargs)
self.feature_extractor = HighResolutionNet(width=width, ocr_width=ocr_width, small=small,
num_classes=1, norm_layer=norm_layer)
self.feature_extractor.apply(LRMult(backbone_lr_mult))
if ocr_width > 0:
self.feature_extractor.ocr_distri_head.apply(LRMult(1.0))
self.feature_extractor.ocr_gather_head.apply(LRMult(1.0))
self.feature_extractor.conv3x3_ocr.apply(LRMult(1.0))
def backbone_forward(self, image, coord_features=None):
net_outputs = self.feature_extractor(image, coord_features)
return {'instances': net_outputs[0], 'instances_aux': net_outputs[1]}