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import torch
import torch.nn as nn
import torchvision.models as models
from src import config
from torchvision.models import mobilenet_v2
class TrashNetClassifier(nn.Module):
def __init__(self, num_classes=config.NUM_CLASSES):
super(TrashNetClassifier, self).__init__()
self.backbone = mobilenet_v2(pretrained=True)
if config.FREEZE_BACKBONE:
for param in list(self.backbone.parameters())[:-8]:
param.requires_grad = False
in_features = self.backbone.classifier[1].in_features
self.backbone.classifier = nn.Identity()
self.classifier = nn.Sequential(
nn.Dropout(config.DROPOUT_RATE),
nn.Linear(in_features, num_classes)
)
def forward(self, x):
x = self.backbone(x)
x = self.classifier(x)
return x |