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test.py
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import torch
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from torch.utils.data import DataLoader
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from torchvision import transforms
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from models.resnet import resnet18
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from models.openmax import OpenMax
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from models.metamax import MetaMax
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from train import GameDataset
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from utils.data_stats import load_dataset_stats
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from utils.eval_utils import evaluate_known_classes, evaluate_openmax, evaluate_metamax
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import os
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from pprint import pprint
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def test_models():
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device = torch.device("cuda" if torch.cuda.is_available() else "cpu")
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# 加载数据集统计信息
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mean, std = load_dataset_stats()
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transform = transforms.Compose([
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transforms.ToTensor(),
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transforms.Normalize(mean=mean, std=std)
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])
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# 加载验证集
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test_dataset = GameDataset('jk_zfls/round0_eval', num_labels=21, transform=transform)
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test_loader = DataLoader(test_dataset, batch_size=400, shuffle=False, num_workers=4, pin_memory=True)
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# 加载基础模型
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model = resnet18(num_classes=20)
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checkpoint = torch.load('models/best_model_99.92_02.pth')
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model.load_state_dict(checkpoint['model_state_dict'])
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model = model.to(device)
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model.eval()
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# 加载OpenMax和MetaMax模型
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try:
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openmax = torch.load('models/best_openmax_94.71_01.pth')
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# metamax = torch.load('models/best_metamax.pth')
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print("Successfully loaded OpenMax and MetaMax models")
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except Exception as e:
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print(f"Error loading models: {e}")
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return
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# 测试基础ResNet
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print("\n=== Testing ResNet (Known Classes Only) ===")
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_, accuracy, errors = evaluate_known_classes(model, test_loader, torch.nn.CrossEntropyLoss(), device)
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print(f"Known Classes Accuracy: {accuracy:.2f}%")
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if errors:
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print("\nErrors in known classes:")
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pprint(errors)
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# 测试ResNet + OpenMax
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print("\n=== Testing ResNet + OpenMax ===")
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evaluate_openmax(openmax, model, test_loader, device, multiplier=0.5, fraction=0.2, verbose=True)
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# 测试ResNet + MetaMax
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# print("\n=== Testing ResNet + MetaMax ===")
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# evaluate_metamax(metamax, model, test_loader, device, threshold=0.5, verbose=True)
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if __name__ == '__main__':
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test_models()
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