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import torch.nn as nn
import torch.nn.functional as F


class BasicCNN(nn.Module):
    def __init__(self):
        super(BasicCNN, self).__init__()
        self.conv1 = nn.Conv2d(1, 32, kernel_size=3, padding=1)
        self.pool = nn.MaxPool2d(kernel_size=2, stride=2)
        self.conv2 = nn.Conv2d(32, 64, kernel_size=3, padding=1)
        self.fc1 = nn.Linear(64 * 7 * 7, 128) # After two pooling layers (28x28 -> 14x14 -> 7x7)
        self.fc2 = nn.Linear(128, 10) # 10 classes in FashionMNIST

    def forward(self, x):
        x = self.pool(F.relu(self.conv1(x)))
        x = self.pool(F.relu(self.conv2(x)))
        x = x.view(-1, 64 * 7 * 7) # Flatten the tensor
        x = F.relu(self.fc1(x))
        x = self.fc2(x)
        return x