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update app.py
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app.py
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import torch
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from torch import nn
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from torchvision.transforms import ToTensor
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# Define model
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class
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def __init__(self):
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super().__init__()
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self.
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self.
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nn.ReLU(),
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nn.Linear(512, 10)
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)
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def forward(self, x):
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x = self.
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return logits
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model =
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model.load_state_dict(
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model.eval()
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prob = torch.nn.functional.softmax(pred[0], dim=0)
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confidences = {i: float(prob[i]) for i in range(10)}
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return confidences
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with gr.Blocks(css=".gradio-container {background:
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) as demo:
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gr.HTML(
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with gr.Row():
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with gr.Tab("γγ£γ³γγΉ"):
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input_image1 = gr.Image(label="η»εε
₯ε", source="canvas", type="pil", image_mode="L", shape=(28,28), invert_colors=True)
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send_btn1 = gr.Button("
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with gr.Tab("η»εγγ‘γ€γ«"):
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input_image2 = gr.Image(label="η»εε
₯ε", type="pil", image_mode="L", shape=(28, 28), invert_colors=True)
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send_btn2 = gr.Button("
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gr.Examples(['examples/
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output_label=gr.Label(label="
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send_btn1.click(fn=predict, inputs=input_image1, outputs=output_label)
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send_btn2.click(fn=predict, inputs=input_image2, outputs=output_label)
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# demo.queue(concurrency_count=3)
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demo.launch()
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### EOF ###
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import torch
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from torch import nn
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import torch.nn.functional as F
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from torchvision.transforms import ToTensor
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# Define model
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class ConvNet(nn.Module):
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def __init__(self):
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super(ConvNet, self).__init__()
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self.conv1 = nn.Conv2d(1, 32, kernel_size=5)
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self.conv2 = nn.Conv2d(32, 32, kernel_size=5)
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self.conv3 = nn.Conv2d(32,64, kernel_size=5)
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self.fc1 = nn.Linear(3*3*64, 256)
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self.fc2 = nn.Linear(256, 10)
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def forward(self, x):
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x = F.relu(self.conv1(x))
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#x = F.dropout(x, p=0.5, training=self.training)
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x = F.relu(F.max_pool2d(self.conv2(x), 2))
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x = F.dropout(x, p=0.5, training=self.training)
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x = F.relu(F.max_pool2d(self.conv3(x),2))
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x = F.dropout(x, p=0.5, training=self.training)
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x = x.view(-1,3*3*64 )
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x = F.relu(self.fc1(x))
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x = F.dropout(x, training=self.training)
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logits = self.fc2(x)
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return logits
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model = ConvNet()
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model.load_state_dict(
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torch.load("weights/mnist_convnet_model.pth",
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map_location=torch.device('cpu'))
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)
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model.eval()
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prob = torch.nn.functional.softmax(pred[0], dim=0)
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confidences = {i: float(prob[i]) for i in range(10)}
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return confidences
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with gr.Blocks(css=".gradio-container {background:honeydew;}", title="MNIST ει‘ε¨"
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) as demo:
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gr.HTML("""<div style="font-family:'Times New Roman', 'Serif'; font-size:16pt; font-weight:bold; text-align:center; color:royalblue;">MNIST ει‘ε¨</div>""")
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with gr.Row():
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with gr.Tab("γγ£γ³γγΉ"):
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input_image1 = gr.Image(label="η»εε
₯ε", source="canvas", type="pil", image_mode="L", shape=(28,28), invert_colors=True)
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send_btn1 = gr.Button("ζ¨θ«γγ")
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with gr.Tab("η»εγγ‘γ€γ«"):
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input_image2 = gr.Image(label="η»εε
₯ε", type="pil", image_mode="L", shape=(28, 28), invert_colors=True)
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send_btn2 = gr.Button("ζ¨θ«γγ")
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gr.Examples(['examples/sample02.png', 'examples/sample04.png'], inputs=input_image2)
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output_label=gr.Label(label="ζ¨θ«η’Ίη", num_top_classes=3)
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send_btn1.click(fn=predict, inputs=input_image1, outputs=output_label)
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send_btn2.click(fn=predict, inputs=input_image2, outputs=output_label)
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# demo.queue(concurrency_count=3)
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demo.launch()
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### EOF ###
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