Spaces:
Running
Running
Diego Carpintero
commited on
Commit
•
f868efb
1
Parent(s):
7210215
add sample labels
Browse files
app.py
CHANGED
@@ -7,16 +7,32 @@ from formatter import AutoGenFormatter
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title = "Minerva: AI Guardian for Scam Protection"
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description = """
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Built with AutoGen 0.4.0 and OpenAI. </br>
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"""
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inputs = gr.components.Image()
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outputs = [
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gr.components.Textbox(label="Analysis Result"),
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gr.HTML(label="Agentic Workflow (Streaming)")
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]
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examples = "
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model = Minerva()
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formatter = AutoGenFormatter()
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@@ -30,16 +46,14 @@ def to_html(texts):
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async def predict(img):
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try:
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img = Image.fromarray(img)
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stream = await model.analyze(img)
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streams = []
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messages = []
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async for s in stream:
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msg = await formatter.to_output(s)
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streams.append(s)
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messages.append(
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yield ["", to_html(messages)]
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if streams[-1]:
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prediction = streams[-1].messages[-1].content
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@@ -56,12 +70,14 @@ async def predict(img):
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with gr.Blocks() as demo:
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with gr.Tab("Minerva: AI Guardian for Scam Protection"):
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gr.
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demo.launch()
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title = "Minerva: AI Guardian for Scam Protection"
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description = """
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Built with AutoGen 0.4.0 and OpenAI. </br></br>
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Minerva analyzes the content of a screenshot for potential scams </br>
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and provides an analysis in the language of the extracted text</br></br>
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Agents coordinated as an AutoGen Team in a RoundRobin fashion: </br>
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- *OCR Specialist* </br>
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- *Link Checker* </br>
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- *Content Analyst* </br>
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- *Decision Maker* </br>
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- *Summary Specialist* </br>
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- *Language Translation Specialist* </br></br>
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Try out one of the examples to perform a scam analysis. </br>
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Agentic Workflow is streamed for demonstration purposes. </br></br>
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https://github.com/dcarpintero/minerva </br>
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Submission for RBI Berkeley, CS294/194-196, LLM Agents (Diego Carpintero)
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"""
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inputs = gr.components.Image()
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outputs = [
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gr.components.Textbox(label="Analysis Result"),
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gr.HTML(label="Agentic Workflow (Streaming)")
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]
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examples = "examples"
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example_labels = ["EN:Gift:Social", "ES:Banking:Social", "EN:Billing:SMS", "EN:Multifactor:Email", "EN:CustomerService:Twitter"]
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model = Minerva()
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formatter = AutoGenFormatter()
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async def predict(img):
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try:
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img = Image.fromarray(img)
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stream = await model.analyze(img)
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streams = []
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messages = []
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async for s in stream:
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streams.append(s)
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messages.append(await formatter.to_output(s))
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yield ["Pondering, stand by...", to_html(messages)]
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if streams[-1]:
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prediction = streams[-1].messages[-1].content
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with gr.Blocks() as demo:
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with gr.Tab("Minerva: AI Guardian for Scam Protection"):
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with gr.Row():
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gr.Interface(
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fn=predict,
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inputs=inputs,
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outputs=outputs,
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examples=examples,
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example_labels=example_labels,
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description=description,
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).queue(default_concurrency_limit=5)
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demo.launch()
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