chore: import upstream snapshot with attribution
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rag_search_task:
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description: >
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Search for information relevant to: {query}. Use query='{query}'. Search through documents that are already loaded in the vector database.
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expected_output: >
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JSON formatted response with status, answer, citations, and confidence score
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agent: rag_agent
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memory_retrieval_task:
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description: >
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Retrieve relevant conversation history and context for: {query}
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expected_output: >
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JSON formatted response with memory context and relevance assessment
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agent: memory_agent
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web_search_task:
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description: >
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Search the web for recent information and developments related to: {query}
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expected_output: >
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JSON formatted response with web search results and relevance assessment
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agent: web_search_agent
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arxiv_search_task:
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description: >
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Search ArXiv for academic papers related to: {query}. Find relevant research papers, authors, and recent developments in the field.
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expected_output: >
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JSON formatted response with ArXiv search results including paper titles, authors, abstracts, and publication details
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agent: arxiv_agent
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context_evaluation_task:
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description: >
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Evaluate the relevance of the following context sources for the query: "{query}"
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Context Sources:
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1. RAG Result: {rag_result}
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2. Memory Result: {memory_result}
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3. Web Search Result: {web_result}
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4. Tool Result (ArXiv): {tool_result}
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For each source, determine:
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- Is it relevant to answering the query? (yes/no)
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- Confidence score of relevance (0-1)
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- Key information that should be included in the final response
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- What information should be filtered out as irrelevant
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Note: If a source has ERROR status, it should not be included in relevant_sources, but mention it in the reasoning.
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Return only the relevant context that should be used for generating the final response.
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IMPORTANT: Your response must strictly follow the provided JSON schema structure.
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expected_output: >
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JSON response with:
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- relevant_sources: list of source names that are relevant (e.g., ['RAG', 'Web', 'Memory', 'ArXiv'])
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- filtered_context: dictionary with only relevant information from each source
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- relevance_scores: confidence scores (0-1) for each source's relevance
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- reasoning: brief explanation of filtering decisions
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The response must be valid JSON that conforms to the ContextEvaluationResult schema.
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agent: evaluator_agent
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synthesis_task:
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description: >
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Create a comprehensive, coherent response to the query: "{query}"
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Use the following filtered and relevant context:
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{filtered_context}
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Guidelines:
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- Synthesize information from multiple sources into a coherent narrative
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- Cite sources appropriately
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- Maintain accuracy and don't add information not present in the context
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- Structure the response clearly and logically
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expected_output: >
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Well-structured response with:
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- Clear answer to the user's query
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- Proper citations from all relevant sources
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agent: synthesizer_agent
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