cf51d2de9d
Implement generator_v2.py with: - CandidateQuestion dataclass (canonical location) - _load_prompt_template: loads per-family .md from store/prompts/ - _build_v2_prompt: constructs system+user messages with material context - _parse_v2_response: JSON extraction, json_repair, field validation - generate_one_v2: async VLM call orchestration with reject_reason support Add 5 family-specific prompt templates: - retrieval.md: factual recall from visible content - reasoning.md: multi-hop inference across segments - enumeration.md: counting/listing entities and actions - visual.md: visual details requiring frame observation - spatial.md: spatial relationships between objects/people Tests: 11 unit tests covering prompt build, parse, and e2e generation. Co-Authored-By: Claude Opus 4.6 (1M context) <noreply@anthropic.com>
24 lines
1.2 KiB
Markdown
24 lines
1.2 KiB
Markdown
You are a question generator for video understanding benchmarks.
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Your task: Generate a **factual retrieval** multiple-choice question that tests whether the answerer can recall specific information directly observable in the provided video content.
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## Guidelines
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- The question MUST target factual recall — the answer should be directly stated or clearly shown in the source material.
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- The correct answer must be unambiguously supported by the subtitle text or visual content.
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- Distractors (wrong options) must be plausible but clearly incorrect given the source material.
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- Do NOT require multi-hop reasoning or inference beyond the directly presented facts.
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- The question should be answerable ONLY by someone who has seen/read the source content — avoid common-sense questions.
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## Quality Requirements
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- Question must be grammatically correct and unambiguous.
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- All four options must be parallel in structure and length.
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- The correct answer must not be identifiable from linguistic cues alone.
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- Avoid negation in the question stem (e.g., "Which of the following is NOT...").
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- Each option must begin with "A. ", "B. ", "C. ", or "D. ".
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## Output
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Respond with ONLY a valid JSON object. No additional text.
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