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    Audience Comment Insight Ledger

    1

    Build a coded needs/question/theme ledger with evidence snippets and content hypotheses from supplied information with evidence links, conflict handling and reusable quality gates.

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    See it in action

    You say

    Analyze these 50 comments from my latest product launch video. I need to know what features people are asking for and what they find confusing.

    Your agent does

    Evidence Ledger

    [ID: F-01] Feature Request: Dark Mode | Source: [C-12, C-45] | Status: Supported | Impact: High [ID: Q-04] Confusion: Pricing Tier Logic | Source: [C-05, C-18] | Status: Conflict | Impact: Critical Next Step: Clarify 'Pro' vs 'Enterprise' limits in the next FAQ.

    What you get

    Categorize recurring audience questions into a searchable evidence ledger.Identify conflicting user feedback to highlight areas needing human decision.Map specific comment snippets to actionable content hypotheses.Maintain a stable audit trail for feedback across multiple batches of data.

    About this skill

    The problem

    User feedback and comment sections are often disorganized piles of unstructured data. Creators struggle to turn thousands of comments into actionable content strategies without losing track of the original context or making broad, unverified assumptions.

    What it does

    • Inventories and assigns stable IDs to all source material for full traceability.
    • Extracts atomic facts, constraints, and recurring themes into a structured ledger.
    • Maps evidence snippets directly to content hypotheses and user needs.
    • Identifies explicit conflicts, unknowns, and gaps in the data instead of halluncinating missing facts.
    • Generates a prioritized domain register with specific next steps and impact ratings.

    Why this beats prompting it yourself

    A simple prompt usually summarizes data while losing the "why" behind the insights. This skill enforces rigorous quality gates, ensuring every claim is backed by a source locator and preventing the model from silently smoothing over contradictions in your audience data.

    Use cases

    • Analyze YouTube or social media comment exports for new video ideas.
    • Audit music fan feedback to identify common pain points or product requests.
    • Convert community discussions into a structured feature request backlog.
    • Track audience sentiment shifts over time using the stable ID update protocol.

    Known limitations

    Requires user-supplied comment exports or summaries as the primary source. It will not scrape external websites or access private accounts directly due to privacy guardrails.

    How to install

    Drop the file into your AI Agent. Works with Claude, Cursor, ChatGPT, and 20+ more.

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    Frequently Asked Questions