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    Music Feedback Theme Synthesizer

    1

    Creates a coded theme map, contradictions, actionable experiments, and minority views from de-identified feedback.

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    See it in action

    You say

    Synthesize these three studio notes files into a theme map. Focus on the vocal mix and drum energy. Source A: Engineer notes. Source B: Producer email. Source C: Vocalist text messages.

    Your agent does

    Evidence Ledger

    | ID | Item | Source | Status | Next Step | |---|---|---|---|---| | VOC-01 | Lead vocal sits too far back in chorus | A:L12 | Supported | Adjust compressor threshold | | DRM-02 | Snare transient is too sharp | B:p2 | Conflict | Reconcile with Source C claim 'needs more bite' |

    What you get

    Synthesize fragmented collaborator notes into a decision-ready evidence ledger.Identify and preserve minority viewpoints and conflicting creative directions.Generate a coded theme map tracing every production choice to specific feedback.Create a gap register to highlight missing information in the creative process.

    About this skill

    The problem

    Music feedback is often fragmented across multiple collaborators and listeners, leading to subjective interpretations and lost context. Creators struggle to turn qualitative critiques into a structured, evidence-based roadmap without losing track of conflicting opinions or minority views.

    What it does

    • Extracts atomic facts, constraints, and decisions from raw collaborator or listener feedback.
    • Generates a coded theme map that links every claim to a specific source ID and locator.
    • Identifies explicit contradictions and unknowns rather than smoothing them over with AI assumptions.
    • Produces a prioritized evidence ledger with actionable experiments and minority viewpoints.
    • Maintains a gap register for missing information and status tracking for every feedback item.

    Why this beats prompting it yourself

    Generic prompts often hallucinate consensus or ignore minority feedback to provide a clean summary. This skill enforces strict traceability via stable IDs and quality gates, ensuring every recommendation is conditional on stated priorities and verifiable evidence. It treats conflicting data as a feature, not a bug, providing a decision-ready package that simple summarization cannot replicate.

    Use cases

    • Synthesizing listener feedback sessions into actionable production experiments.
    • Reconciling conflicting notes from multiple band members or studio collaborators.
    • Auditing creative sessions to identify missing constraints and unverified assumptions.
    • Tracking how feedback themes evolve over time through multiple project iterations.

    Known limitations

    Does not perform external actions, contact third parties, or access accounts. It is designed for qualitative synthesis and does not claim to represent statistically significant population preferences.

    How to install

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

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