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multi-source-signal-synthesiser

Synthesises user signals from multiple research sources into a unified, weighted insight brief. Use when you have data from interviews, support tick…

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技能内容

Multi-Source Signal Synthesiser Skill

Reconcile user signals from multiple sources — interviews, support tickets, NPS, app reviews, sales calls — into a unified, weighted insight brief that surfaces the underlying need rather than the surface-level request.

Required Inputs

Ask the user for these if not provided:

  • Signal sources (interviews, support tickets, NPS verbatims, app reviews, sales calls, analytics — any combination)
  • Time period covered by the data
  • Product area or feature the signals relate to (if scoped)

Source Weighting (default — adapt to context)

| Source | Weight | Rationale |

|--------|--------|-----------|

| Direct research (interviews, usability tests) | 5 | Highest-fidelity, structured |

| Support tickets (unprompted pain signals) | 4 | Real pain, unfiltered |

| NPS verbatims | 3 | Broad but shallow |

| App store reviews | 2 | Public, self-selected |

| Sales call summaries | 2 | Filtered through sales lens |

| Anecdote or single report | 1 | Low confidence alone |

Process

  1. Tag each signal by source and apply weight
  2. Look for convergence: same underlying need appearing across 3+ sources
  3. Look for divergence: contradictory signals suggesting user segmentation
  4. Distinguish surface request from underlying need (e.g. "faster export" may mean "I don't trust the data will be there when I need it")
  5. Produce ranked insights by weighted frequency
  6. Validate — Confirm each insight has evidence from at least 2 source types. Flag any insight resting on a single source as low-confidence.

Output Structure

User Signal Synthesis — [Date / Period]

Sources included: [list with count per source]

Total signals processed: [n]

Insight 1: [Underlying need, not feature request]

  • Confidence: High / Medium / Low (based on source diversity and weight)
  • Evidence: [Signals from each source supporting this]
  • Conflicting signals: [Any contradicting evidence and how to interpret it]
  • Product implication: [Specific next step, not generic]

[Repeat for top 3-5 insights]

Divergent Signals (Possible Segmentation)

[Where user groups appear to have genuinely different needs — specify which segments]

What the Data Does NOT Tell Us

[Gaps that require further research before acting]

Quality Checks

  • [ ] Every insight references at least 2 distinct source types
  • [ ] Surface requests are translated to underlying needs (not just echoed)
  • [ ] Divergent signals identify the specific user segments, not just "some users disagree"
  • [ ] Confidence ratings are consistent with source diversity and weighting
  • [ ] "What the data does NOT tell us" section is honest about gaps

Anti-Patterns

  • [ ] Do not echo surface-level feature requests as insights — translate every request to the underlying need before including it as a finding
  • [ ] Do not assign High confidence to insights supported by only one source type — confidence requires corroboration across at least two distinct source types
  • [ ] Do not treat all sources as equally weighted — a single interview quote and a pattern across 200 support tickets are not comparable signals
  • [ ] Do not collapse divergent signals into a single finding — where user segments have genuinely different needs, name the segments explicitly rather than averaging them away
  • [ ] Do not omit the research gap section when key decisions rest on thin data — acting on low-confidence findings without flagging the gaps misleads product teams

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同名技能的其他版本

有 3 个不同仓库或目录里都有叫 multi-source-signal-synthesiser 的技能。它们内容并不相同,别混用: