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Chat Distill

Distill a person's chat style from exported conversation records and generate replies that mimic their voice. Use when (1) analyzing chat history to extract...
从导出的对话记录中提炼个人聊天风格,生成模仿其语气的回复。适用于(1)分析聊天历史以提取语言特征等场景。
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未分类 clawhub v1.0.0 1 版本 100000 Key: 无需
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概述

Chat Distill — Style Analysis & Mimicry

Workflow

  1. Parse → extract messages per speaker from raw export (see references/format-parsers.md)
  2. Analyze → build style profile (see references/style-dimensions.md)
  3. Report → output analysis report using template in references/output-template.md
  4. Mimic → generate replies on demand using the profile

Quick Start

Given a chat export file:

  1. Read the file and identify the format (WeChat export, plain text, JSON array, TG export).
  2. Normalize into { speaker, text, time? } messages using parsing rules in references/format-parsers.md.
  3. Pick the target speaker — the one whose style to learn. If multiple speakers exist, ask which one.
  4. Run analysis following references/style-dimensions.md.
  5. Output the report per references/output-template.md § Analysis Report.
  6. When the user asks for a mimicked reply, use the profile + references/output-template.md § Mimic Reply.

Key Principles

  • Show, don't tell: Include concrete examples from the actual chat when reporting style traits.
  • Preserve quirks: Capture tics the speaker doesn't notice — repeated filler words, capitalization habits, punctuation style.
  • Respect privacy: Never echo sensitive content (passwords, addresses, financials) from chats into reports. Anonymize if needed.
  • Minimum sample: Require at least 20 messages from the target speaker. If fewer, warn that analysis may be unreliable.

版本历史

共 1 个版本

  • v1.0.0 当前
    2026-05-07 23:10 安全 安全

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