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dsh-idea

联网工具 更新于 2026.08.21

在终端中运行以下命令:

dsh plugin install winyh/dsh-idea

将以下提示词粘贴到 DeepSeek Harness 对话框中:

在 DeepSeek Harness 中运行 dsh plugin install winyh/dsh-idea 即可安装来自 https://github.com/winyh/dsh-idea 的机会发现插件。

插件介绍

The hardest part of building a product is rarely the code; it is confirming that the problem is worth solving. dsh-idea pulls in the scattered external signals that most teams overlook or misread: community threads, issue trackers, user reviews, competitor pages and trend reports. It turns them into a repeatable validation loop - scan bounded public pages, extract pain-point signals, cluster them into opportunity themes by user and context, draft multiple solution directions, and generate a minimum falsifiable experiment complete with audience, steps, thresholds and a decision rule. A hot topic does not become a demand proof, and a single complaint does not become a product requirement. Instead, evidence-strength scoring and structured interview guides (JTBD, Mom Test, switching cost, critical event) turn a hunch into a testable hypothesis.

The workflow spans the full path from signal collection to opportunity handoff: bounded public URL snapshots, normalization of Markdown, CSV, TSV, JSON and JSONL research records, multi-dimensional filtering by keyword, user, scene, source, date and evidence strength, signal ranking, theme clustering, candidate direction drafting, experiment planning, and finally an idea_review artifact paired with an Opportunity Solution Tree. Every artifact carries a version, stable ID, content fingerprint and freshness window, so downstream plugins - dsh-product for product definition, dsh-business for commercial review - receive a traceable, auditable record. A partial handoff is explicitly flagged as a research gap, never silently treated as a requirement.

It is built for indie developers, product managers and early-stage teams who want to ground product decisions in external evidence rather than intuition, and for anyone operating within the six-plugin collaboration system who needs a structured, contract-defined entry point for demand discovery.

使用场景

  • 扫描社区和竞品页面,提取真实用户痛点信号
  • 将散乱痛点聚类为主题,起草多个候选方案方向
  • 为风险最高假设设计最小可证伪实验并输出交接工件

适合人员

  • 独立开发者与早期团队,用外部证据替代直觉决策
  • 产品经理,将市场调研结构化为可重复的验证闭环
  • 六插件协作体系中负责需求发现入口的使用者