research

GitHub

通过模型知识生成研究框架,结合网络搜索补充最新信息,并与用户确认字段定义后生成结构化研究大纲。适用于学术、技术选型等初步调研场景。

skills/research-codex-en/research/SKILL.md Weizhena/Deep-Research-skills

Trigger Scenarios

用户发起学术研究需求 需要进行竞品或技术基准对比 需要制定技术选型方案

Install

npx skills add Weizhena/Deep-Research-skills --skill research -g -y
More Options

Non-standard path

npx skills add https://github.com/Weizhena/Deep-Research-skills/tree/master/skills/research-codex-en/research -g -y

Use without installing

npx skills use Weizhena/Deep-Research-skills@research

指定 Agent (Claude Code)

npx skills add Weizhena/Deep-Research-skills --skill research -a claude-code -g -y

安装 repo 全部 skill

npx skills add Weizhena/Deep-Research-skills --all -g -y

预览 repo 内 skill

npx skills add Weizhena/Deep-Research-skills --list

SKILL.md

Frontmatter
{
    "name": "research",
    "description": "Conduct preliminary research on a topic and generate research outline. For academic research, benchmark research, technology selection, etc."
}

Research Skill - Preliminary Research

Trigger

/research <topic>

Workflow

Step 1: Generate Initial Framework from Model Knowledge

Based on topic, use model's existing knowledge to generate:

  • Main research objects/items list in this domain
  • Suggested research field framework

Output {step1_output}, use request_user_input to confirm:

  • Need to add/remove items?
  • Does field framework meet requirements?

Step 2: Web Search Supplement

Use request_user_input to ask for time range (e.g., last 6 months, since 2024, unlimited).

Parameter Retrieval:

  • {topic}: User input research topic
  • {YYYY-MM-DD}: Current date
  • {step1_output}: Complete output from Step 1
  • {time_range}: User specified time range

Hard Constraint: The following prompt must be strictly reproduced, only replacing variables in {xxx}, do not modify structure or wording.

Launch 1 web-search-agent (background), Prompt Template:

prompt = f"""## Task
Research topic: {topic}
Current date: {YYYY-MM-DD}

Based on the following initial framework, supplement latest items and recommended research fields.

## Existing Framework
{step1_output}

## Goals
1. Verify if existing items are missing important objects
2. Supplement items based on missing objects
3. Continue searching for {topic} related items within {time_range} and supplement
4. Supplement new fields

## Output Requirements
Return structured results directly (do not write files):

### Supplementary Items
- item_name: Brief explanation (why it should be added)
...

### Recommended Supplementary Fields
- field_name: Field description (why this dimension is needed)
...

### Sources
- [Source1](url1)
- [Source2](url2)
"""

One-shot Example (assuming researching AI Coding History):

## Task
Research topic: AI Coding History
Current date: 2025-12-30

Based on the following initial framework, supplement latest items and recommended research fields.

## Existing Framework
### Items List
1. GitHub Copilot: Developed by Microsoft/GitHub, first mainstream AI coding assistant
2. Cursor: AI-first IDE, based on VSCode
...

### Field Framework
- Basic Info: name, release_date, company
- Technical Features: underlying_model, context_window
...

## Goals
1. Verify if existing items are missing important objects
2. Supplement items based on missing objects
3. Continue searching for AI Coding History related items within since 2024 and supplement
4. Supplement new fields

## Output Requirements
Return structured results directly (do not write files):

### Supplementary Items
- item_name: Brief explanation (why it should be added)
...

### Recommended Supplementary Fields
- field_name: Field description (why this dimension is needed)
...

### Sources
- [Source1](url1)
- [Source2](url2)

Step 3: Ask User for Existing Fields

Use request_user_input to ask if user has existing field definition file, if so read and merge.

Step 4: Generate Outline (Separate Files)

Merge {step1_output}, {step2_output} and user's existing fields, generate two files:

outline.yaml (items + config):

  • topic: Research topic
  • items: Research objects list
  • execution:
    • batch_size: Number of parallel agents (confirm with request_user_input)
    • items_per_agent: Items per agent (confirm with request_user_input)
    • output_dir: Results output directory (default: ./results)

fields.yaml (field definitions):

  • Field categories and definitions
  • Each field's name, description, detail_level
  • detail_level hierarchy: brief -> moderate -> detailed
  • uncertain: Uncertain fields list (reserved field, auto-filled in deep phase)

Step 5: Output and Confirm

  • Create directory: ./{topic_slug}/
  • Save: outline.yaml and fields.yaml
  • Show to user for confirmation

Output Path

{current_working_directory}/{topic_slug}/
  ├── outline.yaml    # items list + execution config
  └── fields.yaml     # field definitions

Follow-up Commands

  • /research-add-items - Supplement items
  • /research-add-fields - Supplement fields
  • /research-deep - Start deep research

Version History

  • e5479f8 Current 2026-07-24 22:30

Same Skill Collection

skills/research-codex-en/research-add-fields/SKILL.md
skills/research-codex-en/research-add-items/SKILL.md
skills/research-codex-en/research-deep/SKILL.md
skills/research-codex-en/research-report/SKILL.md
skills/research-codex-zh/research-add-fields/SKILL.md
skills/research-codex-zh/research-add-items/SKILL.md
skills/research-codex-zh/research-deep/SKILL.md
skills/research-codex-zh/research-report/SKILL.md
skills/research-codex-zh/research/SKILL.md
skills/research-en/research-add-fields/SKILL.md
skills/research-en/research-add-items/SKILL.md
skills/research-en/research-deep/SKILL.md
skills/research-en/research-report/SKILL.md
skills/research-en/research/SKILL.md
skills/research-zh/research/SKILL.md
skills/research-zh/research-add-fields/SKILL.md
skills/research-zh/research-add-items/SKILL.md
skills/research-zh/research-deep/SKILL.md
skills/research-zh/research-report/SKILL.md

Metadata

Files
0
Version
e5479f8
Hash
575073c5
Indexed
2026-07-24 22:30

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