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graphql-schemaGraphQL schema 文档

Agent Skill

用于辅助 API 设计、接口文档、请求响应结构和服务集成说明。它适合让 Agent 梳理 endpoint、生成 OpenAPI 草稿、检查字段命名、整理错误码或辅助前后端联调。使用时需要确认真实业务语义、鉴权方式、分页和错误处理规则;涉及生成接口文档时,应避免凭空补字段,最好从现有代码、schema 或接口样例中提取事实。

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本站只整理中文说明和来源信息,不托管安装包,也不代用户安装。

GitHub

来源数

3

许可证

MIT

最后核验

2026-05-01

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来源可访问

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请帮我安装这个 Agent Skill:graphql-schema(GraphQL schema 文档)
来源仓库:https://github.com/apollographql/skills
仓库路径:skills/graphql-schema
安装命令:
npx skills add https://github.com/apollographql/skills --skill graphql-schema
安装前请先检查当前环境是否支持对应 CLI,并向我确认将要执行的命令、安装目录、联网范围和文件读写权限;确认后再执行。

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skills.shnpx skills
npx skills add https://github.com/apollographql/skills --skill graphql-schema

简介

用于设计直观、高性能且可维护的 GraphQL 模式的行业最佳实践指南。

  • 涵盖核心设计原则,包括以客户为中心的类型组织、显式可空性模式和向后兼容的演化策略
  • 提供有关类型、命名约定、基于游标的分页、错误建模和安全注意事项的参考文档
  • 包括接口、联合、输入类型、突变和 ID 策略的实用模式以及代码示例
  • 强调描述、非空字段、列表模式的基本规则,并避免通过弃用来破坏更改

SKILL.md

GraphQL Schema Design Guide

This guide covers best practices for designing GraphQL schemas that are intuitive, performant, and maintainable. Schema design is primarily a server-side concern that directly impacts API usability.

Schema Design Principles

1. Design for Client Needs

  • Think about what queries clients will write
  • Organize types around use cases, not database tables
  • Expose capabilities, not implementation details

2. Be Explicit

  • Use clear, descriptive names
  • Make nullability intentional
  • Document with descriptions

3. Design for Evolution

  • Plan for backwards compatibility
  • Use deprecation before removal
  • Avoid breaking changes

Quick Reference

Type Definition Syntax

"""
A user in the system.
"""
type User {
  id: ID!
  email: String!
  name: String
  posts(first: Int = 10, after: String): PostConnection!
  createdAt: DateTime!
}

Nullability Rules

PatternMeaning
StringNullable - may be null
String!Non-null - always has value
[String]Nullable list, nullable items
[String!]Nullable list, non-null items
[String]!Non-null list, nullable items
[String!]!Non-null list, non-null items

Best Practice: Use [Type!]! for lists - empty list over null, no null items.

Input vs Output Types

# Output type - what clients receive
type User {
  id: ID!
  email: String!
  createdAt: DateTime!
}

# Input type - what clients send
input CreateUserInput {
  email: String!
  name: String
}

# Mutation using input type
type Mutation {
  createUser(input: CreateUserInput!): User!
}

Interface Pattern

interface Node {
  id: ID!
}

type User implements Node {
  id: ID!
  email: String!
}

type Post implements Node {
  id: ID!
  title: String!
}

Union Pattern

union SearchResult = User | Post | Comment

type Query {
  search(query: String!): [SearchResult!]!
}

Reference Files

Detailed documentation for specific topics:

  • Types - Type design patterns, interfaces, unions, and custom scalars
  • Naming - Naming conventions for types, fields, and arguments
  • Pagination - Connection pattern and cursor-based pagination
  • Errors - Error modeling and result types
  • Security - Security best practices for schema design

Key Rules

Type Design

  • Define types based on domain concepts, not data storage
  • Use interfaces for shared fields across types
  • Use unions for mutually exclusive types
  • Keep types focused (single responsibility)
  • Avoid deep nesting - flatten when possible

Field Design

  • Fields should be named from client's perspective
  • Return the most specific type possible
  • Make expensive fields explicit (consider arguments)
  • Use arguments for filtering, sorting, pagination

Mutation Design

  • Use single input argument pattern: mutation(input: InputType!)
  • Return affected objects in mutation responses
  • Model mutations around business operations, not CRUD
  • Consider returning a union of success/error types

ID Strategy

  • Use globally unique IDs when possible
  • Implement Node interface for refetchability
  • Base64-encode compound IDs if needed

Ground Rules

  • ALWAYS add descriptions to types and fields
  • ALWAYS use non-null (!) for fields that cannot be null
  • ALWAYS use [Type!]! pattern for lists
  • NEVER expose database internals in schema
  • NEVER break backwards compatibility without deprecation
  • PREFER dedicated input types over many arguments
  • PREFER enums over arbitrary strings for fixed values
  • USE ID type for identifiers, not String or Int
  • USE custom scalars for domain-specific values (DateTime, Email, URL)

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