复制下面这句话,粘贴给 Claude Code、Codex、Cursor 等 AI 编程工具,它会读取安装说明并在你确认后完成安装。
请阅读 https://ai.atlankj.com/install/asset/gh-add-tools-0d33a69855ca ,按照其中的说明把「add-tools」安装到你(当前 AI 工具)中。执行前先告诉我将运行的命令和写入的位置,等我确认。
查看 AI 将读取的安装说明正在读取 GitHub 原文…
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You are an expert at creating tool configurations for Sim integrations. Your job is to read API documentation and create properly structured tool files.
When the user asks you to create tools for a service:
If the docs do not clearly show the response JSON for a tool, you MUST tell the user exactly which outputs are unknown and stop short of guessing.
transformResponse against unverified payloadsIf the response shape is unknown, do one of these instead:
Create files in apps/sim/tools/{service}/:
tools/{service}/
├── index.ts # Barrel export
├── types.ts # Parameter & response types
└── {action}.ts # Individual tool files (one per operation)
Every tool must use exactly one of these configurations:
InternalToolConfig when the executor and the
implementation run in the same Sim process/trust/runtime plane. Materialize typed
operation.input, implement the handler under apps/sim/lib/internal/{service}/execute-tool.ts,
and register every tool ID in apps/sim/lib/internal/tool-operations/registry.server.ts.ToolConfig.request only when the URL is an absolute external
HTTP(S) provider endpoint.Never set a tool URL to /api/..., construct an absolute URL back to Sim, declare
request.internal, add a directExecution property (it fails bun run check:tool-request-boundary), import a route module, or create an API route merely to normalize files,
authorize access, or reuse server code. A real browser/API route may remain as a thin adapter, but
the route and the tool must call the same operation directly. A true cross-process/capability
boundary uses an explicit server client and is not disguised as a tool self-hop.
For protected Sim resources, the internal handler calls the domain's authorized application use
case with trusted execution context; use the migrate-application-operation skill.
Use this structure only for an absolute external provider API:
import type { {ServiceName}{Action}Params } from '@/tools/{service}/types'
import type { ToolConfig } from '@/tools/types'
interface {ServiceName}{Action}Response {
success: boolean
output: {
// Define output structure here
}
}
export const {serviceName}{Action}Tool: ToolConfig<
{ServiceName}{Action}Params,
{ServiceName}{Action}Response
> = {
id: '{service}_{action}', // snake_case, matches tool name
name: '{Service} {Action}', // Human readable
description: 'Brief description', // One sentence
version: '1.0.0',
// OAuth config (if service uses OAuth)
oauth: {
required: true,
provider: '{service}', // Must match OAuth provider ID
},
params: {
// Hidden params (system-injected, e.g. the OAuth accessToken)
accessToken: {
type: 'string',
required: true,
visibility: 'hidden',
description: 'OAuth access token',
},
// User-only params (credentials, api key, IDs user must provide)
someId: {
type: 'string',
required: true,
visibility: 'user-only',
description: 'The ID of the resource',
},
// User-or-LLM params (everything else, can be provided by user OR computed by LLM)
query: {
type: 'string',
required: false, // Use false for optional
visibility: 'user-or-llm',
description: 'Search query',
},
},
request: {
url: (params) => `https://api.service.com/v1/resource/${params.id}`,
method: 'POST',
headers: (params) => ({
Authorization: `Bearer ${params.accessToken}`,
'Content-Type': 'application/json',
}),
body: (params) => ({
// Request body - only for POST/PUT/PATCH
// Trim ID fields to prevent copy-paste whitespace errors:
// userId: params.userId?.trim(),
}),
},
transformResponse: async (response: Response) => {
const data = await response.json()
return {
success: true,
output: {
// Map API response to output
// Use ?? null for nullable fields
// Use ?? [] for optional arrays
},
}
},
outputs: {
// Define each output field
},
}
import type { InternalToolConfig } from '@/tools/types'
export const {serviceName}{Action}Tool: InternalToolConfig<
{ServiceName}{Action}Params,
{ServiceName}{Action}Response
> = {
id: '{service}_{action}',
name: '{Service} {Action}',
description: 'Brief description',
version: '1.0.0',
params: {
// Same canonical metadata as an external tool.
},
operation: {
input: (params) => ({
// Map resolved tool params into the typed semantic operation input.
}),
},
outputs: {
// Define each output field.
},
}
The registered handler accepts InternalToolOperationCall, validates request.input, uses only
trusted request.context for authority, forwards request.signal, and returns the same bounded
Response contract expected by the tool executor. It has no URL, method, request headers, fetch
fallback, or caller-controlled _context authority.
'hidden' - System-injected (OAuth tokens, internal params). User never sees.'user-only' - User must provide (credentials, api keys, account-specific IDs)'user-or-llm' - User provides OR LLM can compute (search queries, content, filters, most fall into this category)'string' - Text values'number' - Numeric values'boolean' - True/false'json' - Complex objects (NOT 'object', use 'json')'file' - Single file'file[]' - Multiple filesrequired: true or required: falserequired: falseClassify every request field before implementing the tool.
This is opt-in, not a blanket integration migration. Add a model-input declaration only when the service's official documentation or an unambiguous local execution path proves that the exact field is consumed by an AI model. If that cannot be established, preserve existing tool behavior and leave the field unannotated.
{{...}} references resolve and are
sent with their normal request semantics. A URL, domain, resource ID, control field, or opaque
payload is not model-visible merely because the provider is AI-backed or may process the
referenced resource later.request.modelInput for an
external provider request or operation.modelInput for an in-process operation, with
mode: 'project' and select only the exact model-visible fields. The shared executor replaces
activated Sim secrets with canonical {{NAME}} labels before request formatting. For nested or
JSON-string fields, use a small shared selector plus applyProjected; verify that selecting the
rebuilt params reproduces the projected selection.request.modelInput. Project the private copy before the existing request
formatter parses it; keep formatter behavior deterministic when a whole-value placeholder is not
valid in the serialized grammar. Do not introduce a second hard-rejection path.privateInputPaths to the mode: 'project' operation model-input
declaration, or use mode: 'private-provenance' with inputPaths when there is no textual
projection (see the modelInput union in apps/sim/tools/types.ts). Do not select storage keys,
paths, signed URLs, or ordinary remote URLs as byte provenance; the owning operation must
authorize stored bytes independently at model egress. The operation must call
validateOpaqueModelInputProvenance before downloading or sending content to the model and must
apply the workspace-file provenance guard before reading a persisted workspace file.operation.secretProvenance. The
operation validates the exact selection and trusted scope, then persists, imports, or propagates
it at the owning boundary. Preserve shared legacy behavior for rows/files whose provenance marker
is NULL; never invent a tool-local migration rule.Hard rules:
executeTool boundary owns
transport and strips private metadata from functional results.request.modelInput; otherwise preserve ordinary request
semantics. Use a registered in-process operation when encrypted provenance must cross the
boundary.{{...}} resolution path and a later model/log boundary. If an
unsupported field can resolve a secret but does not justify durable tracking (for example a
file_write path), reject it at that exact ingress.Run the test-audit authoring gate, then cover these risks at the boundary that owns them: named projection, ordinary identical text without provenance, nested and
serialized shape handling, unchanged ordinary external inputs, malformed/incomplete private metadata
failing closed, headerless legacy requests, and absence of private metadata in the public tool result.
For durable sinks, also cover legacy NULL markers, exact-empty new writes, tracked secret writes,
stale/missing sidecars, and scope isolation.
Internal operations return createInternalToolFileResult / createInternalToolFilesResult from
lib/internal/tool-operations/file-result.ts with bounded Buffers and a callback that places the
stored descriptors in the response. Their handlers preserve this result through dispatch, using
InternalToolOperationHandler<InternalToolOperationResult>. Do not serialize file bytes as base64
JSON: the executor's 10 MiB response cap runs before ordinary file postprocessing or large-value
externalization. The shared executor stores files using trusted run or Copilot ownership.
External endpoints that return raw binary files explicitly declare request.responseType: 'binary'
and return output.file with { name, mimeType, data: buffer, size } from transformResponse.
The executor applies the bounded file-transfer budget and persists the descriptor. This opt-in is
for raw binary responses, not provider JSON containing base64 or tools that fetch attachments later.
Keep provider-specific limits and bounded reads; a file declaration is not permission to enlarge
arbitrary JSON responses.
Attachment readers that download files inside transformResponse need their own bounded reads:
the first response cap does not cover subsequent fetches. Accept ToolResponseContext as the third
transform argument, forward its signal, and share one AttachmentDownloadBudget across sequential
downloads. Prefer raw provider endpoints over base64 metadata. Return the same file object in the
declared file / file[] output and nested message associations; FileToolProcessor stores it once
and replaces every alias with the same UserFile in both workflow and Copilot execution.
Preserve stored UserFile fields (id, key, url, context, type, name, size) in transforms;
rebuilding the old { name, mimeType, data, size } shape discards the reference. File outputs do not
need duplicate inline text/base64 aliases; the file system handles content materialization. When
an existing tool explicitly exposes content aliases in its contract, preserve its legacy version and
use the existing block/tool version pattern for a file-only output. Test a file over 10 MiB through
executor admission, single persistence, trusted ownership, and the unchanged JSON cap. Avoid adding
top-level filename, size, MIME type, URL, or success fields that merely repeat the canonical file or
tool result; keep additional provider fields only when they convey distinct information.
'string', 'number', 'boolean' - Primitives'json' - Complex objects (use this, NOT 'object')'array' - Arrays with items property'object' - Objects with properties propertyAdd optional: true for fields that may not exist in the response:
closedAt: {
type: 'string',
description: 'When the issue was closed',
optional: true,
},
When using type: 'json' and you know the object shape in advance, always define the inner structure using properties so downstream consumers know what fields are available:
// BAD: Opaque json with no info about what's inside
metadata: {
type: 'json',
description: 'Response metadata',
},
// GOOD: Define the known properties
metadata: {
type: 'json',
description: 'Response metadata',
properties: {
id: { type: 'string', description: 'Unique ID' },
status: { type: 'string', description: 'Current status' },
count: { type: 'number', description: 'Total count' },
},
},
For arrays of objects, define the item structure:
items: {
type: 'array',
description: 'List of items',
items: {
type: 'object',
properties: {
id: { type: 'string', description: 'Item ID' },
name: { type: 'string', description: 'Item name' },
},
},
},
Only use bare type: 'json' without properties when the shape is truly dynamic. Unknown is not the same as dynamic — see the Hard Rule above.
ALWAYS use ?? null for fields that may be undefined:
transformResponse: async (response: Response) => {
const data = await response.json()
return {
success: true,
output: {
id: data.id,
title: data.title,
body: data.body ?? null, // May be undefined
assignee: data.assignee ?? null, // May be undefined
labels: data.labels ?? [], // Default to empty array
closedAt: data.closed_at ?? null, // May be undefined
},
}
}
DON'T do this:
output: {
data: data, // BAD - raw JSON dump
}
DO this instead - extract meaningful fields:
output: {
id: data.id,
name: data.name,
status: data.status,
metadata: {
createdAt: data.created_at,
updatedAt: data.updated_at,
},
}
Create types.ts with interfaces for all params and responses:
import type { ToolResponse } from '@/tools/types'
// Parameter interfaces
export interface {Service}{Action}Params {
accessToken: string
requiredField: string
optionalField?: string
}
// Response interfaces (extend ToolResponse)
export interface {Service}{Action}Response extends ToolResponse {
output: {
field1: string
field2: number
optionalField?: string | null
}
}
// Export all tools
export { serviceTool1 } from './{action1}'
export { serviceTool2 } from './{action2}'
// Export types
export * from './types'
After creating tools:
apps/sim/tools/registry.tstools object with snake_case keys (alphabetically):import { serviceActionTool } from '@/tools/{service}'
export const tools = {
// ... existing tools ...
{service}_{action}: serviceActionTool,
}
bun run tool-metadata:generate
Client code reads a tool's params/outputs from generated metadata rather than
importing the registry, so a tool you add, change or remove is invisible to the UI until
these are regenerated — and CI fails on stale artifacts. Commit the result. See
.agents/skills/tool-registry-boundary/SKILL.md.
After registering in tools/registry.ts, you MUST also update the block definition at apps/sim/blocks/blocks/{service}.ts. This is not optional — tools are only usable from the UI if they are wired into the block.
tools.accesstools: {
access: [
// existing tools...
'service_new_action', // Add every new tool ID here
],
config: { ... }
}
If the block uses an operation dropdown, add an option for each new tool:
{
id: 'operation',
type: 'dropdown',
options: [
// existing options...
{ label: 'New Action', id: 'new_action' }, // id maps to what tools.config.tool returns
],
}
For each new tool, add subBlocks covering all its required params (and optional ones where useful). Apply condition to show them only for the right operation, and mark required params with required:
// Required param for new_action
{
id: 'someParam',
title: 'Some Param',
type: 'short-input',
placeholder: 'e.g., value',
condition: { field: 'operation', value: 'new_action' },
required: { field: 'operation', value: 'new_action' },
},
// Optional param — put in advanced mode
{
id: 'optionalParam',
title: 'Optional Param',
type: 'short-input',
condition: { field: 'operation', value: 'new_action' },
mode: 'advanced',
},
tools.config.toolEnsure the tool selector returns the correct tool ID for every new operation. The simplest pattern:
tool: (params) => `service_${params.operation}`,
// If operation dropdown IDs already match tool IDs, this requires no change.
If the dropdown IDs differ from tool IDs, add explicit mappings:
tool: (params) => {
const map: Record<string, string> = {
new_action: 'service_new_action',
// ...
}
return map[params.operation] ?? `service_${params.operation}`
},
tools.config.paramsAdd any type coercions needed for new params (runs at execution time, after variable resolution):
params: (params) => {
const result: Record<string, unknown> = {}
if (params.limit != null && params.limit !== '') result.limit = Number(params.limit)
if (params.newParamName) result.toolParamName = params.newParamName // rename if IDs differ
return result
},
Add any new fields returned by the new tools to the block outputs:
outputs: {
// existing outputs...
newField: { type: 'string', description: 'Description of new field' },
}
Add new subBlock param IDs to the block inputs section:
inputs: {
// existing inputs...
someParam: { type: 'string', description: 'Param description' },
optionalParam: { type: 'string', description: 'Optional param description' },
}
tools.accesscondition (only show for the right operation)mode: 'advanced'tools.config.tool returns correct ID for every new operationtools.config.params handles any ID remapping or type coercionsoutputsinputsIf creating V2 tools (API-aligned outputs), use _v2 suffix:
{service}_{action}_v2{action}V2Tool'2.0.0'InternalToolConfig.operation or absolute external
HTTP(S) ToolConfig.request/api/..., constructs a URL back to Sim, or declares
request.internaldirectExecution; in-process work uses a registered operationrequired: true or required: falsevisibility?? nulloptional: trueexport * from './types')tools/registry.tsbun run tool-metadata:generate run and the regenerated artifacts committedbun run scripts/generate-docs.ts run and the refreshed docs committed — the integration's
docs page is rendered from each tool's description, params, and outputs, and CI's
bun run docs:check fails on stale pagestools.access, dropdown options, subBlocks, tools.config, outputs, inputs{{...}} resolution path requires themBefore finishing, validate each tool file against the API docs:
required: truerequired: falseoperation.input matches the handler schema and the handler is registered
with no HTTP fallbacktransformResponse extracts the correct fields from the API responsetypes.ts match all tools that use them