toolkit-mcp-server
Servidor público alojado: https://toolkit.caseyjhand.com/mcp
Herramientas
Siete herramientas. Cinco están siempre activas y no requieren configuración — utilidades de cálculo puro más una búsqueda de IP sin SSRF. Dos exploran el servidor anfitrión y permanecen ausentes de tools/list hasta que optes por ellas, con fallo seguro.
Herramienta | Descripción |
| Genera un resumen criptográfico (sha256/sha512/sha1/md5), o compara en tiempo constante un valor con un resumen esperado. |
| Acuña identificadores criptográficamente aleatorios — UUIDv4, UUIDv7 o ULID — individualmente o en lotes de hasta 1000. |
| Codifica texto o una URL en un código QR como marcado SVG, PNG en base64 o una cadena renderizable en terminal. |
| Codifica o decodifica un valor en base64, base64url, hex o codificación porcentual de URL, en cualquier dirección. |
| Resuelve una IP pública o nombre de host en metadatos geográficos y de red — país, ciudad, coordenadas, ASN, zona horaria. |
| Controlada, desactivada por defecto. Diagnósticos de red de solo lectura desde el servidor anfitrión — ping, traceroute, conectividad TCP o detección de IP de salida. |
| Controlada, desactivada por defecto. Reporta una faceta del estado del sistema del servidor anfitrión — SO, CPU, memoria, carga media o interfaces de red. |
toolkit_hash_value
Genera un resumen, o verifica en tiempo constante un valor contra uno esperado.
operation:generate(resumen en hexadecimal minúsculas) ocompare(verificación segura en tiempo constante mediantetimingSafeEqual)Algoritmos:
sha256(por defecto) ysha512para seguridad;sha1ymd5se exponen solo para compatibilidad con sumas de verificación e integridad de archivos — nunca para contraseñas o firmasinputEncodingleevaluecomoutf8(por defecto),hexobase64, por lo que los blobs binarios se saltan un viaje de ida y vuelta de decodificaciónUso canónico: comparar una descarga con una suma de verificación publicada por el proveedor
toolkit_generate_id
Acuña identificadores criptográficamente aleatorios desde el CSPRNG de la plataforma — la fuente correcta para IDs que deben ser impredecibles, a diferencia de valores inventados por el modelo.
type:uuid_v4(aleatorio, por defecto),uuid_v7(ordenado por tiempo, ordenable por creación), oulid(26 caracteres en base32 de Crockford, ordenable lexicográficamente)countacuña un lote de hasta 1000 en una sola llamada; el arrayidsdevuelto siempre contiene exactamentecountvaloresLos lotes de
uuid_v7yulidson monótonos — estrictamente crecientes incluso dentro del mismo milisegundo — por lo queidsse mantiene en orden de creación ordenadoSolo lectura — acuñar no cambia nada — pero nunca idempotente, por lo que un cliente no almacenará en caché ni deduplicará un lote
toolkit_generate_qr
Codifica texto o una URL en un código QR.
format:svg(marcado en línea),png_base64(bytes raster conmimeTypeybyteLength), oterminal(cadena de bloques Unicode)errorCorrection(L/M/Q/H) intercambia capacidad de datos por tolerancia a daños;marginestablece el ancho de la zona silenciosa;scaleestablece píxeles por módulo para salida rasterLa
versiondevuelta (1–40) refleja cuán densos son los datos codificadospng_base64también llega como un bloque de contenido de imagen MCP, por lo que un cliente que leacontent[]puede renderizar el código sin decodificarstructuredContentUn PNG renderizado está limitado a 2048 px por lado —
(modules + 2 × margin) × scale— por lo que un símbolo denso con unscalealto es rechazado con un error tipadoraster_too_largeque nombra una escala que cabe;svgyterminalno tienen límitesdataestá limitado a 2953 bytes — el techo absoluto (versión 40, nivel L, modo byte); la capacidad útil es menor en niveles más altos deerrorCorrection, por lo que la entrada excesiva es rechazada con un error tipadodata_too_largeen lugar de un fallo genérico
toolkit_encode_value
Codifica o decodifica un valor, en cualquier dirección.
encoding:base64,base64url(alfabeto seguro para URL),hexourl(codificación porcentual)operation:encode(UTF-8 sin procesar → codificación) odecode(valor codificado → texto)Una entrada de decodificación mal formada devuelve un error tipado
decode_failedcon una pista de recuperación, no un silencioso mejor esfuerzo
toolkit_geolocate_ip
Resuelve una IP pública o nombre de host en metadatos geográficos y de red.
Devuelve país, región, ciudad, latitud/longitud, ASN, organización propietaria y zona horaria
proxy,hostingymobilemarcan cuando la dirección es un proxy/VPN/salida Tor, una red de centro de datos o una operadora móvil — untrueen cualquiera de ellos significa que las coordenadas describen infraestructura, no una persona. Ausentes cuando el proveedor no los reportaUn nombre de host se resuelve por DNS primero;
resolvedIprefleja la IP realmente localizada, ysourcenombra al proveedor que respondeSin SSRF — el servidor llama al proveedor, nunca al destino; la IP resuelta se vuelve a verificar contra rangos privados, y las direcciones privadas/reservadas son rechazadas (no tienen geolocalización pública)
Mejor esfuerzo y limitado por el proveedor: VPNs, proxies, NAT móvil y anycast todos frustran la IP-to-ubicación, la precisión es a nivel de ciudad como máximo, y los campos ausentes se reportan como desconocidos en lugar de inventados
Las cadenas proporcionadas por el proveedor se truncan y se eliminan los caracteres de control antes de llegar a la respuesta, por lo que el texto controlado por el registro (
org,isp,as) no puede inundar ni formatear el contexto de un modeloSin clave por defecto (nivel gratuito de ip-api, que es HTTP en texto plano — ver
TOOLKIT_GEO_BASE_URL); los resultados se almacenan en caché en memoria por IP resuelta bajo un límite fijo de entradas
toolkit_check_network
Controlada — registrada solo cuando TOOLKIT_ENABLE_NET_DIAGNOSTICS=true. Diagnósticos de red de solo lectura desde el servidor anfitrión.
mode:ping(ida y vuelta ICMP),traceroute(ruta de saltos al destino),connectivity(conexión TCP sin procesar atargetenport), opublic_ip(IP de salida propia del host)Un host que no responde se reporta como
reachable: false— un resultado válido, no un errorDiagnostica la red del servidor mismo, por lo que es útil en un despliegue local o autoalojado; alcanzar un destino privado/reservado/interno requiere además
TOOLKIT_ALLOW_PRIVATE_NETWORK=true, lo que mantiene el endpoint de metadatos de la nube bloqueado por defecto
toolkit_check_system
Controlada — registrada solo cuando TOOLKIT_ENABLE_SYSTEM_INFO=true. Reporta una faceta del estado del sistema del servidor anfitrión, de solo lectura.
what:os,cpu,memory,loadointerfacesExactamente un objeto de faceta se completa por llamada, coincidiendo con
whatDescribe el host en el que se ejecuta este servidor, no el cliente que llama — significativo en un despliegue local o autoalojado; desactivado por defecto porque
oseinterfacesrevelan topología del host y detalles de versión
Related MCP server: IT Tools MCP Server
Características
Construido sobre @cyanheads/mcp-ts-core:
Definiciones declarativas de herramientas — un archivo por herramienta, el framework maneja el registro y la validación
Manejo unificado de errores — los handlers lanzan, el framework captura, clasifica y formatea
Contratos de errores tipados — cada herramienta posiblemente fallida declara sus razones de fallo con pistas de recuperación en las que el agente puede actuar
Autenticación conectable:
none,jwt,oauthRegistro estructurado con trazado OpenTelemetry opcional
Transportes STDIO y Streamable HTTP
Específicos del toolkit:
Control de fallo seguro — las dos herramientas de exploración del host están ausentes de
tools/lista menos que se habiliten explícitamente, por lo que una instancia alojada no expone superficie de SSRF o divulgación de informaciónPuerta de red de dos niveles — incluso con diagnósticos habilitados, los destinos privados/reservados/loopback/link-local (incluyendo el endpoint de metadatos de la nube) permanecen bloqueados hasta que un segundo indicador los permita
Primitivas respaldadas por CSPRNG — los identificadores y resúmenes provienen de la fuente criptográfica de la plataforma, y la comparación de hashes es en tiempo constante mediante
timingSafeEqualGeolocalización sin SSRF — el servidor llama al proveedor, luego vuelve a verificar la IP resuelta por DNS contra rangos privados antes de la búsqueda, por lo que un nombre de host no puede colar una solicitud a una dirección interna
Salida amigable para agentes:
Procedencia — la geolocalización refleja la IP resuelta y nombra al proveedor que responde; los campos ascendentes ausentes se reportan como desconocidos, nunca inventados
Resultados caídos pero válidos — un host inalcanzable devuelve
reachable: falseen lugar de un error, por lo que los llamadores bifurcan en datos, no en texto de excepciónRazones de fallo tipadas — fallos de decodificación, resúmenes faltantes y destinos privados bloqueados llevan cada uno una razón estructurada más una pista de recuperación de próximo paso
Primeros pasos
Instancia pública alojada
Una instancia pública está disponible en https://toolkit.caseyjhand.com/mcp — no se requiere instalación. Apunta cualquier cliente MCP a ella a través de Streamable HTTP:
{
"mcpServers": {
"toolkit-mcp-server": {
"type": "streamable-http",
"url": "https://toolkit.caseyjhand.com/mcp"
}
}
}Autohospedado / Local
Añade lo siguiente a tu archivo de configuración del cliente MCP. No se requiere clave API — las cinco herramientas siempre activas y el nivel de geolocalización sin clave por defecto funcionan de inmediato.
{
"mcpServers": {
"toolkit-mcp-server": {
"type": "stdio",
"command": "bunx",
"args": ["@cyanheads/toolkit-mcp-server@latest"],
"env": {
"MCP_TRANSPORT_TYPE": "stdio",
"MCP_LOG_LEVEL": "info"
}
}
}
}O con npx (no requiere Bun):
{
"mcpServers": {
"toolkit-mcp-server": {
"type": "stdio",
"command": "npx",
"args": ["-y", "@cyanheads/toolkit-mcp-server@latest"],
"env": {
"MCP_TRANSPORT_TYPE": "stdio",
"MCP_LOG_LEVEL": "info"
}
}
}
}O con Docker:
{
"mcpServers": {
"toolkit-mcp-server": {
"type": "stdio",
"command": "docker",
"args": ["run", "-i", "--rm", "-e", "MCP_TRANSPORT_TYPE=stdio", "ghcr.io/cyanheads/toolkit-mcp-server:latest"]
}
}
}Para habilitar las herramientas de exploración del host controladas, añade sus banderas a env (o -e para Docker):
"env": {
"MCP_TRANSPORT_TYPE": "stdio",
"TOOLKIT_ENABLE_NET_DIAGNOSTICS": "true",
"TOOLKIT_ENABLE_SYSTEM_INFO": "true"
}Para Streamable HTTP, configura el transporte e inicia el servidor:
MCP_TRANSPORT_TYPE=http MCP_HTTP_PORT=3010 bun run start:http
# Server listens at http://localhost:3010/mcpRequisitos previos
Bun v1.3.2 o superior (o Node.js v24+).
No se necesita clave API — la geolocalización usa el nivel gratuito sin clave de ip-api por defecto.
Instalación
Clona el repositorio:
git clone https://github.com/cyanheads/toolkit-mcp-server.gitNavega al directorio:
cd toolkit-mcp-serverInstala las dependencias:
bun installConfiguración
Cada variable es opcional. Las opciones específicas del servidor se validan al inicio mediante el esquema Zod en src/config/server-config.ts.
Variable | Descripción | Valor por defecto |
| Registra la herramienta restringida |
|
| Registra la herramienta restringida |
|
| Con los diagnósticos de red activados, permite destinos privados/reservados/loopback. La segunda compuerta explícita. |
|
| Clave API para el endpoint de geolocalización, si la requiere. | ninguna |
| URL base para un endpoint de geolocalización compatible con ip-api. El valor por defecto es HTTP en texto plano — el endpoint HTTPS de ip-api no forma parte del nivel gratuito sin clave y responde con |
|
| TTL de la caché de geolocalización en memoria, en segundos. |
|
| Máximo de solicitudes de geolocalización por minuto. |
|
| Transporte: |
|
| Puerto para el servidor HTTP. |
|
| Modo de autenticación: |
|
| Nivel de registro (RFC 5424). |
|
| Habilita la instrumentación de OpenTelemetry (trazados, métricas, registros de finalización). |
|
Consulta .env.example para la lista completa de anulaciones opcionales.
Ejecutar el servidor
Desarrollo local
Compilar y ejecutar:
# One-time build bun run rebuild # Run the built server bun run start:stdio # or bun run start:httpEjecutar comprobaciones y pruebas:
bun run devcheck # Lint, format, typecheck, security, changelog sync bun run test # Vitest test suite bun run lint:mcp # Validate MCP definitions against spec
Docker
docker build -t toolkit-mcp-server .
docker run --rm -e MCP_TRANSPORT_TYPE=http -p 3010:3010 toolkit-mcp-serverEl Dockerfile usa por defecto transporte HTTP, modo de sesión sin estado y registra en /var/log/toolkit-mcp-server. Las dependencias de pares de OpenTelemetry se instalan por defecto; compila con --build-arg OTEL_ENABLED=false para omitirlas.
Estructura del proyecto
Directorio | Propósito |
| Punto de entrada |
| Análisis y validación de variables de entorno específicas del servidor con Zod. |
| Definiciones de herramientas ( |
| Servicio de geolocalización — resolución DNS, llamada al proveedor con reintento/backoff, normalización, caché en memoria. |
| Servicio de diagnóstico de red más el validador de destinos compartido y el clasificador de rangos privados. |
| Pruebas unitarias y de integración que reflejan la estructura de |
Guía de desarrollo
Consulta CLAUDE.md / AGENTS.md para las pautas de desarrollo y las reglas arquitectónicas. La versión resumida:
Los manejadores lanzan excepciones, el framework las captura — sin
try/catchen la lógica de las herramientasUsa
ctx.logpara el registro con ámbito de solicitud,ctx.statepara el almacenamiento con ámbito de inquilinoRegistra nuevas herramientas en los arrays de
createApp()ensrc/index.tsLas dos herramientas de sondeo del host se registran detrás de sus banderas de habilitación; la compuerta del destino de red valida después de la resolución DNS — nunca fabriques un resultado para un destino no localizable o inalcanzable
Contribuciones
Las incidencias y las solicitudes de extracción son bienvenidas. Ejecuta las comprobaciones y las pruebas antes de enviar:
bun run devcheck
bun run testLicencia
Apache-2.0 — consulta LICENSE para más detalles.
Available Tools
5 toolstoolkit_encode_valuetoolkit-mcp-server: encode valueARead-onlyIdempotentInspect
Encode or decode a value across base64, base64url, hex, or URL (percent) encoding, in either direction. Set operation to "encode" to transform raw UTF-8 text into the chosen encoding, or "decode" to recover the original bytes from an encoded value. Decoded bytes come back as UTF-8 text by default; set outputEncoding to "hex" or "base64" to receive them re-encoded instead, which is lossless for binary data and transcodes between encodings (a base64 digest to hex, for example). Decoding never substitutes replacement characters: bytes that are not valid UTF-8 text are reported as a recoverable error that points at outputEncoding. Whitespace in hex, base64, and base64url values is ignored, so line-wrapped MIME bodies and PEM bodies decode as-is (drop PEM's -----BEGIN/END----- lines, which are not base64). base64url uses the URL-safe alphabet (- and _ instead of + and /); url applies encodeURIComponent and percent-decoding. A value that is malformed for the chosen encoding is reported as a recoverable error, not a silent best-effort.
| Name | Required | Description | Default |
|---|---|---|---|
| value | Yes | The value to transform — raw text for encode, an encoded string for decode. Whitespace is ignored when decoding hex, base64, or base64url; a url value is taken literally. | |
| encoding | Yes | The encoding to apply: base64, URL-safe base64url, hex, or URL percent-encoding. | |
| operation | Yes | "encode" transforms text into the encoding; "decode" recovers the bytes from an encoded value. | |
| outputEncoding | No | Decode only: how the recovered bytes are returned. utf8 (used when omitted) returns text and fails when the bytes are not valid UTF-8; hex and base64 return the raw bytes re-encoded, losslessly. Rejected when operation is "encode". |
Output Schema
| Name | Required | Description |
|---|---|---|
| error | No | Present when the call failed. Absent on success. |
| result | No | The transformed value: encoded text for encode; for decode, the recovered bytes as UTF-8 text, hex, or base64 per outputEncoding. |
| encoding | No | The encoding that was applied. |
| operation | No | The operation that was performed. |
| outputEncoding | No | How result renders the decoded bytes: utf8 text, hex, or base64. Present for operation "decode". |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
The description goes far beyond the readOnlyHint/idempotentHint annotations by disclosing key behavior: decoding never substitutes replacement characters, malformed values produce recoverable errors, whitespace is ignored in certain encodings, base64url uses the URL-safe alphabet, and url uses encodeURIComponent. This is exactly the kind of behavioral context an agent needs beyond annotations.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
The description is longer than average but every sentence carries useful information, including edge cases, error behavior, and encoding-specific details. The first sentence front-loads the core purpose. It is dense rather than redundant, though it could be tightened slightly without losing value.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
Given the tool's complexity — four parameters, three enums, two operations, and multiple encoding formats — the description is remarkably complete. It covers error handling, whitespace tolerance, PEM/MIME scenarios, binary data handling, and output format options. With an output schema also present, nothing an agent needs to call and understand this tool is missing.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Even though schema coverage is 100%, the description adds substantial meaning to the parameters: it explains what "decode" returns by default, how outputEncoding enables lossless transcoding, how whitespace handling affects the value parameter, and which alphabet base64url uses. This is meaningful value beyond the schema's enumerated definitions.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description opens with a specific verb and resource combination: "Encode or decode a value across base64, base64url, hex, or URL (percent) encoding, in either direction." This unambiguously identifies the tool's operation and scope, and clearly separates it from siblings like hash_value or generate_id, which perform different transformations.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description provides clear operational guidance: when to use "encode" vs "decode", and when to set outputEncoding. It also gives practical use cases like decoding base64 digests and PEM bodies. However, it does not explicitly name sibling tools or state when this tool should be preferred over them, though the context is strong enough that an agent can infer appropriate usage.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
toolkit_generate_idtoolkit-mcp-server: generate idARead-onlyInspect
Mint cryptographically-random identifiers using the platform CSPRNG — the correct source for IDs that must be unpredictable, unlike model-generated values. type selects the format: uuid_v4 (random, the default), uuid_v7 (time-ordered, sortable by creation), or ulid (26-char Crockford-base32, lexicographically sortable). Set count to mint a batch in one call (up to 1000); the returned ids array always contains exactly count values and is never truncated. For uuid_v7 and ulid, a batch is monotonic — strictly increasing even within the same millisecond — so the ids array stays in sorted creation order; ids minted in the same millisecond are separated by random gaps, so no id in a batch can be derived from another. IDs from this tool feed into toolkit_generate_qr (pass ids[0] as data) to create a scannable code.
| Name | Required | Description | Default |
|---|---|---|---|
| type | No | Identifier format: uuid_v4 (random), uuid_v7 (time-ordered), or ulid (sortable Crockford-base32). | uuid_v4 |
| count | No | How many identifiers to mint (1–1000). The full batch is always returned. |
Output Schema
| Name | Required | Description |
|---|---|---|
| ids | No | The minted identifiers — exactly count of them, in mint order; for uuid_v7 and ulid that order is strictly increasing (sorted by creation), with random gaps between ids minted in the same millisecond. |
| type | No | The identifier format that was minted. |
| count | No | The number of identifiers minted (equals the requested count). |
| error | No | Present when the call failed. Absent on success. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
Annotations already declare readOnlyHint=true, but the description goes far beyond: it discloses the source (platform CSPRNG), output guarantees ('always contains exactly count values and is never truncated'), monotonic ordering for uuid_v7/ulid, strict increasing within the same millisecond, and the security property that 'no id in a batch can be derived from another'. This rich behavioral disclosure is not present in annotations and is critical for correct use.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Each sentence earns its place: purpose and source are front-loaded, then type semantics, batch behavior, ordering guarantees, and downstream integration. There is no fluff or repetition of schema verbatim; the description is dense but well-structured, guiding the agent from conceptual purpose to invocation details.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a two-parameter tool with an output schema and clear annotations, the description fully covers what an agent needs: when to use, format selection, batching limits, return-count guarantees, ordering behavior, and integration with a sibling. No critical information is missing, and the output schema handles return-shape details.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema coverage is 100%, so baseline is 3. The description adds meaningful semantics beyond the schema: it explains the default (uuid_v4), clarifies each type's ordering properties, specifies 'up to 1000' for count, and introduces the guarantee that the full batch is always returned without truncation. This adds real value over the schema alone, though the schema already covers basic type and count limits.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
Description opens with 'Mint cryptographically-random identifiers using the platform CSPRNG' — a specific verb ('mint'), resource ('identifiers'), and method (CSPRNG). It distinguishes this tool from siblings by stating it is the correct source for unpredictable IDs and explicitly contrasts with 'model-generated values'. The purpose is unambiguous and differentiates from toolkit_hash_value, toolkit_encode_value, etc.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description says to use this tool when IDs 'must be unpredictable' and indicates 'unlike model-generated values' — an explicit when-not. It also provides a concrete downstream workflow: 'feed into toolkit_generate_qr (pass ids[0] as data)', which acts as a usage directive. Combined with format-selection guidance for type and batching with count, the agent knows exactly when and how to invoke it.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
toolkit_generate_qrtoolkit-mcp-server: generate QR codeARead-onlyIdempotentInspect
Encode text or a URL into a QR code. data is the content to encode (a link, a generated identifier such as toolkit_generate_id's ids[0], or any string). format selects the output: svg returns inline SVG markup sized in pixels, png_base64 returns base64-encoded PNG bytes (with mimeType and byteLength), and terminal returns plain Unicode half-block characters (no escape codes) for a monospace display, drawn for a dark background: light modules, quiet zone included, are blocks and dark modules are spaces. errorCorrection (L/M/Q/H) trades data capacity for damage tolerance, margin sets the quiet-zone width in modules, and scale sets pixels per module for svg and png_base64, so both are (modules + 2 × margin) × scale pixels per side. The returned version (1–40) reflects how dense the encoded data is. png_base64 rejects an image past 2048 px per side with a typed raster_too_large error, so a dense symbol needs a lower scale; svg is vector markup and carries no such limit.
| Name | Required | Description | Default |
|---|---|---|---|
| data | Yes | The text or URL to encode, stored as UTF-8. Capacity is counted in bytes: 2953 UTF-8 bytes is the absolute ceiling (QR version 40, level L, byte mode). The 2953-character limit here is only an upper bound, since a non-ASCII character takes 2–4 bytes. Usable capacity drops at higher errorCorrection levels, so over-capacity data is rejected with a typed data_too_large error rather than a generic failure. | |
| scale | No | Pixels per module for svg (its width and height) and png_base64. Ignored for terminal. png_base64 also bounds the whole image at 2048 px per side, so a dense symbol or a wide margin admits a lower scale than 32 there. | |
| format | No | Output format: svg markup, png_base64 (raster bytes), or terminal (plain Unicode half-blocks, drawn for a dark background). | svg |
| margin | No | Quiet-zone width in modules around the symbol. The spec recommends 4. | |
| errorCorrection | No | Error-correction level: L (~7% recoverable) to H (~30%). Higher tolerance lowers data capacity. | M |
Output Schema
| Name | Required | Description |
|---|---|---|
| error | No | Present when the call failed. Absent on success. |
| format | No | The format that was produced. |
| content | No | The QR artifact: SVG markup, the terminal half-block grid (newline-separated rows), or base64 PNG bytes for png_base64. |
| version | No | QR symbol version (1–40); higher versions hold denser data and indicate denser content. |
| mimeType | No | MIME type of content for image formats. Absent for the terminal format. |
| byteLength | No | Decoded byte size of the PNG. Present only for png_base64. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
Beyond the readOnlyHint and idempotentHint annotations, the description discloses significant behavioral detail: format-specific output shapes (SVG markup, base64 PNG bytes with mimeType and byteLength, terminal Unicode blocks), typed error conditions (data_too_large, raster_too_large), the pixel-size formula, and the version range reflecting data density. It even clarifies terminal rendering for dark backgrounds. This far exceeds what annotations alone provide.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
The description is information-dense and front-loaded with the core purpose in the first sentence. Each subsequent sentence introduces a distinct parameter or constraint, and the flow from format to error behavior is logical. It is longer than two sentences, but given the three output formats and several interacting parameters, the length is justified without wasteful repetition.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a tool with 5 parameters, 3 formats, and a moderately complex output, the description is thorough: it covers all parameters, format-specific behaviors, encoding boundaries, and error conditions. An output schema exists, so return values are already documented. No critical information an agent needs to invoke the tool correctly is missing.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Although the schema already has 100% parameter coverage, the description adds meaningful semantics not present in the schema: how scale and margin combine into final image dimensions, which parameters are ignored by which format, how errorCorrection trades capacity against tolerance, and the pixel limit interaction with scale for png_base64. This elevates the description well above the baseline.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description opens with a specific verb and resource: 'Encode text or a URL into a QR code', which clearly states the tool's function. It goes beyond the title by naming concrete use cases (links, generated identifiers, strings) and enumerating the three output formats. Sibling tools like toolkit_encode_value, toolkit_generate_id, and toolkit_hash_value are clearly different in purpose, so an agent can distinguish this tool without confusion.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description provides rich context for when to use the tool: what kinds of data are acceptable (links, identifiers, arbitrary strings), what each format yields, and how parameters interact. It does not explicitly state when not to use this tool or name alternative siblings for specific scenarios, but the sibling set is distinct enough that the usage is clear.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
toolkit_geolocate_iptoolkit-mcp-server: geolocate IPARead-onlyIdempotentInspect
Resolve a public IP address (or hostname) to geographic and network metadata: country, region, city, latitude/longitude, the owning ASN and organization, timezone, and the proxy/hosting/mobile quality flags. target accepts an IPv4/IPv6 address or a hostname — a hostname is DNS-resolved first and the resolvedIp field echoes which IP was actually located. The provider is called directly (never the target), so this is SSRF-free and safe to expose anywhere. Results are best-effort and provider-bounded: VPNs, proxies, mobile NAT, and anycast all defeat IP-to-location, accuracy is city-level at best, and many fields can be absent for reserved or thinly-documented ranges — absent fields are reported as unknown, never invented. Read proxy, hosting, and mobile before trusting the coordinates: a true on any of them means the location describes infrastructure, not the user. Private/reserved addresses have no public geolocation and are rejected. The source field names which provider answered.
| Name | Required | Description | Default |
|---|---|---|---|
| target | Yes | A public IPv4/IPv6 address or a hostname (e.g. "8.8.8.8" or "example.com"). |
Output Schema
| Name | Required | Description |
|---|---|---|
| asn | No | Autonomous System number, e.g. "AS15169". Absent on providers that omit it. |
| org | No | Owning organization or ISP, e.g. "Google LLC". Absent when unknown. |
| city | No | City name. Absent when unknown. |
| error | No | Present when the call failed. Absent on success. |
| proxy | No | True when the address is a known proxy, VPN, or Tor exit — the location describes the exit node, not the user. Absent when the provider does not report it. |
| mobile | No | True when the address belongs to a mobile carrier network, where NAT can place the location far from the device. Absent when unreported. |
| region | No | Region or state name. Absent when unknown. |
| source | No | The provider that answered the lookup, e.g. "ip-api". |
| target | No | The target as supplied (IP or hostname). |
| country | No | Country name. Absent when the provider does not report it. |
| hosting | No | True when the address belongs to a hosting or datacenter network, so the location is a facility rather than a person. Absent when unreported. |
| latitude | No | Latitude in decimal degrees. Absent when unknown. |
| timezone | No | IANA timezone, e.g. "America/Los_Angeles". Absent when unknown. |
| longitude | No | Longitude in decimal degrees. Absent when unknown. |
| resolvedIp | No | The IP that was actually located (a supplied hostname is resolved to this first). |
| countryCode | No | ISO 3166-1 alpha-2 country code. Absent when unknown. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With readOnlyHint=true and destructiveHint=false already in annotations, the bar is lower, yet the description still adds real context: the provider is called directly (never the target), so it is safe on untrusted input; accuracy is provider-bounded; behavior on private/reserved ranges is stated; proxy/VPN/mobile flags are defined as reliability warnings; and the source field is disclosed. Nothing contradicts the annotations.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
All four sentences are substantive and the operation is stated up front in the first sentence, with caveats and security notes after. No filler. Minor redundancy between 'accuracy is best-effort' and 'VPNs, proxies, anycast...' slightly thins the density, but nothing is wasted.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a single-param, read-only tool whose output is not schema-described, the description covers: the input types, DNS resolution behavior, the output fields, the meaning of proxy/mobile flags for reliability, and failure modes (private ranges rejected). An agent has everything needed to call it correctly and interpret the result.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema coverage is 100% (the single param is fully defined with three alternates: IPv4, IPv6, hostname). The description adds value beyond the schema by stating that hostnames are DNS-resolved first and that the resolved address is echoed in the response — behavior the schema cannot express. Slightly more caveat detail (e.g., punycode) would push to 5, but coverage is already high.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The first sentence states a clear verb-resource pair — resolve a public IP or hostname to a set of geographic and network metadata — and enumerates every returned field, so an agent immediately knows what it does and what it returns. It also carves out scope (public only) that distinguishes it in a toolkit whose other tools are QR, hash, and weather related.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description explains when results are reliable and when they are not (VPNs, proxies, anycast, mobile NAT, reserved ranges), which is implicit guidance to the caller on trusting the output. It does not explicitly contrast with a sibling geolocation alternative, but the sibling set contains no competing tool, so a 4 is appropriate rather than a 5.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
toolkit_hash_valuetoolkit-mcp-server: hash valueARead-onlyIdempotentInspect
Generate a cryptographic digest of a value, or verify a value against an expected digest. Set operation to "generate" for a digest, or "compare" to constant-time-check value against the expected digest — compare is timing-safe and avoids manual string equality checks. Omitting operation compares when expected is supplied and generates otherwise. Algorithm defaults to sha256; sha384 and sha512 are also secure, while md5 and sha1 are exposed for checksum and file-integrity compatibility ONLY and must not be used for passwords, signatures, or any security purpose. digestEncoding selects the generated digest form: lowercase hex (default), base64, or sri (-, the npm lockfile integrity and Subresource Integrity form, sha256/sha384/sha512 only). expected is accepted as hex, base64, or SRI, recognized by its shape at the algorithm's digest length, so a published checksum can be pasted as-is; an SRI value may hold several space-separated entries, as an npm integrity field can, and matches when any entry for algorithm does. inputEncoding controls how value is read before hashing (utf8 default, or hex/base64 for raw binary data) so binary blobs need no decode round-trip. The canonical use is matching a download against a vendor-published checksum or a lockfile integrity entry.
| Name | Required | Description | Default |
|---|---|---|---|
| value | Yes | The data to hash, interpreted per inputEncoding (raw text by default). | |
| expected | No | The digest to compare against, as hex (any case), standard base64, or SRI (<algorithm>-<base64>); the form is recognized from its shape at the algorithm's digest length, and a string of only hex digits is always read as hex. An SRI value may carry several space-separated entries: entries for other algorithms are skipped, and it matches when any entry for algorithm matches. Supplying it with operation omitted runs a compare; it is rejected with operation "generate". | |
| algorithm | No | Digest algorithm. sha256 (default), sha384, or sha512 for security; md5/sha1 are checksum/compat only — not for security. | sha256 |
| operation | No | "generate" produces a digest; "compare" constant-time-checks value against expected. When omitted, resolves to "compare" if expected is supplied and "generate" otherwise. | |
| inputEncoding | No | How value is decoded before hashing: utf8 text, hex, or base64. | utf8 |
| digestEncoding | No | Form of the generated digest: lowercase hex (default), standard base64, or sri (<algorithm>-<base64>, sha256/sha384/sha512 only). Applies to operation "generate". | hex |
Output Schema
| Name | Required | Description |
|---|---|---|
| error | No | Present when the call failed. Absent on success. |
| digest | No | Digest of value in the requested digestEncoding: lowercase hex, base64, or <algorithm>-<base64>. Present for operation "generate". |
| matches | No | Constant-time equality of the computed digest against expected. Present for operation "compare". |
| algorithm | No | The algorithm used. |
| operation | No | The operation performed, after resolving an omitted operation. |
| lengthInBytes | No | Digest size in bytes (32 for sha256, 48 for sha384, 64 for sha512, 20 for sha1, 16 for md5). Present for "generate". |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
Annotations already mark the tool as readOnly and idempotent. The description adds meaningful behavioral detail: constant-time comparison, security caveats for weak algorithms, flexible expected-format recognition, and SRI multi-entry matching. These go well beyond the annotations and give the agent a clear model of how the tool behaves without contradicting the structured metadata.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
The description is long (~150 words) but every sentence contributes a distinct piece of information: purpose, operation behavior, algorithm security, digest encoding, expected format handling, input encoding, and a canonical use case. It is front-loaded with the core purpose and then systematically covers each nuance. While it could be tightened, the density is justified by the tool's complexity.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
With an output schema present, the description need not specify return values. It thoroughly covers all parameters, their defaults, and edge cases (omitted operation, SRI multi-entries, binary input). It does not mention error conditions or limits, but these are minor given the extensive guidance and the presence of structured schemas. Overall, an agent has enough context to invoke this tool correctly in typical scenarios.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema coverage is 100%, so every parameter already has a description. The tool description enriches this by explaining the interaction between operation and expected (omission logic), the shape-based recognition of expected formats, the meaning of SRI, and the rationale for inputEncoding. This adds genuine value beyond the schema's individual property descriptions, making the parameter semantics clearer and more actionable.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description opens with a precise statement of both capabilities: 'Generate a cryptographic digest of a value, or verify a value against an expected digest.' It names the verb (generate/verify), the resource (value), and clearly distinguishes the two operations. This is far from a tautology and immediately separates it from sibling tools like encode or generate_id.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description provides strong contextual guidance: it explains the default operation resolution, warns against using md5/sha1 for security, and gives a canonical use case ('matching a download against a vendor-published checksum or a lockfile integrity entry'). It does not explicitly name alternatives or exclusions, but the unique function makes that less critical. The 'compare is timing-safe and avoids manual string equality checks' also informs when to use this tool over manual comparison.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
Tool Schema Changelog
Recent tool additions, removals, and schema changes observed during successful MCP inspections.
4 tool updates
v2.3.1- Changed
toolkit_encode_value7 fields changed- changed
Input schema / properties / operation / descriptionPrevious value: -"\"encode\" transforms text into the encoding; \"decode\" recovers text from an encoded value."New value: +"\"encode\" transforms text into the encoding; \"decode\" recovers the bytes from an encoded value." - added
Input schema / properties / outputEncodingAdded value: +{ + "description": "Decode only: how the recovered bytes are returned. utf8 (used when omitted) returns text and fails when the bytes are not valid UTF-8; hex and base64 return the raw bytes re-encoded, losslessly. Rejected when operation is \"encode\".", + "enum": [ + "utf8", + "hex", + "base64" + ], + "type": "string" +} - changed
Input schema / properties / value / descriptionPrevious value: -"The value to transform — raw text for encode, an encoded string for decode."New value: +"The value to transform — raw text for encode, an encoded string for decode. Whitespace is ignored when decoding hex, base64, or base64url; a url value is taken literally." - changed
Output schema / properties / error / properties / data / properties / reason / descriptionPrevious value: -"Machine-readable failure mode. Declared by this tool: `decode_failed`: operation is \"decode\" but value is malformed for the chosen encoding. Other values are possible when a failure originates below the handler."New value: +"Machine-readable failure mode. Declared by this tool: `decode_failed`: operation is \"decode\" but value is malformed for the chosen encoding. `decode_not_utf8`: operation is \"decode\", outputEncoding is utf8 (or omitted), and the decoded bytes are not valid UTF-8 text. `output_encoding_not_applicable`: operation is \"encode\" and outputEncoding was supplied; it selects how decoded bytes are returned. Other values are possible when a failure originates below the handler." - changed
Output schema / properties / error / properties / data / properties / reason / examplesPrevious value: -[ - "decode_failed" -]New value: +[ + "decode_failed", + "decode_not_utf8", + "output_encoding_not_applicable" +] - added
Output schema / properties / outputEncodingAdded value: +{ + "description": "How result renders the decoded bytes: utf8 text, hex, or base64. Present for operation \"decode\".", + "enum": [ + "utf8", + "hex", + "base64" + ], + "type": "string" +} - changed
Output schema / properties / result / descriptionPrevious value: -"The transformed value (encoded text, or the decoded original)."New value: +"The transformed value: encoded text for encode; for decode, the recovered bytes as UTF-8 text, hex, or base64 per outputEncoding."
- Changed
toolkit_generate_id1 field changed- changed
Output schema / properties / ids / descriptionPrevious value: -"The minted identifiers — exactly count of them, in mint order; for uuid_v7 and ulid that order is strictly increasing (sorted by creation)."New value: +"The minted identifiers — exactly count of them, in mint order; for uuid_v7 and ulid that order is strictly increasing (sorted by creation), with random gaps between ids minted in the same millisecond."
- Changed
toolkit_generate_qr4 fields changed- changed
Input schema / properties / data / descriptionPrevious value: -"The text or URL to encode. 2953 is the absolute ceiling (QR version 40, level L, byte mode); usable capacity drops at higher errorCorrection levels, so over-capacity data is rejected with a typed data_too_large error rather than a generic failure."New value: +"The text or URL to encode, stored as UTF-8. Capacity is counted in bytes: 2953 UTF-8 bytes is the absolute ceiling (QR version 40, level L, byte mode). The 2953-character limit here is only an upper bound, since a non-ASCII character takes 2–4 bytes. Usable capacity drops at higher errorCorrection levels, so over-capacity data is rejected with a typed data_too_large error rather than a generic failure." - changed
Input schema / properties / format / descriptionPrevious value: -"Output format: svg markup, png_base64 (raster bytes), or a terminal-renderable string."New value: +"Output format: svg markup, png_base64 (raster bytes), or terminal (plain Unicode half-blocks, drawn for a dark background)." - changed
Input schema / properties / scale / descriptionPrevious value: -"Pixels per module for raster (png_base64) output. Ignored for terminal. png_base64 also bounds the whole image at 2048 px per side, so a dense symbol or a wide margin admits a lower scale than 32."New value: +"Pixels per module for svg (its width and height) and png_base64. Ignored for terminal. png_base64 also bounds the whole image at 2048 px per side, so a dense symbol or a wide margin admits a lower scale than 32 there." - changed
Output schema / properties / content / descriptionPrevious value: -"The QR artifact: SVG markup, a terminal-renderable string, or base64 PNG bytes for png_base64."New value: +"The QR artifact: SVG markup, the terminal half-block grid (newline-separated rows), or base64 PNG bytes for png_base64."
- Changed
toolkit_hash_value13 fields changed- changed
Input schema / properties / algorithm / descriptionPrevious value: -"Digest algorithm. sha256 (default) or sha512 for security; md5/sha1 are checksum/compat only — not for security."New value: +"Digest algorithm. sha256 (default), sha384, or sha512 for security; md5/sha1 are checksum/compat only — not for security." - changed
Input schema / properties / algorithm / enumPrevious value: -[ - "sha256", - "sha512", - "sha1", - "md5" -]New value: +[ + "sha256", + "sha384", + "sha512", + "sha1", + "md5" +] - added
Input schema / properties / digestEncodingAdded value: +{ + "default": "hex", + "description": "Form of the generated digest: lowercase hex (default), standard base64, or sri (<algorithm>-<base64>, sha256/sha384/sha512 only). Applies to operation \"generate\".", + "enum": [ + "hex", + "base64", + "sri" + ], + "type": "string" +} - changed
Input schema / properties / expected / descriptionPrevious value: -"The expected lowercase-hex digest to compare against. Required when operation is \"compare\"."New value: +"The digest to compare against, as hex (any case), standard base64, or SRI (<algorithm>-<base64>); the form is recognized from its shape at the algorithm's digest length, and a string of only hex digits is always read as hex. An SRI value may carry several space-separated entries: entries for other algorithms are skipped, and it matches when any entry for algorithm matches. Supplying it with operation omitted runs a compare; it is rejected with operation \"generate\"." - changed
Input schema / properties / inputEncoding / descriptionPrevious value: -"How value (and expected's pre-image, when relevant) is decoded before hashing: utf8 text, hex, or base64."New value: +"How value is decoded before hashing: utf8 text, hex, or base64." - removed
Input schema / properties / operation / defaultRemoved value: -"generate" - changed
Input schema / properties / operation / descriptionPrevious value: -"\"generate\" produces a digest; \"compare\" constant-time-checks value against expected."New value: +"\"generate\" produces a digest; \"compare\" constant-time-checks value against expected. When omitted, resolves to \"compare\" if expected is supplied and \"generate\" otherwise." - changed
Output schema / properties / algorithm / enumPrevious value: -[ - "sha256", - "sha512", - "sha1", - "md5" -]New value: +[ + "sha256", + "sha384", + "sha512", + "sha1", + "md5" +] - changed
Output schema / properties / digest / descriptionPrevious value: -"Lowercase-hex digest of value. Present for operation \"generate\"."New value: +"Digest of value in the requested digestEncoding: lowercase hex, base64, or <algorithm>-<base64>. Present for operation \"generate\"." - changed
Output schema / properties / error / properties / data / properties / reason / descriptionPrevious value: -"Machine-readable failure mode. Declared by this tool: `missing_expected`: operation is \"compare\" but no expected digest was supplied. `expected_length_mismatch`: The expected digest length does not match the algorithm, so compare would always fail. `invalid_input_encoding`: value is not valid for the declared inputEncoding (e.g. non-hex characters with inputEncoding \"hex\"). Other values are possible when a failure originates below the handler."New value: +"Machine-readable failure mode. Declared by this tool: `missing_expected`: operation is \"compare\" but no expected digest was supplied. `expected_without_compare`: operation is \"generate\" but an expected digest was also supplied, so it would be ignored. `expected_malformed`: expected is not a hex, standard base64, or sha256/sha384/sha512 SRI digest, or an SRI value holds a token that is not an SRI entry. `expected_length_mismatch`: expected is a recognized digest form but its length does not match the algorithm, so compare would always fail. `expected_algorithm_mismatch`: expected is SRI and none of its entries names the chosen algorithm. `sri_unsupported_algorithm`: digestEncoding is \"sri\" and algorithm is md5 or sha1, which SRI does not define. `invalid_input_encoding`: value is not valid for the declared inputEncoding (e.g. non-hex characters with inputEncoding \"hex\"). Other values are possible when a failure originates below the handler." - changed
Output schema / properties / error / properties / data / properties / reason / examplesPrevious value: -[ - "missing_expected", - "expected_length_mismatch", - "invalid_input_encoding" -]New value: +[ + "missing_expected", + "expected_without_compare", + "expected_malformed", + "expected_length_mismatch", + "expected_algorithm_mismatch", + "sri_unsupported_algorithm", + "invalid_input_encoding" +] - changed
Output schema / properties / lengthInBytes / descriptionPrevious value: -"Digest size in bytes (32 for sha256, 64 for sha512, 20 for sha1, 16 for md5). Present for \"generate\"."New value: +"Digest size in bytes (32 for sha256, 48 for sha384, 64 for sha512, 20 for sha1, 16 for md5). Present for \"generate\"." - changed
Output schema / properties / operation / descriptionPrevious value: -"The operation performed."New value: +"The operation performed, after resolving an omitted operation."
5 tool updates
v2.2.2- Changed
toolkit_encode_value6 fields changed- changed
Input schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Input schema / additionalPropertiesAdded value: +false - changed
Output schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Output schema / anyOfAdded value: +[ + { + "not": { + "required": [ + "error" + ] + }, + "required": [ + "encoding", + "operation", + "result" + ] + }, + { + "required": [ + "error" + ] + } +] - added
Output schema / properties / errorAdded value: +{ + "additionalProperties": {}, + "description": "Present when the call failed. Absent on success.", + "properties": { + "code": { + "description": "JSON-RPC error code for this failure.", + "maximum": 9007199254740991, + "minimum": -9007199254740991, + "type": "integer" + }, + "data": { + "additionalProperties": {}, + "properties": { + "reason": { + "description": "Machine-readable failure mode. Declared by this tool: `decode_failed`: operation is \"decode\" but value is malformed for the chosen encoding. Other values are possible when a failure originates below the handler.", + "examples": [ + "decode_failed" + ], + "type": "string" + }, + "recovery": { + "additionalProperties": {}, + "description": "Actionable next step for the caller.", + "properties": { + "hint": { + "type": "string" + } + }, + "required": [ + "hint" + ], + "type": "object" + }, + "retryable": { + "description": "Whether retrying may succeed.", + "type": "boolean" + } + }, + "type": "object" + }, + "message": { + "description": "Human-readable description of what went wrong.", + "type": "string" + } + }, + "required": [ + "code", + "message" + ], + "type": "object" +} - removed
Output schema / requiredRemoved value: -[ - "encoding", - "operation", - "result" -]
- Changed
toolkit_generate_id6 fields changed- changed
Input schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Input schema / additionalPropertiesAdded value: +false - changed
Output schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Output schema / anyOfAdded value: +[ + { + "not": { + "required": [ + "error" + ] + }, + "required": [ + "type", + "ids", + "count" + ] + }, + { + "required": [ + "error" + ] + } +] - added
Output schema / properties / errorAdded value: +{ + "additionalProperties": {}, + "description": "Present when the call failed. Absent on success.", + "properties": { + "code": { + "description": "JSON-RPC error code for this failure.", + "maximum": 9007199254740991, + "minimum": -9007199254740991, + "type": "integer" + }, + "data": { + "additionalProperties": {}, + "properties": { + "reason": { + "description": "Machine-readable failure mode.", + "type": "string" + }, + "recovery": { + "additionalProperties": {}, + "description": "Actionable next step for the caller.", + "properties": { + "hint": { + "type": "string" + } + }, + "required": [ + "hint" + ], + "type": "object" + }, + "retryable": { + "description": "Whether retrying may succeed.", + "type": "boolean" + } + }, + "type": "object" + }, + "message": { + "description": "Human-readable description of what went wrong.", + "type": "string" + } + }, + "required": [ + "code", + "message" + ], + "type": "object" +} - removed
Output schema / requiredRemoved value: -[ - "type", - "ids", - "count" -]
- Changed
toolkit_generate_qr6 fields changed- changed
Input schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Input schema / additionalPropertiesAdded value: +false - changed
Output schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Output schema / anyOfAdded value: +[ + { + "not": { + "required": [ + "error" + ] + }, + "required": [ + "format", + "content", + "version" + ] + }, + { + "required": [ + "error" + ] + } +] - added
Output schema / properties / errorAdded value: +{ + "additionalProperties": {}, + "description": "Present when the call failed. Absent on success.", + "properties": { + "code": { + "description": "JSON-RPC error code for this failure.", + "maximum": 9007199254740991, + "minimum": -9007199254740991, + "type": "integer" + }, + "data": { + "additionalProperties": {}, + "properties": { + "reason": { + "description": "Machine-readable failure mode. Declared by this tool: `data_too_large`: data exceeds the QR capacity for the chosen errorCorrection level and encoding mode. `raster_too_large`: format is png_base64 and (modules + 2 × margin) × scale exceeds the pixel budget. Other values are possible when a failure originates below the handler.", + "examples": [ + "data_too_large", + "raster_too_large" + ], + "type": "string" + }, + "recovery": { + "additionalProperties": {}, + "description": "Actionable next step for the caller.", + "properties": { + "hint": { + "type": "string" + } + }, + "required": [ + "hint" + ], + "type": "object" + }, + "retryable": { + "description": "Whether retrying may succeed.", + "type": "boolean" + } + }, + "type": "object" + }, + "message": { + "description": "Human-readable description of what went wrong.", + "type": "string" + } + }, + "required": [ + "code", + "message" + ], + "type": "object" +} - removed
Output schema / requiredRemoved value: -[ - "format", - "content", - "version" -]
- Changed
toolkit_geolocate_ip6 fields changed- changed
Input schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Input schema / additionalPropertiesAdded value: +false - changed
Output schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Output schema / anyOfAdded value: +[ + { + "not": { + "required": [ + "error" + ] + }, + "required": [ + "target", + "resolvedIp", + "source" + ] + }, + { + "required": [ + "error" + ] + } +] - added
Output schema / properties / errorAdded value: +{ + "additionalProperties": {}, + "description": "Present when the call failed. Absent on success.", + "properties": { + "code": { + "description": "JSON-RPC error code for this failure.", + "maximum": 9007199254740991, + "minimum": -9007199254740991, + "type": "integer" + }, + "data": { + "additionalProperties": {}, + "properties": { + "reason": { + "description": "Machine-readable failure mode. Declared by this tool: `unresolvable_host`: A hostname target failed DNS resolution. `private_target`: The target resolves to a private/reserved IP with no public geolocation. Other values are possible when a failure originates below the handler.", + "examples": [ + "unresolvable_host", + "private_target" + ], + "type": "string" + }, + "recovery": { + "additionalProperties": {}, + "description": "Actionable next step for the caller.", + "properties": { + "hint": { + "type": "string" + } + }, + "required": [ + "hint" + ], + "type": "object" + }, + "retryable": { + "description": "Whether retrying may succeed.", + "type": "boolean" + } + }, + "type": "object" + }, + "message": { + "description": "Human-readable description of what went wrong.", + "type": "string" + } + }, + "required": [ + "code", + "message" + ], + "type": "object" +} - removed
Output schema / requiredRemoved value: -[ - "target", - "resolvedIp", - "source" -]
- Changed
toolkit_hash_value6 fields changed- changed
Input schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Input schema / additionalPropertiesAdded value: +false - changed
Output schema / $schemaPrevious value: -"http://json-schema.org/draft-07/schema#"New value: +"https://json-schema.org/draft/2020-12/schema" - added
Output schema / anyOfAdded value: +[ + { + "not": { + "required": [ + "error" + ] + }, + "required": [ + "algorithm", + "operation" + ] + }, + { + "required": [ + "error" + ] + } +] - added
Output schema / properties / errorAdded value: +{ + "additionalProperties": {}, + "description": "Present when the call failed. Absent on success.", + "properties": { + "code": { + "description": "JSON-RPC error code for this failure.", + "maximum": 9007199254740991, + "minimum": -9007199254740991, + "type": "integer" + }, + "data": { + "additionalProperties": {}, + "properties": { + "reason": { + "description": "Machine-readable failure mode. Declared by this tool: `missing_expected`: operation is \"compare\" but no expected digest was supplied. `expected_length_mismatch`: The expected digest length does not match the algorithm, so compare would always fail. `invalid_input_encoding`: value is not valid for the declared inputEncoding (e.g. non-hex characters with inputEncoding \"hex\"). Other values are possible when a failure originates below the handler.", + "examples": [ + "missing_expected", + "expected_length_mismatch", + "invalid_input_encoding" + ], + "type": "string" + }, + "recovery": { + "additionalProperties": {}, + "description": "Actionable next step for the caller.", + "properties": { + "hint": { + "type": "string" + } + }, + "required": [ + "hint" + ], + "type": "object" + }, + "retryable": { + "description": "Whether retrying may succeed.", + "type": "boolean" + } + }, + "type": "object" + }, + "message": { + "description": "Human-readable description of what went wrong.", + "type": "string" + } + }, + "required": [ + "code", + "message" + ], + "type": "object" +} - removed
Output schema / requiredRemoved value: -[ - "algorithm", - "operation" -]
2 tool updates
v2.2.0- Changed
toolkit_generate_qr1 field changed- changed
Input schema / properties / scale / descriptionPrevious value: -"Pixels per module for raster (png_base64) output. Ignored for terminal."New value: +"Pixels per module for raster (png_base64) output. Ignored for terminal. png_base64 also bounds the whole image at 2048 px per side, so a dense symbol or a wide margin admits a lower scale than 32."
- Changed
toolkit_geolocate_ip10 fields changed- added
Output schema / properties / asn / maxLengthAdded value: +256 - added
Output schema / properties / city / maxLengthAdded value: +256 - added
Output schema / properties / country / maxLengthAdded value: +256 - added
Output schema / properties / countryCode / maxLengthAdded value: +256 - added
Output schema / properties / hostingAdded value: +{ + "description": "True when the address belongs to a hosting or datacenter network, so the location is a facility rather than a person. Absent when unreported.", + "type": "boolean" +} - added
Output schema / properties / mobileAdded value: +{ + "description": "True when the address belongs to a mobile carrier network, where NAT can place the location far from the device. Absent when unreported.", + "type": "boolean" +} - added
Output schema / properties / org / maxLengthAdded value: +256 - added
Output schema / properties / proxyAdded value: +{ + "description": "True when the address is a known proxy, VPN, or Tor exit — the location describes the exit node, not the user. Absent when the provider does not report it.", + "type": "boolean" +} - added
Output schema / properties / region / maxLengthAdded value: +256 - added
Output schema / properties / timezone / maxLengthAdded value: +256
2 tool updates
v2.0.1- Changed
toolkit_generate_id1 field changed- changed
Output schema / properties / ids / descriptionPrevious value: -"The minted identifiers — exactly count of them, in mint order."New value: +"The minted identifiers — exactly count of them, in mint order; for uuid_v7 and ulid that order is strictly increasing (sorted by creation)."
- Changed
toolkit_generate_qr1 field changed- changed
Input schema / properties / data / descriptionPrevious value: -"The text or URL to encode. Capped at 2953 bytes — the absolute QR capacity (version 40, level L)."New value: +"The text or URL to encode. 2953 is the absolute ceiling (QR version 40, level L, byte mode); usable capacity drops at higher errorCorrection levels, so over-capacity data is rejected with a typed data_too_large error rather than a generic failure."
21 tool updates
v2.0.0- Removed
checkConnectivity - Removed
clearGeoCache - Removed
compareHashes - Removed
convertTimezone - Removed
generateQRCode - Removed
generateUUID - Removed
geolocate - Removed
getCurrentTime - Removed
getLoadAverage - Removed
getNetworkInterfaces - Removed
getPublicIP - Removed
getSystemInfo - Removed
hashData - Removed
listTimezones - Removed
pingHost - Added
toolkit_encode_value - Added
toolkit_generate_id - Added
toolkit_generate_qr - Added
toolkit_geolocate_ip - Added
toolkit_hash_value - Removed
traceroute
16 tool updates
- First observed
checkConnectivity - First observed
clearGeoCache - First observed
compareHashes - First observed
convertTimezone - First observed
generateQRCode - First observed
generateUUID - First observed
geolocate - First observed
getCurrentTime - First observed
getLoadAverage - First observed
getNetworkInterfaces - First observed
getPublicIP - First observed
getSystemInfo - First observed
hashData - First observed
listTimezones - First observed
pingHost - First observed
traceroute
TDQS
Scored across 5 tools
Each tool serves a clearly distinct purpose: QR generation, hashing, ID generation, encoding/decoding, and IP geolocation. There is no overlap or possibility of confusion between tools. Descriptions are detailed and unambiguous.
All tools use the consistent 'toolkit_' prefix with snake_case names following a verb_noun pattern (generate_qr, hash_value, generate_id, encode_value, geolocate_ip). The naming is predictable and uniform across the entire set.
With 5 tools, the server is well-scoped for a general-purpose toolkit. Each tool is substantial and earns its place, covering a broad range of utility functions without redundancy. The count is neither thin nor bloated.
The toolkit covers a solid variety of utility categories (generation, hashing, encoding, geolocation), but lacks common text/data manipulation features like string transformation or JSON handling. The core workflows within each tool are complete, with no dead ends, though the breadth could be broader for a general toolkit.
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