MCPfinder Server
Buscador de MCP 🔧🤖 ( @mcpfinder/server )
Descubra la forma más sencilla de potenciar sus agentes de codificación e IA con MCP: una API para IA. MCPfinder permite que los modelos de lenguaje busquen e instalen nuevas capacidades bajo demanda a través de aplicaciones cliente compatibles con el protocolo MCP. No requiere codificación ni configuración manual.
App Store para agentes
Los usuarios pueden solicitar herramientas que la IA aún no posee, o bien, la IA puede expandir sus propias capacidades de forma autónoma al descubrir servidores MCP relevantes. Desde generadores de código y analizadores de datos hasta herramientas de conocimiento especializadas, MCPfinder actúa como un mapa y una caja de herramientas para la IA, transformando modelos estáticos en agentes en constante evolución que buscan nuevas capacidades y se vuelven más potentes con cada interacción.
Herramientas plug-and-play para LLM

Esta aplicación Node.js implementa un servidor MCP (Protocolo de Contexto de Modelo) diseñado para ejecutarse localmente junto con clientes MCP (como Cursor, Claude Desktop y Windsurf). Proporciona herramientas que permiten que la IA del cliente interactúe con el ecosistema MCP.
En concreto, permite al asistente de IA:
Descubra los servidores MCP disponibles registrados en el registro central MCPfinder (a través de
search_mcp_servers).Recupere detalles sobre servidores específicos (a través de
get_mcp_server_details).Administre el archivo de configuración del servidor MCP local de la aplicación cliente (agregar/actualizar mediante
add_mcp_server_config, eliminar medianteremove_mcp_server_config).
Nota para los agentes de IA: Este servidor es la interfaz principal para encontrar y habilitar nuevas herramientas y capacidades solicitadas por el usuario si aún no están disponibles en el conjunto de herramientas MCP actual. Utilice primero search_mcp_servers cuando el usuario le solicite una capacidad que no posee.
Inicio rápido
Ejecute en su terminal la herramienta de configuración interactiva para actualizar automáticamente el archivo de configuración de MCP:
npx -y @mcpfinder/server installEste comando le guía en la selección de su cliente (Cursor, VS Code, Claude, etc.) y añade la entrada necesaria mcpfinder al archivo de configuración correcto (p. ej., ~/.cursor/mcp.json ). Consulte "Ejecutar desde el código fuente" y "Comandos y opciones" para obtener más información si trabaja directamente con el código fuente.
Related MCP server: MCP Server
Configuración manual
Para configurar manualmente un cliente MCP, debe crear o modificar su archivo de configuración JSON para incluir una entrada para mcpfinder .
Estructura del archivo de configuración:
{
"mcpServers": {
"mcpfinder": {
"command": "npx",
"args": [
"-y",
"@mcpfinder/server"
]
},
}
}Nota: Para Visual Studio Code ( settings.json ), la clave de nivel superior para las configuraciones de MCP debe ser servers en lugar de mcpServers .
Corriendo desde la fuente
Clonar este repositorio, por ejemplo,
git clone https://github.com/mcpfinder/serverEjecute
node index.jspara el modo Stdio onode index.js --httppara el modo HTTP.
Comandos y opciones
Al ejecutarse desde la fuente ( node index.js ), el script se puede invocar de varias maneras:
Ejecución del servidor (comportamiento predeterminado): si no se especifica ningún comando, index.js inicia el servidor MCP.
Modo Stdio (predeterminado):
node index.jsModo HTTP:
node index.js --http--port <number>: especifica el puerto para el modo HTTP (predeterminado: 6181 o variable de entornoMCP_PORT).--api-url <url>: especifica la URL de la API de registro de MCPfinder utilizada por las herramientas (predeterminado:https://mcpfinder.devo la variable de entornoMCPFINDER_API_URL).
Ejecución de comandos:
install: ejecuta la configuración interactiva para configurar una aplicación cliente.node index.js installregister: para que los editores de servidores registren su paquete de servidor MCP con el registro MCPFinder.node index.js register
Obtener ayuda:
--help: Muestra el mensaje de ayuda detallando comandos y opciones.node index.js --help
El servidor utiliza las siguientes variables de entorno:
MCPFINDER_API_URL: URL base de la API de registro de MCPfinder. Su valor predeterminado eshttps://mcpfinder.dev.MCP_PORT(solo modo HTTP): El número de puerto donde el servidor escuchará. El valor predeterminado es6181.
Herramientas proporcionadas
Este servidor MCP expone las siguientes herramientas al asistente de IA conectado:
1. search_mcp_servers
Descripción: Busca servidores MCP disponibles en el Registro de MCPfinder. Esta es la herramienta principal para descubrir y acceder a nuevas herramientas, métodos, funciones o capacidades.
Esquema de entrada:
query(cadena, opcional): palabras clave para buscar en el nombre o la descripción de la herramienta.tag(cadena, opcional): etiqueta específica por la que filtrar.
Salida: Una lista de resúmenes de servidor coincidentes (server_id, nombre, descripción, URL, etiquetas). El siguiente paso habitual es usar
get_mcp_server_detailspara obtener más información o directamenteadd_mcp_server_configpara instalar uno.
⚠️ Nota: El registro contiene actualmente cientos de servidores que pueden ejecutarse localmente con npx en modo stdio sin requerir variables de entorno para su funcionamiento básico. En futuras actualizaciones, se ampliará la compatibilidad para incluir una gama más amplia de servidores, incluyendo opciones de pago y comerciales que requieren claves de entorno.
2. get_mcp_server_details
Descripción: Obtiene información detallada sobre un servidor MCP específico del registro, incluyendo su manifiesto completo y sugerencias básicas de instalación (comandos, variables de entorno). Úselo después de encontrar un server_id mediante
search_mcp_serverspara obtener más información antes de añadirlo.Esquema de entrada:
id(cadena, obligatoria ): el server_id único de MCPfinder obtenido desearch_mcp_servers.
Salida: El manifiesto detallado del servidor y las sugerencias de instalación. El siguiente paso es usar
add_mcp_server_configpara instalar el servidor.
3. add_mcp_server_config
Descripción: Agrega o actualiza la configuración de un servidor MCP específico en el archivo de configuración local de la aplicación cliente
client_typep. ej.,~/.cursor/mcp.jsonde Cursor). Debe proporcionar client_type oconfig_file_path.Esquema de entrada:
server_id(cadena, obligatoria ): un identificador único para la entrada de configuración del servidor (el ID de MCPfinder obtenido desearch_mcp_servers).client_type(cadena, opcional): El tipo de aplicación cliente (los tipos conocidos se determinan dinámicamente, por ejemplo:'cursor','claude','windsurf'). Se excluye mutuamente conconfig_file_path. Úselo para instalaciones de cliente estándar.config_file_path(cadena, opcional): Una ruta absoluta o una ruta que empieza por~(directorio principal) al archivo de configuración JSON de destino (p. ej.,/path/to/custom/mcp.jsono~/custom/mcp.json). Se excluye mutuamente conclient_type. Úselo para ubicaciones no estándar o clientes personalizados.mcp_definition(objeto, opcional): Define la configuración del servidor. Si se omite o faltan algunos campos, se obtendrán los valores predeterminados del Registro de MCPfinder según elserver_id.command(matriz de cadenas, opcional): El comando y sus argumentos (p. ej.,["npx", "-y", "my-mcp-package"]). Si se omite, o si solo se proporcionaenv/workingDirectorya continuación, el comando predeterminado se obtiene del registro.env(objeto, opcional): Variables de entorno (p. ej.,{"API_KEY": "YOUR_KEY"}). Se fusiona con los valores predeterminados si se omitecommand.workingDirectory(cadena, opcional): El directorio de trabajo del proceso del servidor. Se fusiona con los valores predeterminados si se omitecommand.
Salida: Un mensaje de éxito o error.
Nota: La clave utilizada para almacenar la configuración de este servidor en el archivo JSON (en
mcpServersoservers) se genera automáticamente a partir de la URL registrada del servidor (obtenida medianteserver_id). Elserver_idproporcionado se utiliza como alternativa si no se puede obtener una clave adecuada de la URL. La herramienta detecta automáticamente si se debe usarmcpServersoserverscomo clave de nivel superior según la estructura de archivos existente, y el valor predeterminado esmcpServers.
4. remove_mcp_server_config
Descripción: Elimina la configuración de un servidor MCP específico del archivo de configuración local de la aplicación cliente. Debe proporcionar client_type o
config_file_path. Elserver_idproporcionado debe coincidir con el nombre de la clave de configuración utilizada al agregar el servidor (que normalmente se deriva de la URL del servidor; consulte la notaclient_type``add_mcp_server_config).Esquema de entrada:
server_id(cadena, obligatoria ): el identificador único (nombre de la clave de configuración) de la entrada de configuración del servidor que se eliminará.client_type(cadena, opcional): El tipo de aplicación cliente (los tipos conocidos se determinan dinámicamente, por ejemplo:'cursor','claude','windsurf'). Se excluye mutuamente conconfig_file_path.config_file_path(cadena, opcional): Ruta absoluta o ruta que empieza por~(directorio de inicio) al archivo de configuración JSON de destino. Mutuamente excluyente conclient_type.
Salida: Un mensaje de éxito o error que indica si se encontró y eliminó la entrada.
Consideraciones de seguridad
Las herramientas add_mcp_server_config y remove_mcp_server_config modifican archivos en el sistema local del usuario. Este servidor no realiza comprobaciones de permisos; depende completamente del cliente que realiza la llamada para la aplicación de la seguridad.
Contribuyendo
Para contribuciones, comuníquese con: mcpfinder(punto}dev[at}domainsbyproxy{punto]com
Licencia
Este proyecto está licenciado bajo la Licencia Pública General Affero GNU v3.0 - consulte el archivo LICENCIA para obtener más detalles.
Significa que puedes usarlo (incluso con fines comerciales), modificarlo y compartirlo libremente. Sin embargo, si ejecutas una versión modificada, también estás obligado a compartirla públicamente.
Available Tools
5 toolsadd_mcp_server_configA
Enables capabilities (e.g., tools, features) from a specific MCP server/tool. Add or update its configuration in the client application (e.g., Cursor, Claude Desktop, Windsurf, Claude Code, Codex) using server_id obtained from search_mcp_servers results. Provide EITHER client_type (see available options) OR config_file_path to specify the target config file.
| Name | Required | Description | Default |
|---|---|---|---|
| client_type | No | The type of client application (currently supported: 'cursor', 'claude', 'windsurf', 'claude-code', 'codex'). Mutually exclusive with config_file_path. | |
| config_file_path | No | Absolute path or path starting with '~' to the config file. Mutually exclusive with client_type. | |
| server_id | Yes | A unique MCPFinder ID of the MCP server received from search_mcp_servers. | |
| mcp_definition | No | The MCP server definition object. Optional. | |
| claude_path | No | Full path to claude executable (only used for claude-code client_type when claude command is not in PATH). |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations provided, the description carries the full burden of behavioral disclosure. It does reveal that this tool performs configuration changes ('add or update its configuration'), which implies mutation/write operations, but doesn't specify whether this requires special permissions, whether changes are reversible, or what happens on success/failure. It mentions 'defaults are fetched/merged' for the command parameter, which adds useful context about default behavior.
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 efficiently structured with three sentences that each serve distinct purposes: stating the tool's function, specifying prerequisites, and clarifying parameter usage. There's no redundant information, and key guidance is front-loaded in the first sentence.
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 configuration mutation tool with 5 parameters (including nested objects) and no annotations or output schema, the description provides adequate but incomplete context. It covers the basic purpose and parameter relationships well, but lacks details about behavioral outcomes, error conditions, or what constitutes successful configuration. Given the complexity, more complete behavioral disclosure would be beneficial.
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 description coverage is 100%, so the schema already documents all 5 parameters thoroughly. The description adds some value by explaining the mutual exclusivity between client_type and config_file_path and clarifying that server_id comes from search_mcp_servers, but doesn't provide additional semantic context beyond what's in the schema descriptions. This meets the baseline for high schema coverage.
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 clearly states the tool's purpose with specific verbs ('enables', 'add or update') and resources ('capabilities from a specific MCP server/tool', 'configuration in the client application'). It distinguishes this from sibling tools like search_mcp_servers (which finds servers) and remove_mcp_server_config (which removes configurations).
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 explicit guidance on when to use this tool: it specifies that server_id should be 'obtained from search_mcp_servers results' and provides clear alternatives between client_type and config_file_path ('Provide EITHER client_type OR config_file_path'). This gives the agent concrete prerequisites and decision criteria.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
get_mcp_server_detailsA
Retrieves detailed information about a specific MCP server/tool from the registry, including its manifest and installation details. Use this after finding a tool with search_mcp_servers to get more information, or directly use add_mcp_server_config to install it.
| Name | Required | Description | Default |
|---|---|---|---|
| id | Yes | The unique MCPFinder ID of the MCP server received from search_mcp_servers. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full burden. It describes the tool's purpose and usage context well, but lacks details on behavioral traits like error handling, response format, or any limitations (e.g., rate limits, authentication needs). The description doesn't contradict any annotations, but could provide more operational context.
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 two sentences that are front-loaded with the core purpose and efficiently provide usage guidelines. Every sentence adds value without redundancy, making it appropriately sized and well-structured for quick understanding.
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 low complexity (1 parameter, no output schema, no annotations), the description is largely complete for its purpose and usage. However, without annotations or an output schema, it could benefit from more details on what the retrieved information includes or behavioral aspects, leaving a minor gap in full contextual understanding.
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?
The schema description coverage is 100%, with the single parameter 'id' fully documented in the schema. The description does not add any parameter-specific details beyond what the schema provides (e.g., format examples or constraints), so it meets the baseline for high schema coverage without compensating value.
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 clearly states the specific action ('Retrieves detailed information') and resource ('about a specific MCP server/tool from the registry'), including what information is retrieved ('manifest and installation details'). It distinguishes from sibling tools by specifying this is for getting detailed information after searching, not for searching, adding, removing, or streaming.
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 explicitly provides when to use this tool ('after finding a tool with search_mcp_servers to get more information') and when to use an alternative ('or directly use add_mcp_server_config to install it'). This gives clear guidance on the tool's role in the workflow relative to its siblings.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
remove_mcp_server_configA
Removes the configuration for a specific MCP server/tool from the client application (e.g., Cursor, Claude Desktop, Windsurf, Claude Code, Codex). Provide EITHER client_type (see available options) OR config_file_path to specify the target config file.
| Name | Required | Description | Default |
|---|---|---|---|
| client_type | No | The type of client application (currently supported: 'cursor', 'claude', 'windsurf', 'claude-code', 'codex'). Mutually exclusive with config_file_path. | |
| config_file_path | No | Absolute path or path starting with '~' to the config file. Mutually exclusive with client_type. | |
| server_id | Yes | The unique MCP server identifier (config key name) of the server configuration entry to remove. | |
| claude_path | No | Full path to claude executable (only used for claude-code client_type when claude command is not in PATH). |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations provided, the description carries the full burden of behavioral disclosure. It clearly indicates this is a destructive operation ('Removes'), which is essential. However, it doesn't disclose important behavioral traits like whether the removal is permanent/reversible, what permissions are required, whether it affects running instances, or what happens if the specified server_id doesn't exist. The description provides basic operational context but lacks comprehensive behavioral details.
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 efficiently structured in two sentences: the first states the core purpose, the second provides crucial parameter guidance. Every word earns its place, with no redundancy or unnecessary elaboration. The information is front-loaded with the primary action immediately clear.
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 destructive operation tool with 4 parameters, no annotations, and no output schema, the description provides adequate but incomplete coverage. It clearly states the destructive nature and parameter relationships, but lacks information about what happens after removal (success/failure indicators), error conditions, or system impacts. The description covers the basics but leaves important contextual gaps for a mutation tool.
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?
With 100% schema description coverage, the baseline is 3 even without parameter details in the description. The description adds some value by clarifying the exclusive relationship between client_type and config_file_path ('Provide EITHER... OR...') and providing context about client applications, but doesn't significantly enhance understanding beyond what the comprehensive schema descriptions already provide for all 4 parameters.
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 clearly states the specific action ('Removes') and resource ('configuration for a specific MCP server/tool from the client application'), distinguishing it from sibling tools like add_mcp_server_config (adds), get_mcp_server_details (reads), search_mcp_servers (searches), and stream_mcp_events (streams). The description explicitly identifies what gets removed (server configuration) and from where (client applications).
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 context about when to use this tool (to remove a specific MCP server configuration) and specifies the exclusive parameter options (client_type OR config_file_path). However, it doesn't explicitly state when NOT to use it or mention alternatives like modifying instead of removing, or which sibling tools might be complementary (e.g., using get_mcp_server_details first to verify what to remove).
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
search_mcp_serversA
This is the primary tool for discovering and accessing new tools, methods, features, or capabilities. If a user asks for a tool, method, feature, or capability that you do not currently have, you MUST use this tool to search for it in the MCP Finder registry. For example, if a user asks for a browser tool, OCR, filesystem access, PDF parsing, or any other capability not present in your current toolset, use this tool to search by relevant keywords. This is the required first step to expand your available tools.
| Name | Required | Description | Default |
|---|---|---|---|
| query | No | Keywords to search for in tool name or description. | |
| tag | No | Specific tag to filter by. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations provided, the description carries full burden for behavioral disclosure. It effectively communicates that this is a discovery/search operation (not a mutation), establishes it as a mandatory first step for capability expansion, and provides practical examples of use cases. However, it doesn't mention potential limitations like rate limits, authentication requirements, or what happens when no results are found.
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 efficiently structured with three sentences that each serve distinct purposes: stating the primary function, providing mandatory usage rules with examples, and reinforcing it as the required first step. There's no wasted text, and the most critical information (the MUST directive) is front-loaded in the second sentence.
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 search tool with 2 parameters, 100% schema coverage, and no output schema, the description provides strong contextual completeness. It clearly explains the tool's role in the MCP ecosystem, when to use it, and provides concrete examples. The main gap is the lack of output information (what format results come in, pagination, etc.), but given this is a discovery tool, the description adequately covers its core purpose and usage.
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 description coverage is 100%, so the schema already documents both parameters (query for keywords, tag for filtering). The description doesn't add specific parameter semantics beyond what's in the schema, though it implies the 'query' parameter should contain relevant keywords for capabilities being sought. This meets the baseline expectation when schema coverage is complete.
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 clearly states the tool's purpose: 'discovering and accessing new tools, methods, features, or capabilities' through the MCP Finder registry. It specifies the verb 'search' and resource 'MCP servers', distinguishing it from sibling tools like add/remove/config operations. The description explicitly positions this as the primary discovery tool.
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 explicit usage guidelines: 'If a user asks for a tool, method, feature, or capability that you do not currently have, you MUST use this tool... This is the required first step to expand your available tools.' It gives concrete examples (browser tool, OCR, filesystem access) and distinguishes when to use this tool versus alternatives (when capabilities are missing from current toolset).
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
stream_mcp_eventsB
Monitor real-time events from the MCPfinder registry including new tool registrations, updates, and status changes. Returns a summary of events received during the monitoring period.
| Name | Required | Description | Default |
|---|---|---|---|
| duration | No | Duration in seconds to stream events (default: 30, max: 120). | |
| filter | No | Event types to filter: tool.registered, tool.updated, tool.status_changed. | |
| since | No | ISO timestamp to get events from (default: 1 hour ago). |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full burden of behavioral disclosure. It mentions monitoring and returning a summary, but lacks critical details: it doesn't specify if this is a blocking call, how events are delivered (e.g., streaming vs. batch), authentication requirements, rate limits, or error handling. For a real-time monitoring tool with zero annotation coverage, this is a significant gap in behavioral context.
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 appropriately sized with two clear sentences: one for the monitoring action and one for the return value. It's front-loaded with the core purpose and avoids unnecessary details. However, the second sentence could be slightly more specific about the summary format to enhance clarity without adding bulk.
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 complexity of real-time event monitoring, no annotations, and no output schema, the description is incomplete. It doesn't explain the return format (e.g., structure of the summary), how events are aggregated, or potential side effects (e.g., resource consumption during streaming). For a tool with behavioral implications and no structured output documentation, more context is needed.
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 description coverage is 100%, so the schema already fully documents all three parameters (duration, filter, since) with their types, defaults, and constraints. The description adds no parameter-specific information beyond what's in the schema, but doesn't need to compensate for gaps. Baseline 3 is appropriate when the schema handles all parameter documentation.
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 clearly states the tool's purpose with specific verbs ('monitor', 'returns') and resources ('real-time events from the MCPfinder registry'), explicitly listing event types ('new tool registrations, updates, and status changes'). It distinguishes itself from sibling tools (which are about server configuration management) by focusing on event monitoring rather than server operations.
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 no guidance on when to use this tool versus alternatives. While it implies real-time monitoring, it doesn't specify prerequisites (e.g., whether the registry must be active) or compare it to other event-related tools (none are listed among siblings). There's no mention of when not to use it or what scenarios it's best suited for.
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.
5 tool updates
- First observed
add_mcp_server_config - First observed
get_mcp_server_details - First observed
remove_mcp_server_config - First observed
search_mcp_servers - First observed
stream_mcp_events
TDQS
Scored across 5 tools
Each tool has a distinct purpose with clear boundaries: search discovers servers, get retrieves details, add/remove manage configurations, and stream monitors events. There is no overlap in functionality that would cause agent confusion.
All tools follow a consistent verb_noun pattern with snake_case (e.g., search_mcp_servers, add_mcp_server_config). The naming is predictable and follows the same convention throughout the set.
With 5 tools, this is well-scoped for an MCP server discovery and management system. Each tool serves a specific role in the workflow, and there are no extraneous or missing tools for the domain.
The toolset provides complete coverage for the MCP server management domain: discovery (search), inspection (get), configuration management (add/remove), and monitoring (stream). This covers the full lifecycle from finding to installing and maintaining MCP servers.
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