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Signalint

CI npm version M8ven Score

Signalint ist ein lokaler MCP-Server für JavaScript- und TypeScript-Diagnosen. Er führt Oxlint, TypeScript und optional Biome aus; cached unveränderte Prüfungen; gruppiert wiederholte Probleme; und warnt, wenn dieselbe Diagnose verschwindet und wiederholt zurückkehrt. Die Schleifenhistorie wird aus gültigen .signalint/session.jsonl-Einträgen wiederhergestellt, wenn der MCP-Server neu startet; fehlerhafte oder durch Absturz abgeschnittene Zeilen werden übersprungen.

Gelistet auf:

Beispiel für die Diagnosekomprimierung

Wenn ein Coding-Agent Diagnosen für ein Projekt anfordert, überfluten rohe Compiler- und Linter-Ausgaben schnell das Kontextfenster mit sich wiederholenden Fehlern über mehrere Dateien. Signalint normalisiert Probleme und gruppiert sie nach Ursache, bevor es eine begrenzte, nach Priorität geordnete Antwort zurückgibt:

Rohe Diagnosen (40 Probleme in 10 Dateien · 9.151 Bytes)

[
  {
    "issueId": "ts-01",
    "file": "src/file01.ts",
    "line": 10,
    "col": 5,
    "engine": "tsc",
    "rule": "TS2322",
    "severity": "error",
    "message": "Type 'string' is not assignable to type 'number' in fixture assignment 01.",
    "fixable": false
  },
  // ... 39 more raw normalized issues
]

Gruppierte Antwort an den Agenten (4 Cluster · 1.233 Bytes · 86,5 % Reduktion)

{
  "schemaVersion": "1.1",
  "status": "issues_found",
  "engines": {
    "oxlint": { "status": "ok" },
    "tsc": { "status": "ok" },
    "biome": { "status": "disabled" }
  },
  "totalIssues": 40,
  "clusters": [
    {
      "clusterId": "c1",
      "rootCauseSummary": "10 TS2322 issues across 10 files",
      "ruleIds": ["TS2322"],
      "issueCount": 10,
      "fileCount": 10,
      "priority": 1,
      "suggestedAction": "Review the shared cause of TS2322 across 10 files",
      "sampleIssueIds": ["ts-01", "ts-02"]
    },
    {
      "clusterId": "c2",
      "rootCauseSummary": "10 no-unused-vars issues across 10 files",
      "ruleIds": ["no-unused-vars"],
      "issueCount": 10,
      "fileCount": 10,
      "priority": 2,
      "suggestedAction": "Review the shared cause of no-unused-vars across 10 files",
      "sampleIssueIds": ["unused-01", "unused-02"]
    },
    {
      "clusterId": "c3",
      "rootCauseSummary": "10 eqeqeq issues across 10 files",
      "ruleIds": ["eqeqeq"],
      "issueCount": 10,
      "fileCount": 10,
      "priority": 5,
      "suggestedAction": "Apply structured fixes for eqeqeq across 10 files",
      "sampleIssueIds": ["eqeqeq-01", "eqeqeq-02"]
    },
    {
      "clusterId": "c4",
      "rootCauseSummary": "10 prefer-const issues across 10 files",
      "ruleIds": ["prefer-const"],
      "issueCount": 10,
      "fileCount": 10,
      "priority": 5,
      "suggestedAction": "Apply structured fixes for prefer-const across 10 files",
      "sampleIssueIds": ["const-01", "const-02"]
    }
  ],
  "truncated": false,
  "loopWarning": null
}

Der Agent erhält eine prägnante Zusammenfassung mit nach Priorität geordneten Clustern und Beispiel-Problem-IDs. Wenn für einen bestimmten Cluster oder ein Problem tiefere Details benötigt werden, ruft der Agent get_issue_detail auf, ohne den gesamten Projekt-Scan erneut auszuführen.

Related MCP server: agent-workspace-mcp

Anforderungen

  • Node.js 20.19 oder später in der Node-20-Linie, oder Node.js 22.12 oder später

  • Ein JavaScript- oder TypeScript-Projekt; TypeScript-Prüfungen erfordern eine tsconfig.json

  • pnpm 11.9.0 für die Quellentwicklung

Installation

Installieren Sie Signalint in dem Projekt, das es prüfen soll:

npm install --save-dev signalint-mcp

Führen Sie den Setup-Befehl aus dem Projektstamm aus. Er erkennt TypeScript-, Oxlint- und Biome-Konfiguration, schreibt signalint.config.json und bietet an, eine nahegelegene Claude Code-, Cursor-, Codex-CLI- oder Antigravity-MCP-Konfiguration zu aktualisieren:

npx signalint-mcp init

Wenn kein MCP-Client sicher ausgewählt werden kann, gibt der Befehl exakte Konfigurationsschnipsel zum Kopieren aus. TypeScript ist nur aktiviert, wenn eine tsconfig.json im Stammverzeichnis existiert; Biome ist aktiviert, wenn seine Konfiguration existiert; Oxlint ist der Fallback, wenn kein konfigurierter Linter erkannt wird. Um Signalint manuell zu konfigurieren, erstellen Sie signalint.config.json:

{
  "engines": {
    "oxlint": true,
    "tsc": true,
    "biome": false
  },
  "ignore": ["node_modules/**", "dist/**", ".signalint/**"],
  "timeoutsMs": {
    "oxlint": 30000,
    "tsc": 120000,
    "biome": 30000
  }
}

Claude Code Einrichtung

Führen Sie dies aus dem geprüften Projekt aus. Der Projektbereich schreibt eine teilbare .mcp.json:

claude mcp add --scope project signalint -- npx --no-install signalint-mcp
claude mcp get signalint

Unter nativem Windows umschließen Sie npx wie von Claude Code gefordert:

claude mcp add --scope project signalint -- cmd /c npx --no-install signalint-mcp
claude mcp get signalint

Starten Sie Claude Code neu, falls es bereits geöffnet war. Bitten Sie es, das ping-Tool von Signalint aufzurufen, und rufen Sie dann check_project mit { "paths": ["."] } auf.

Siehe die Claude Code MCP-Dokumentation für Umfang und Fehlerbehebung.

Cursor Einrichtung

Erstellen Sie .cursor/mcp.json im geprüften Projekt:

{
  "mcpServers": {
    "signalint": {
      "command": "npx",
      "args": ["--no-install", "signalint-mcp"]
    }
  }
}

Unter nativem Windows verwenden Sie "command": "cmd" und "args": ["/c", "npx", "--no-install", "signalint-mcp"]. Öffnen Sie die MCP-Einstellungen von Cursor, aktivieren Sie signalint und rufen Sie ping gefolgt von check_project auf.

Siehe die Cursor MCP-Dokumentation für Konfigurationsorte und Statussteuerungen.

Codex CLI Einrichtung

Die ChatGPT-Desktop-App, die Codex-CLI und die IDE-Erweiterung teilen sich eine einzige Konfigurationsdatei. Der Schnellhinzufügen-Befehl schreibt automatisch in ~/.codex/config.toml (global):

codex mcp add signalint -- npx --no-install signalint-mcp

Für eine projektspezifische Konfiguration (nur vertrauenswürdige Projekte) fügen Sie .codex/config.toml im Projektstamm hinzu:

[mcp_servers.signalint]
command = "npx"
args = ["--no-install", "signalint-mcp"]

Unter nativem Windows verwenden Sie cmd und übergeben npx als Argument:

[mcp_servers.signalint]
command = "cmd"
args = ["/c", "npx", "--no-install", "signalint-mcp"]

Siehe die Codex MCP-Dokumentation für alle Konfigurationsoptionen einschließlich cwd, env und Einstellungen zur Tool-Genehmigung.

Einrichtung mit Antigravity

Antigravity verwendet eine eigene MCP-Konfigurationsdatei. Der Pfad, der durch Dogfooding unter Windows verifiziert wurde, ist: %USERPROFILE%\.gemini\antigravity\mcp_config.json.

Der init-Befehl kann diese Datei nach Bestätigung aktualisieren. Die entsprechende Windows-Konfiguration ist:

{
  "mcpServers": {
    "signalint": {
      "command": "cmd",
      "args": ["/c", "npx", "--no-install", "signalint-mcp"],
      "cwd": "<absolute-path-to-your-project>"
    }
  }
}

Unter macOS oder Linux verwenden Sie "command": "npx" und "args": ["--no-install", "signalint-mcp"]. Starten Sie Antigravity neu oder verbinden Sie es nach der Aktualisierung der Konfiguration erneut.

Hinweis zu Antigravity-Produktvarianten: Antigravity hat sich in separate Produkte (IDE, CLI, SDK) aufgeteilt. Jede Variante kann einen anderen Konfigurationspfad verwenden – der obige IDE-Pfad ist der bestätigt funktionierende; andere Varianten können ~/.gemini/config/mcp_config.json oder eine projektspezifische .agents/mcp_config.json verwenden. Siehe antigravity.google/docs/mcp für die maßgebliche Liste pro Produkt.

Windows-Fehlerbehebung

Windows-.cmd-Shims, die von npm link erstellt werden, können einen Junction-Pfad zu Node freilegen. Wenn signalint-mcp mit einem Initialize/EOF-Fehler endet oder signalint stats mit Code 0 beendet wird, aber nichts ausgibt, umgehen Sie den Shim mit den kompilierten Einstiegspunkten:

node C:\absolute\path\to\Signalint\dist\src\index.js
node C:\absolute\path\to\Signalint\dist\src\cli.js stats

Aktuelle Builds kanonisieren verknüpfte Pfade, bevor sie entscheiden, ob sie starten, aber der direkte Node-Aufruf bleibt der zuverlässige Fallback für ältere Builds oder ungewöhnliche npm-Setups.

Konfiguration

engines.oxlint, engines.tsc und engines.biome sind boolesche Werte. Standardmäßig sind Oxlint und tsc aktiviert, Biome deaktiviert. Fehlende Engine-Schlüssel behalten diese Standardwerte. Unbekannte Schlüssel und falsch typisierte Werte führen zu einem Konfigurationsfehler.

ignore ist ein Array von projektrelativen Globs. Signalint unterstützt *, ** und ?, normalisiert Windows-Trennzeichen und schließt übereinstimmende angeforderte Pfade und Diagnosen aus. Da tsc eine ganzheitliche Engine ist, erhält sie bei Aufruf weiterhin das vollständige tsconfig.json-Programm; ignorierte TypeScript-Pfade lösen keinen inkrementellen check_files-Lauf aus und ihre Diagnosen werden aus der Antwort entfernt.

Die native Engine-Konfiguration bleibt in nativen Dateien. Der v1-Cache-Hash erkennt .oxlintrc, .oxlintrc.json, oxlint.json, tsconfig.json, biome.json und biome.jsonc im Stammverzeichnis. Eine Änderung invalidiert den zugehörigen Engine-Cache. Andere gültige Quellen – einschließlich .oxlintrc.jsonc, erweiterte Konfigurationen und verschachtelte Paketkonfigurationen – sind nicht Teil des v1-Cache-Hashings; löschen Sie .signalint/, nachdem Sie eine davon geändert haben.

timeoutsMs legt positive Ganzzahl-Subprozess-Deadlines in Millisekunden fest. Standardwerte sind 30 Sekunden für Oxlint, 120 Sekunden für tsc und 30 Sekunden für Biome. Eine zeitüberschrittene Engine und ihre Kindprozesse werden beendet. In der Schema-1.1-Check-Antwort hat diese Engine { "status": "error", "message": "tsc did not complete within 120s" } unter engines, während die Diagnosen abgeschlossener Engines erhalten bleiben.

Bekannte Einschränkungen

  • Signalint unterstützt nur JavaScript- und TypeScript-Projekte.

  • Die integrierten Engines sind Oxlint, TypeScript und Biome; v1 unterstützt keine beliebigen benutzerdefinierten Engines.

  • Signalint meldet, ob ein Problem einen strukturierten Fix hat, aber v1 wendet keine Fixes an.

  • Signalint ist kein SAST- oder Sicherheitsscanner.

  • Es gibt noch keine IDE-Erweiterung; Integrationen verwenden MCP oder den Befehlszeilen-Client.

  • Die Schleifenerkennung ist bewusst auf Lint-, Typ- und Test-Problem-Signaturen beschränkt; sie erkennt keine allgemeinen Agenten-Konversationsschleifen.

  • Der tsc-Adapter erfordert eine tsconfig.json im Projektstamm. Monorepos müssen eine Lösungskonfiguration im Stammverzeichnis mit TypeScript-Projektreferenzen bereitstellen; Signalint entdeckt keine unabhängigen Paketkonfigurationen automatisch.

  • check_files behandelt nur die Dateien, die explizit an diesen Aufruf übergeben werden, als relevant für die TypeScript-Cache-Invalidierung. Wenn Datei A geändert wird, aber weggelassen wird, während die unveränderte Datei B geprüft wird, und B von A abhängt, kann Signalint ein veraltetes tsc-Ergebnis wiederverwenden. Fügen Sie jede geänderte Abhängigkeitsdatei hinzu oder führen Sie check_project aus; eine Invalidierung auf Basis des Abhängigkeitsgraphen ist in v1 nicht implementiert.

MCP-Tools

  • ping prüft, ob der lokale Server verbunden ist, und gibt pong zurück.

  • check_project akzeptiert optional { "paths": ["."] } und gibt gruppierte Diagnosen zurück.

  • check_files akzeptiert { "files": ["src/file.ts"] } und verwendet inkrementelles Caching.

  • get_issue_detail akzeptiert genau eine clusterId oder issueId aus dem letzten erfolgreichen Check und gibt deren vollständige Probleme zurück, oder eine status: "stale"-Antwort.

  • get_loop_status gibt Problem-Signaturen zurück, die derzeit als oszillierend markiert sind.

Cache- und Sitzungsartefakte werden unter .signalint/ geschrieben und sollten nicht committet werden.

CLI- und Paket-Smoke-Test

Führen Sie denselben Projektcheck ohne MCP-Client aus:

npx --no-install signalint check .

Nachdem MCP-Checks in .signalint/session.jsonl gesammelt wurden, drucken Sie die Phase-6-Messzusammenfassung:

npx --no-install signalint stats

Der Bericht enthält die durchschnittliche Reduktion der normalisierten Rohen-zu-Clustered-JSON-Payload, die Engine-Datei-Cache-Trefferquote, die durchschnittliche und maximale Check-Latenz sowie die Anzahl der unterschiedlichen Problem-Signaturen, die Schleifenwarnungen ausgelöst haben. Eine Engine-Datei-Suche zählt jede aktivierte Engine separat, sodass eine geänderte TypeScript-Datei einmal für Oxlint und einmal für tsc fehlen kann. Die Latenz umfasst die Handler-Arbeit vom MCP-Tool-Eintritt bis zur Engine-/Cache-Arbeit, Gruppierung und Schleifenauswertung; sie schließt den Telemetrie-Anhang und den stdio-Transport aus. Die Statistiken umfassen das aktive Sitzungsprotokoll und seine rotierte .1-Sicherung, wobei deren überlappender Teil einmal gezählt wird. Saubere Checks mit null Rohe-Payload sind von der Reduktionsdurchschnitt ausgeschlossen, und ältere Checks mit fehlenden Metriken werden weiterhin gezählt, ohne zum nicht verfügbaren Aggregat beizutragen.

Die CLI beendet sich mit Code 1, wenn Probleme gefunden werden. Zwei Flags unterstützen die CI-Nutzung: --format github druckt eine GitHub-Actions-Annotation (::error file=...,line=...,col=...::message oder ::warning ...) pro Problem anstelle von JSON, und --fail-on-priority <N> beendet sich nur dann mit einem Nicht-Null-Code, wenn die Priorität eines Clusters bei oder unter N liegt, anstatt bei jedem gefundenen Problem.

Um einen tatsächlichen MCP-check_project-Aufruf gegen das installierte Paket auszuführen, führen Sie aus:

node node_modules/signalint-mcp/examples/check-project.mjs .

GitHub Actions

action.yml im Repository-Stamm umschließt signalint check als Composite-Action für CI. Es installiert Node, installiert signalint-mcp von npm und führt den Check mit --format github aus, sodass Probleme als Inline-Annotationen im Pull-Request-Diff erscheinen:

- uses: TranQui004/signalint@main
  with:
    fail-on-priority: "3"

fail-on-priority standardmäßig auf 5, was den Job bei jedem gefundenen Problem fehlschlagen lässt, entsprechend dem Standardverhalten von signalint check ohne das Flag. Niedrigere Werte lassen den Job nur fehlschlagen, wenn ein Cluster mindestens so dringend ist: Priorität 1 ist ein Fehler ohne strukturierten Fix, und die Priorität steigt in Richtung 5, wenn Probleme behebbarer oder systemischer werden (siehe scorePriority in src/cluster/clusterEngine.ts).

Entwicklung

pnpm 11.9.0 ist der kanonische Paketmanager für die Quellentwicklung. Das Repository committet pnpm-lock.yaml, deklariert pnpm in package.json und verwendet pnpm in CI.

pnpm install --frozen-lockfile
pnpm lint
pnpm typecheck
pnpm test
pnpm build

Wenn ein globaler npm-Shim npm-cli.js nicht finden kann, bauen Sie direkt mit node node_modules/typescript/bin/tsc -p tsconfig.json.

Bevor Sie eine Veröffentlichung vorbereiten, verwenden Sie npm pack --dry-run und verifizieren Sie das gepackte Tarball in einem sauberen Projekt. Die Veröffentlichung erfordert eine ausdrückliche Freigabe.

Sicherheit

Siehe SECURITY.md für die aktuelle npm-Audit-Warnung, ihre bewertete Laufzeiterreichbarkeit und die Bedingungen, die eine Neubewertung erfordern.

Dokumentation

  • Website — Übersicht, Dokumentation und Live-Beispiele.

  • ARCHITECTURE.md — wie die Ebenen zusammenpassen und was jedes Modul tut.

  • CONTRIBUTING.md — Entwicklungs-Setup, Verifikation und Pull-Requests.

  • AGENTS.md — Code-Standards für dieses Repository.

  • SECURITY.md — Bedrohungsmodell, Vertrauensgrenzen und Audit-Status.

  • CHANGELOG.md — bemerkenswerte Änderungen pro Release.

  • docs/history/ — ursprünglicher Build-Plan und Pre-Launch-Audit-Trail.

Lizenz

Signalint ist unter der MIT-Lizenz verfügbar.

Tool DescriptionsA

Average 4.8/5 across 5 of 5 tools scored.

Server CoherenceA
Disambiguation5/5

Each tool has a clear, distinct purpose: ping for health, check_project for full scans, check_files for incremental scans, get_issue_detail for querying results, and get_loop_status for looping diagnostics. No two tools overlap in functionality, and the descriptions explicitly differentiate when to use check_project vs check_files.

Naming Consistency5/5

All tool names follow a consistent verb_noun pattern using snake_case: ping, check_project, check_files, get_issue_detail, get_loop_status. The only slight deviation is 'ping' being a single verb, but it's a standard health check convention and does not break the pattern's clarity.

Tool Count5/5

With 5 tools, the server is well-scoped for a linting/diagnostics service. Each tool covers a distinct aspect of the workflow (health check, full scan, incremental scan, result retrieval, loop monitoring) without unnecessary bloat, and there is no sense of missing core functionality.

Completeness4/5

The tool surface covers the primary lifecycle: run full checks, run incremental checks, retrieve issue details, and monitor recurring issues. A minor gap is the lack of a tool to list all clusters or clear session state, but the existing tools allow agents to work effectively around these omissions.

Available Tools

5 tools
check_filesA
Read-onlyIdempotent

Runs Oxlint and TypeScript (and optionally Biome) lint and type diagnostics on a specific list of files, using per-engine content-hash caching to skip unchanged files. Read-only; no files are written or modified. Use this for incremental checks after editing specific files; use check_project for a full project scan. The files parameter expects relative file paths (not glob patterns) within the project directory — absolute paths or paths outside the root return an error response. Caching is file-content-hash-based: a file is re-checked only when its content or the engine's config file (e.g., .oxlintrc, tsconfig.json) has changed since the last call, not based on git status. TypeScript is a whole-program engine: it re-runs whenever any TypeScript file in the request has changed content.

ParametersJSON Schema
NameRequiredDescriptionDefault
filesYes

Output Schema

ParametersJSON Schema
NameRequiredDescription
codeNo
engineNo
statusYes
enginesNo
messageNo
clustersNo
truncatedNo
loopWarningNo
totalIssuesNo
schemaVersionNo
fileRuleChurnWarningNo
Behavior5/5

Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?

The description adds substantial behavioral detail beyond the annotations: content-hash-based caching, dependency on config files like .oxlintrc and tsconfig.json, and the whole-program re-run behavior of TypeScript. It also confirms no files are modified, which complements the readOnlyHint without contradicting it.

Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.

Conciseness4/5

Is the description appropriately sized, front-loaded, and free of redundancy?

The description is longer than average, but every clause earns its place: it covers purpose, usage context, path constraints, caching behavior, and engine-specific nuances. The use guidance is appropriately placed near the beginning, and the caching details are grouped logically. It is thorough but not bloated.

Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.

Completeness5/5

Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?

Given the presence of a clear output schema and robust annotations, the description covers everything an agent needs to decide whether and how to call this tool: purpose, engine behavior, input constraints, error conditions, caching semantics, and sibling distinction. No critical operational context is missing.

Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.

Parameters4/5

Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?

The schema only says 'files' is an array of non-empty strings, so the description carries the burden of explaining path semantics. It does this well by specifying relative paths, excluding glob patterns, and warning about absolute/outside-root paths. This is strong but not exhaustive; it could also clarify whether directories are accepted, though the word 'files' likely implies not.

Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.

Purpose5/5

Does the description clearly state what the tool does and how it differs from similar tools?

The description opens with a specific action — running Oxlint, TypeScript, and optionally Biome diagnostics on a specific file list — and clearly distinguishes itself from check_project by framing this tool as the incremental variant. An agent can immediately understand what the tool does and how it differs from its nearest sibling.

Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.

Usage Guidelines5/5

Does the description explain when to use this tool, when not to, or what alternatives exist?

It explicitly instructs when to use this tool ('after editing specific files') and when to use the alternative ('use check_project for a full project scan'). It also gives concrete constraints on expected inputs, such as relative paths and no glob patterns, so an agent has actionable selection and invocation guidance.

Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.

check_projectA
Read-onlyIdempotent

Runs and clusters Oxlint and TypeScript (and optionally Biome) lint and type diagnostics for one or more project paths. Read-only; no files are written or modified. Paths default to the project root (".") when omitted; paths must be relative and within the project directory — absolute paths or paths outside the root return an error response. Use this for a full project scan; use check_files instead for faster incremental checks after editing specific files. Each call re-runs all enabled engines with no caching.

ParametersJSON Schema
NameRequiredDescriptionDefault
pathsNo

Output Schema

ParametersJSON Schema
NameRequiredDescription
codeNo
engineNo
statusYes
enginesNo
messageNo
clustersNo
truncatedNo
loopWarningNo
totalIssuesNo
schemaVersionNo
fileRuleChurnWarningNo
Behavior5/5

Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?

Beyond the annotations (readOnlyHint, idempotentHint, non-destructive), the description adds materially useful behavioral context: every call 're-runs all enabled engines with no caching,' paths default to the project root when omitted, and absolute/out-of-root paths 'return an error response.' It also rescans the tool's safety profile by stating 'Read-only; no files are written or modified,' which is consistent with the annotations — no contradiction.

Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.

Conciseness5/5

Is the description appropriately sized, front-loaded, and free of redundancy?

Four concise sentences, each earning its place: purpose/engines, read-only guarantee, path constraints/default, and the sibling differentiation plus no-caching behavior. Nothing repeats the schema, no filler, and the most important information (what it runs and on what) is front-loaded.

Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.

Completeness5/5

Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?

With only one optional parameter, read-only/idempotent annotations, and an output schema (so return values need no description), the definition covers all informational needs: scope, defaults, constraints, error cases, alternative tool routing, and runtime cost behavior. There is nothing relevant an agent would have to guess about calling this tool correctly.

Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.

Parameters5/5

Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?

The schema has a single param 'paths' but 0% description coverage, so the description carries the entire burden. It adds crucial meaning: paths are 'one or more project paths,' default to the project root '.' when omitted, and must be relative — absolute or out-of-root paths return errors. That transforms what would be an opaque string array into a fully understandable parameter.

Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.

Purpose5/5

Does the description clearly state what the tool does and how it differs from similar tools?

The description opens with a specific verb-resource pairing: 'Runs and clusters Oxlint and TypeScript (and optionally Biome) lint and type diagnostics for one or more project paths.' It names the exact diagnostics engines, explicitly differentiates from the sibling check_files, and clarifies the full-project scope, so an agent can distinguish it without opening any other tool.

Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.

Usage Guidelines5/5

Does the description explain when to use this tool, when not to, or what alternatives exist?

The description gives explicit when-to-use guidance: 'Use this for a full project scan; use check_files instead for faster incremental checks after editing specific files.' It names the alternative sibling and the condition that selects it, which is the clearest possible routing for an agent.

Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.

get_issue_detailA
Read-onlyIdempotent

Returns the full issue list for either one cluster ID or one issue ID from the most recent check_project or check_files call. Read-only; no files are written or modified. Supply exactly one of clusterId or issueId — supplying both or neither returns an argument error. If the referenced cluster or issue no longer exists in the latest results (e.g., after re-running a check), returns a status: "stale" response instead of an error; call check_project or check_files again to refresh.

ParametersJSON Schema
NameRequiredDescriptionDefault
issueIdNo
clusterIdNo

Output Schema

ParametersJSON Schema
NameRequiredDescription
codeNo
issuesNo
statusNo
messageNo
Behavior5/5

Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?

Annotations already declare read-only and idempotent behavior. The description goes further by exposing the exact error case when both or neither parameter is supplied, and the stale response and recovery path. It also explicitly states 'no files are written or modified', reinforcing and not contradicting 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.

Conciseness5/5

Is the description appropriately sized, front-loaded, and free of redundancy?

Each sentence adds value: purpose, safety, parameter constraint, error behavior, and recovery path are all covered without unnecessary repetition. The description is structured with front-loaded actionable information.

Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.

Completeness5/5

Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?

For a tool with two parameters, oneOf constraints, and an output schema, the description covers everything needed to call it correctly: source of IDs, required exclusivity, error and stale states, resolution, and side-effect-free behavior. Nothing critical is omitted.

Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.

Parameters4/5

Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?

Schema description coverage is 0%, but the description compensates by explaining that clusterId and issueId come from the most recent check_project or check_files result and that exactly one must be supplied. It doesn't fully define what an issueId vs clusterId represents or how they appear, but the connection to the previous check calls provides meaningful context beyond the raw schema.

Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.

Purpose5/5

Does the description clearly state what the tool does and how it differs from similar tools?

The description states a specific verb and resource ('Returns the full issue list') and clearly delimits the input ('for either one cluster ID or one issue ID'). It also ties the tool to the results of check_project or check_files, making it easy to distinguish from its siblings even without checking the schema.

Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.

Usage Guidelines5/5

Does the description explain when to use this tool, when not to, or what alternatives exist?

The description explicitly places this tool after a check_project or check_files call and gives a concrete alternative when the result is stale: 'call check_project or check_files again to refresh.' This is a clear when-to-use and when-not-to-use distinction.

Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.

get_loop_statusA
Read-onlyIdempotent

Returns all diagnostic issue signatures currently flagged as looping (repeatedly appearing and disappearing) in this server session. Read-only; no files are written or modified. Loop history is accumulated across all check_project and check_files calls in this process lifetime, and is restored from .signalint/session.jsonl on startup. Takes no parameters. Use this to identify which diagnostics an agent is oscillating on; use check_project or check_files to run fresh diagnostics.

ParametersJSON Schema
NameRequiredDescriptionDefault

No parameters

Output Schema

ParametersJSON Schema
NameRequiredDescription
loopingYes
signaturesYes
fileChurningYes
fileRuleChurnsYes
Behavior5/5

Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?

Although annotations already declare readOnly, idempotent, and non-destructive behavior, the description adds state-lifecycle context: loop history accumulates across all check_project and check_files calls and is restored from .signalint/session.jsonl on startup. It also confirms 'no files are written or modified,' which clarifies what the read-only hint actually guarantees.

Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.

Conciseness5/5

Is the description appropriately sized, front-loaded, and free of redundancy?

The description is tight and efficient: it opens with the return value and risk guarantee, then gives state lifecycle, parameter count, and usage routing. Every sentence adds useful signal and no filler is present.

Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.

Completeness5/5

Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?

Given that the tool has no parameters, has an output schema, and conveys read-only behavior through annotations, the description is complete. It also clarifies how data is aggregated across sibling calls, how it is restored from session storage, and when to choose alternative tools.

Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.

Parameters4/5

Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?

The tool has 0 parameters, so the baseline is 4. The description explicitly says 'Takes no parameters' and the schema confirms an empty object with no additional properties. There is nothing further needed.

Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.

Purpose5/5

Does the description clearly state what the tool does and how it differs from similar tools?

The description states a specific verb and resource: 'Returns all diagnostic issue signatures currently flagged as looping' and defines looping as repeatedly appearing and disappearing. It also distinguishes the tool from siblings like check_project and check_files by positioning it as the accumulated-history view rather than a fresh diagnostic runner.

Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.

Usage Guidelines5/5

Does the description explain when to use this tool, when not to, or what alternatives exist?

It explicitly tells agents when to use it: 'identify which diagnostics an agent is oscillating on.' It also names the alternatives for fresh diagnostics: 'use check_project or check_files to run fresh diagnostics.' This is clear, direct usage guidance.

Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.

pingA
Read-onlyIdempotent

Checks whether the Signalint MCP server is responsive. Read-only; returns the string "pong" with no side effects. Use this to verify the server is connected before running diagnostics. Invalid arguments return an error response; no authentication is required.

ParametersJSON Schema
NameRequiredDescriptionDefault

No parameters

Output Schema

ParametersJSON Schema
NameRequiredDescription
pongYesTrue when the server is responsive.
Behavior4/5

Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?

The description goes beyond the annotations by explaining the success output, error on invalid arguments, and lack of authentication. It also reinforces the read-only and side-effect-free behavior for the agent even if annotations were ignored.

Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.

Conciseness5/5

Is the description appropriately sized, front-loaded, and free of redundancy?

The description is three short, front-loaded sentences with no filler. It covers purpose, use context, output, errors, and authentication without repeating schema details.

Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.

Completeness5/5

Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?

For a trivial ping-style tool with rich annotations and an output schema, the description fully covers purpose, usage context, result, side-effect profile, error behavior, authentication, and read-only guarantee. Nothing material is missing.

Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.

Parameters4/5

Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?

The tool has zero parameters, so the schema already establishes that no arguments are valid. The description adds useful confirmation that invalid arguments will result in an error response, which is beneficial for correct invocation.

Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.

Purpose5/5

Does the description clearly state what the tool does and how it differs from similar tools?

The description uses a specific verb and resource ('Checks whether the Signalint MCP server is responsive') and names the literal output ('pong'). This clearly differentiates it from the sibling tools that check loop status, projects, files, and issue details.

Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.

Usage Guidelines4/5

Does the description explain when to use this tool, when not to, or what alternatives exist?

The description explicitly recommends using the tool to verify the server is connected before running diagnostics. It provides clear context for when to call it, though it does not state alternatives to avoid or mention exclusions.

Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.

A
license - permissive license
A
quality
A
maintenance

Maintenance

1dRelease cycle
11Releases (12mo)
Commit activity

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