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Codeshark-NET

ClimateTriage MCP Server

Server Quality Checklist

58%
Profile completionA complete profile improves this server's visibility in search results.
  • Latest release: v1.0.0

  • Disambiguation5/5

    With only one tool, there is no possibility of ambiguity or overlap between tools. The tool has a clear, distinct purpose focused on searching for climate-related open source issues.

    Naming Consistency5/5

    Since there is only one tool, naming consistency is inherently perfect. The tool name follows a clear verb_noun pattern (search_climate_triage_issues), which would be consistent if more tools were added.

    Tool Count2/5

    A single tool is too few for a server named 'ClimateTriage MCP Server', which suggests a broader scope of climate-related operations. The tool only handles searching, leaving obvious gaps like creating, updating, or managing issues, making the server feel incomplete and under-scoped.

    Completeness2/5

    The server is severely incomplete for its implied domain of climate triage. It only provides search functionality, with no tools for creating, updating, deleting, or analyzing issues, which are essential for a full triage workflow. This will likely cause agent failures when trying to perform comprehensive climate-related tasks.

  • Average 3.4/5 across 1 of 1 tools scored.

    See the Tool Scores section below for per-tool breakdowns.

    • No community issues in the last 6 months
    • 0 commits in the last 12 weeks
    • No stable releases found
    • No critical vulnerability alerts
    • No high-severity vulnerability alerts
    • No code scanning findings
    • CI status not available
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How is the quality score calculated?

The overall quality score combines two components: Tool Definition Quality (70%) and Server Coherence (30%).

Tool Definition Quality measures how well each tool describes itself to AI agents. Every tool is scored 1–5 across six dimensions: Purpose Clarity (25%), Usage Guidelines (20%), Behavioral Transparency (20%), Parameter Semantics (15%), Conciseness & Structure (10%), and Contextual Completeness (10%). The server-level definition quality score is calculated as 60% mean TDQS + 40% minimum TDQS, so a single poorly described tool pulls the score down.

Server Coherence evaluates how well the tools work together as a set, scoring four dimensions equally: Disambiguation (can agents tell tools apart?), Naming Consistency, Tool Count Appropriateness, and Completeness (are there gaps in the tool surface?).

Tiers are derived from the overall score: A (≥3.5), B (≥3.0), C (≥2.0), D (≥1.0), F (<1.0). B and above is considered passing.

Tool Scores

  • Behavior3/5

    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 mentions that the tool 'returns information about issues including project details, descriptions, and links' and 'supports filtering, pagination, and sorting,' which adds useful context about output and capabilities. However, it doesn't cover critical aspects like rate limits, authentication needs, error handling, or data freshness, leaving gaps in behavioral understanding.

    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 appropriately sized and front-loaded, starting with the core purpose and following with usage examples and capabilities. Each sentence adds value, with no redundant information. However, it could be slightly more streamlined by integrating the capabilities into the initial statement.

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

    Completeness3/5

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

    Given the complexity (7 parameters, no annotations, no output schema), the description is moderately complete. It covers the purpose, output content, and supported features but lacks details on response format, error cases, or example outputs. Without an output schema, the agent must infer return values from the description alone, which is insufficient for full operational clarity.

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

    Parameters3/5

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

    The input schema has 100% description coverage, so the baseline is 3. The description adds minimal parameter semantics beyond the schema, mentioning filtering, pagination, and sorting generically but not explaining specific parameter interactions or use cases. It doesn't compensate for schema gaps because there are none, but also doesn't enhance parameter understanding significantly.

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

    Purpose4/5

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

    The description clearly states the tool searches for open source issues related to climate change and sustainability, specifying the resource (issues) and purpose (finding opportunities to contribute). It distinguishes the domain (climate/sustainability) but doesn't differentiate from siblings since none exist, making it clear but not fully optimized for sibling comparison.

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

    Usage Guidelines3/5

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

    The description provides implied usage contexts ('to find opportunities to contribute,' 'explore issues,' 'discover projects') but lacks explicit guidance on when to use this tool versus alternatives. No exclusions or prerequisites are mentioned, leaving the agent to infer appropriate scenarios without clear boundaries.

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

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