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Recent Changes

recent_changes
Read-onlyIdempotent

"What's new with X" / "latest on Y" / "what happened to Z this week / month / quarter" / "updates on Acme" / "news on Tesla recently" / "what's happening with Apple" — change feed for a company in the last N days/weeks/months in ONE parallel call. Fans out to SEC EDGAR (filings since since), GDELT→GNews fallback (news mentions in window — GDELT preferred, GNews when rate-limited or 5xx), USPTO (patents granted; PatentsView API sunset May 2025 so this soft-fails until reactivated). since accepts ISO date ("2026-04-01") or relative shorthand ("7d", "30d", "3m", "1y"). Returns structured changes[] grouped by source + total_changes count + pipeworx:// citation URIs. Use entity_profile instead when you want the static profile (filings + fundamentals + LEI + patents) regardless of window.

Input Schema

TableJSON Schema
NameRequiredDescriptionDefault
typeYesEntity type. Only "company" supported today.
sinceYesWindow start — ISO date ("2026-04-01") or relative ("7d", "30d", "3m", "1y"). Use "30d" or "1m" for typical monitoring.
valueYesTicker (e.g., "AAPL") or zero-padded CIK (e.g., "0000320193").

Schema Changelog

Changes observed during successful MCP inspections. Dates show when Glama detected each change.

  1. First observed

TDQS

A4.8/5.0
Behavior5/5

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

The description discloses detailed behavioral traits beyond the annotations: it fans out to SEC EDGAR, GDELT with GNews fallback, and USPTO (with soft-fail note). It explains the parallel call nature, the return format, and the citation URIs. No contradiction with annotations (readOnlyHint, idempotentHint, etc.).

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 dense but well-structured: it opens with example queries, then explains the fan-out, parameter specifics, return format, and sibling distinction. Every sentence serves a purpose; however, it is slightly verbose for the 'what's new' examples, which could be condensed. Still, it maintains a logical flow.

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 complexity (multiple data sources, fallback logic, soft-fail, date formats, return structure), the description covers all essential aspects. No output schema exists, but the description explicitly lists the returned fields (changes grouped by source, total_changes, citation URIs), making the tool self-contained for invocation.

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?

Although the schema already has 100% coverage with good descriptions, the tool description adds extra value: it provides typical usage examples for 'since' (e.g., 'Use "30d" or "1m" for typical monitoring') and confirms that 'type' only supports 'company'. The description enhances the semantic understanding beyond the schema alone.

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 is exceptionally clear, starting with example user queries ('What's new with X', 'latest on Y') and then stating the tool's purpose: a change feed for a company in a recent window. It explicitly distinguishes itself from the sibling 'entity_profile' tool by specifying when to use each, providing strong purpose clarity.

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 provides explicit when-to-use guidance with real queries and examples. It also clearly states when not to use this tool: 'Use entity_profile instead when you want the static profile'. This directly helps the agent decide between siblings.

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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TDQS

A3.5/5.0
Disambiguation2/5

Several tools are near-duplicates or have blurry boundaries: ask_pipeworx and ask_pipeworx_beta are explicitly identical today, and the six polymarket tools (edges, arbitrage, bet_research, fill_risk, edge_tracker, kalshi_spread) all target opportunity-finding in overlapping ways. Detailed descriptions help, but an agent can easily pick the wrong one.

Naming Consistency3/5

Most names are readable snake_case with clear verbs like ask_, compare_, resolve_, and validate_, but conventions are mixed: noun-style names (entity_profile, recent_alerts, polymarket_edges) sit beside imperative verbs and domain-prefixed families. There is no camelCase or total chaos, so it is inconsistent but navigable.

Tool Count2/5

32 tools is heavy and exceeds the well-scoped zone; the set spans flight search, general data Q&A, prediction markets, memory, subscriptions, and feedback. Many are platform meta-tools that could be consolidated or hidden behind the main ask_pipeworx router.

Completeness2/5

If Duffel is the intended domain, only duffel_flight_search is present—there is no offer detail, booking, order management, or cancellation, so travel workflows dead-end. As a generic Pipeworx data platform the surface is broader, but that only highlights the mismatch with the server name and a missing coherent domain.