convex-insights

द्वारा get-convex

चल रहे Convex ऐप के लॉग + स्वास्थ्य को प्राकृतिक भाषा में क्वेरी करें (आधिकारिक MCP): विफलताएँ, धीमे/महंगे फ़ंक्शन, डिप्लॉय कारणता — स्कोप्ड, साक्ष्य-समर्थित, डैशबोर्ड डीप लिंक के साथ।

npx skills add https://github.com/get-convex/agent-skills --skill convex-insights

Query logs + health in natural language

The deployment already records what happened; the agent just has to ask well. This capability is a disciplined wrapper over the official Convex MCP's read tools (logs, insights, functionSpec, status) that turns operational questions into narrow, evidence-returning queries and hands back answers a human can one-click verify in the dashboard. The discipline is copied from the observability MCP surface that works best in the wild: discover fields before querying, three views not fifteen tools, token-frugal output, and a dashboard deep link on every answer.

Workflow

  1. GUARD: deploy-guard step 0-1 — identify + announce which deployment is being read. Reading logs/insights is read-only; never enable prod mutation flags for an insights pass.
  2. DISCOVER before you query — never guess identifiers. Use functionSpec to list the real function names and status for the deployment/version. Note the tool limits up front: logs takes only --history <n> (a COUNT, not a time window), --success, --jsonl, --prod, --deployment — there is NO server-side status/function/requestId/time filter; insights has no function filter and is cloud dev/prod + user-auth only. So you fetch a recent window and filter CLIENT-SIDE.
  3. PICK ONE OF THREE VIEWS and fetch the raw window, then filter locally:
    • failures view → logs --history <n> --jsonl, then locally keep failures + group by function + error message, returning counts + the first stack per group. Answers 'what's erroring', 'what failed after deploy'.
    • health view → insights (cloud only): the typed 72h read-limit / OCC events. Surface + rank them, but hand perf/cost ROOT-CAUSING and fixes to convex-advisor — emit those as pointer findings, do not own the perf-fix framing here.
    • trace view → logs --history <n> --jsonl then locally filter to one requestId/function to read the full execution. Answers 'why did THIS call fail'.
  4. SCOPE by fetching a bounded recent window (a sensible --history count) and filtering client-side to the function/status/requestId asked about; when the window is large, aggregate (counts by function/message) rather than dumping lines.
  5. ANSWER with (a) the one-line finding, (b) the evidence (counts + one representative stack/log line), and (c) WHEN POSSIBLE an agent-constructed dashboard deep link (dashboard.convex.dev, the deployment's Logs/Functions view) for human verification — no tool returns the link, so build it from the deployment name + function; never a raw log dump as the answer.
  6. CROSS-CHECK deploy causality when asked 'did my deploy break this': compare the failure onset (from the log timestamps) against the deployment version from status; correlate, don't assert.
  7. HAND OFF, don't fix here: a perf/cost cause → convex-advisor (which owns those fixes); a code defect → convex-reviewer/convex-authz; a live error to react to going forward → monitor/sentinel. Emit findings on the bus (specs/finding.schema.json) — primarily observability, with perf/cost as pointer findings to advisor — so a composite pass can pick them up.

Rules

  • Discover real function/field names (functionSpec/status) before filtering — never guess identifiers, never return a confusing empty result for a name the app doesn't have.
  • logs and insights have NO server-side status/function/requestId/time-window filter (logs takes only a --history COUNT; insights is cloud-only) — fetch a bounded recent window and filter CLIENT-SIDE; say so rather than implying params that don't exist.
  • One of three views per question (failures / health / trace) — don't fan out into many speculative tool calls.
  • No tool returns a dashboard link — construct it from the deployment name + function when possible for human verification; never answer with a raw log dump.
  • Read-only always: an insights pass runs no mutation and never enables prod mutation flags (deploy-guard discipline).
  • Stay a reader and defer perf/cost fixes to convex-advisor: emit primarily observability, route perf/cost as POINTER findings so advisor uniquely owns the perf-fix framing; forward-looking reaction goes to monitor/sentinel.

get-convex की और Skills

convex-performance-audit
get-convex
कॉन्वेक्स प्रदर्शन का ऑडिट करता है: रीड, सब्सक्रिप्शन, राइट कंटेंशन और फंक्शन सीमाएँ। धीमी सुविधाओं, इनसाइट्स निष्कर्षों, OCC विरोधों या रीड एम्प्लीफिकेशन के लिए उपयोग करें।
developmentdatabasedata-analysis
convex
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सामान्य Convex अनुरोधों को सही प्रोजेक्ट कौशल पर रूट करता है। इसका उपयोग तब करें जब उपयोगकर्ता पूछता है कि किस Convex कौशल का उपयोग करना है या कोई अपर्याप्त रूप से निर्दिष्ट Convex ऐप कार्य देता है।
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Convex प्रमाणीकरण, पहचान मैपिंग और पहुँच नियंत्रण सेट करता है। Convex ऐप में लॉगिन, प्रमाणीकरण प्रदाताओं, उपयोगकर्ता तालिकाओं, संरक्षित फ़ंक्शन या भूमिकाओं के लिए उपयोग करें।
developmentdatabaseapi
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एप्लिकेशन में Convex बनाता या जोड़ता है। नए Convex प्रोजेक्ट्स, npm create convex@latest, फ्रंटएंड सेटअप, env वेरिएबल्स, या पहली npx convex dev रन के लिए उपयोग करें।
developmentdatabase
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Convex स्कीमा और डेटा माइग्रेशन की योजना widen-migrate-narrow और @convex-dev/migrations के साथ बनाता है। ब्रेकिंग स्कीमा परिवर्तनों, बैकफिल, टेबल रीशेपिंग या जीरो-डाउनटाइम रोलआउट के लिए उपयोग करें।
developmentdatabase
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पुन: प्रयोग करने योग्य Convex घटकों का निर्माण करता है जिनमें पृथक तालिकाएँ और ऐप-मुखी API होते हैं। नए घटकों, पुन: प्रयोग करने योग्य बैकएंड मॉड्यूल, एकीकरण या घटक सीमा कार्य के लिए उपयोग करें।
developmentdatabase
convex-migrate
get-convex
तैनात Convex ऐप पर @convex-dev/migrations का उपयोग करके स्कीमा माइग्रेट करें और डेटा बैकफिल करें।
developmentdatabase
convex-optimize
get-convex
मौजूदा Convex ऐप का ऑडिट और अनुकूलन करें: सुरक्षा, स्केल, अपग्रेड, अवलोकन क्षमता।