insforge-debug

Use ao diagnosticar problemas em um projeto InsForge — falhas reativas (objeto de erro do SDK, HTTP 4xx/5xx, gateway timeout 502/503/504, falha ou timeout de edge function, erros de login/OAuth/auth, negação de RLS, problemas com canais em tempo real, consulta lenta em um endpoint, falha de deploy em edge function ou Vercel), auditorias proativas (revisão de segurança/RLS, revisão de desempenho/índices, verificação de integridade do sistema, prontidão pré-lançamento), ou quando o usuário tem um erro mas não sabe por onde começar.

npx skills add https://github.com/insforge/agent-skills --skill insforge-debug

InsForge Debug

Diagnose problems in InsForge projects by combining the backend's observability primitives — logs, metrics, db-health, advisor, policies, metadata, error objects, deploy state, and AI assist. This skill provides:

  1. A reference per debug primitive (one observability surface each — under references/)
  2. Symptom Recipes (below) that name the primitive sequence for known reactive symptoms and proactive audits

Always use npx -y @insforge/cli — never install the CLI globally.

Fastest Path: AI-Assisted Triage

When the user gives a concrete description (error message, failing URL, HTTP status), hand it to the InsForge debug agent. Unlike the other primitives, this one returns suggestions, not just observations — verify the diagnosis against the primitives it cites before acting on it.

npx -y @insforge/cli diagnose --ai "<issue description>"

See references/ai-assisted.md for when to use this first vs when to skip, and how to verify the output.

Debug Primitives

Each primitive is one independently-queryable observability surface backed by a distinct underlying data source. Real diagnoses are compositions of primitives.

All commands run via npx -y @insforge/cli .... The (command) shown next to each primitive is the actual CLI command — primitive names are concept labels, not CLI subcommand names (e.g., "DB health" is diagnose db, not diagnose db-health; "Policies" is db policies, not diagnose policies).

Primitive (command)What you seeReference
Logs (logs <source>; diagnose logs for cross-source aggregate)Time-stream of events from 5 backend sources (insforge.logs / postgREST.logs / postgres.logs / function.logs / function-deploy.logs)references/logs.md
Metrics (diagnose metrics)EC2 instance time-series (CPU / memory / disk / network) over 1h / 6h / 24h / 7dreferences/metrics.md
DB health (diagnose db)Current Postgres state via 7 named checks (connections / slow-queries / bloat / size / index-usage / locks / cache-hit)references/db-health.md
Advisor (diagnose advisor --json)Static-scan issues across 3 categories (security / performance / health) with ruleId / affectedObject / recommendationreferences/advisor.md
Policies (db policies)Active RLS rules from pg_policies (USING / WITH CHECK per cmd per role) — returns all policies as a dumpreferences/policies.md
Metadata (metadata --json)Declarative backend state dump (auth config / tables / buckets / functions / AI models / realtime channels)references/metadata.md
Error objects (no command — read SDK / HTTP response)SDK error envelope + HTTP status — the routing table from a client-visible error to the right log sourcereferences/error-objects.md
Deploy state (deployments list + deployments status <id> --json + logs function-deploy.logs)Frontend (Vercel) deployment history + per-deploy metadata, plus edge function deploy logsreferences/deploy-state.md
AI assist (diagnose --ai "<description>")LLM agent that combines the other primitives — returns a diagnosis with suggestionsreferences/ai-assisted.md

Symptom Recipes

Each recipe is a primitive call sequence with one-line "look for X" at each step. Command syntax, flags, and deep interpretation are in the per-primitive references above.

Recipe: SDK returned { data: null, error: { code, message } }

  1. error-objects — read code/message/details. If code starts with PGRST*, route by prefix using the table in the reference.
  2. logs (matching source per error-objects routing) — find the error timestamp, get the full backend-side context.
  3. db-health (connections, locks, slow-queries) — only if the error suggests DB issue (PostgREST timeout, lock conflict).

Recipe: HTTP 4xx/5xx response on a specific request

  1. error-objects — use the HTTP status routing table to pick the log source (each status has a distinct path; 429 is special).
  2. logs (right source for that status) — find the failing request line and error.
  3. metrics — only for 5xx patterns spanning multiple endpoints, to confirm system-wide load issue.

Recipe: RLS access issue (403 on write, or empty result on read)

Same bug, two surfacings. Writes (INSERT / UPDATE / DELETE) fail loudly with 403. Reads (SELECT) fail silently with an empty array — PostgREST filters denied rows out instead of returning 403, so the request looks successful with zero rows. Diagnosis path is the same except step 1 only applies to the 403 variant.

  1. logs (postgREST.logs) — 403 variant only: find the policy violation event with table and role context. Empty-result variant: skip — no error is logged for silently-filtered rows.
  2. policies — list policies for that table; walk USING / WITH CHECK against the actual request and the JWT claim used.
  3. metadata — verify auth config (which claim feeds auth.uid() / requesting_user_id(); for third-party auth like Clerk/Auth0, is the provider registered as a JWT issuer?).
  4. db query (db query "<sql>") — empty-result variant only: confirm rows that should be visible actually exist by querying as service role (not as the user): npx -y @insforge/cli db query "SELECT id, user_id FROM <table>". Distinguishes "RLS filtered everything" from "no matching data exists".

Recipe: Login fails / OAuth callback errors / token expired

  1. logs (insforge.logs) — find auth errors with timestamp and provider context.
  2. metadata — verify the provider is enabled, redirect URLs match the callback URL exactly (protocol + host + path).

Recipe: Edge function runtime error / timeout

  1. logs (function.logs) — get the error stack and execution context.
  2. metadata — confirm the function exists and status: "active".
  3. (If needed) npx -y @insforge/cli functions code <slug> — inspect the source for obvious issues.

Recipe: functions deploy failed

  1. deploy-state (function-deploy.logs) — find the build/push error.
  2. metadata — confirm whether the function ended up in the active list (partial-deploy detection).

Recipe: deployments deploy failed (Vercel)

  1. deploy-state (deployments list + status <id> --json) — read status, metadata.webhookEventType, and envVarKeys.
  2. Local npm run build — reproduce the same error locally for faster iteration.

Recipe: Single slow query / one endpoint slow

  1. logs (postgres.logs) — find the query text and timestamp.
  2. db-health (slow-queries, index-usage) — slow-queries only catches it while still running (>5s snapshot); check index-usage for a missing index. Already finished? advisor (--category performance --json) has the pg_stat_statements text + mean time; step 1 has the timestamp.
  3. policies — if it's an RLS-gated table, verify the policy isn't adding hidden joins.

Recipe: "Memory is at ~80% but nothing is slow"

  1. Expected — say so first. A dedicated Postgres instance turns idle RAM into shared buffers and page cache; steady high memory with little traffic is its healthy state, not a leak (references/metrics.md, "Memory: high is normal").
  2. metrics (--range 24h) — only a rising trend or OOM kills/restarts change the answer. OOM evidence lives in postgres.logs as the crash-recovery aftermath ("terminating connection because of crash of another server process" / "automatic recovery in progress").
  3. With OOM evidence, the fix is headroom: upgrade to a paid plan and pick a larger instance size (dashboard → Project Settings → Compute & Disk). OOM on the smallest instances under real load is common and expected — never "restart to free memory".

Recipe: All responses slow / high CPU/memory (active incident)

  1. metrics (--range 1h) — confirm system-wide pressure (CPU / memory / disk).
  2. db-health — DB is the most common bottleneck; check connections, locks, slow-queries.
  3. logs (diagnose logs aggregate) — error patterns across sources at the spike timestamp.
  4. advisor (--severity critical) — pre-existing known issues that may explain the degradation.

Recipe: Realtime channel won't connect / messages missing

  1. logs (insforge.logs) — WebSocket errors and subscription failures.
  2. metadata — verify the channel pattern matches what the client subscribes to, enabled: true.
  3. policies — RLS on the underlying table (realtime delivers row changes; RLS gates which rows the subscriber sees).

Recipe: 429 rate limit

  1. error-objects — confirm 429 status. No logs are recorded for 429s; no Retry-After header is returned. Don't waste time grepping logs.
  2. metrics (--range 1h) — overall backend load context.
  3. Fix is always client-side: debounce, batch, exponential backoff, eliminate retry loops.

Recipe: Gateway timeout (502 / 503 / 504) on a specific URL

Route by URL subsystem before drilling:

URL patternDrill into
/api/database/records/...logs (postgREST.logspostgres.logs) + db-health (locks, slow-queries)
/functions/<slug>logs (function.logs) — function may be crash-looping
/api/auth/...logs (insforge.logs)
Any path during system-wide spikemetrics (--range 1h)

504s across unrelated paths on a small instance: suspect OOM first. Intermittent gateway timeouts hitting database, auth, and functions alike are the classic out-of-memory signature on the smallest instance sizes: the kernel kills Postgres, every in-flight request times out at the gateway while crash recovery runs, and it repeats on the next load spike.

Fast path: npx -y @insforge/cli diagnose incident (Platform login required). The report is built entirely on the cloud side — Prometheus scrape history, platform records, an outbound database probe — so it works even while the instance is down or wedged, exactly when diagnose logs stops answering. It returns a verdict (oom_likely, platform_operation_in_progress, paused_or_suspended, metrics_stopped, down_unknown, no_incident_detected) with the evidence and the recommended action; oom_likely already means the restart/memory correlation checks below passed on the platform side.

If the command is unavailable (older CLI/backend, --api-key link mode), confirm manually in logs (postgres.logs) via the crash-recovery aftermath — "terminating connection because of crash of another server process" / "automatic recovery in progress" — time-correlated with the 5xx burst: recovery evidence alone only proves an unclean Postgres restart, so the timestamps must line up before OOM becomes the leading diagnosis (references/metrics.md). With that evidence the fix is headroom, not a retry loop:

  1. Upgrade the instancenpx -y @insforge/cli projects upgrade-instance <type> (nanomicrosmallmediumlargexl), or dashboard → Project Settings → Compute & Disk. On the free plan, upgrade to a paid plan first, then pick the size. The resize changes the bill and the CLI asks for interactive confirmation — get the user's go-ahead first, then run unattended with the CLI-level --yes (the -y in npx -y is npm's install flag, not the confirm-skip). The resize is async — poll projects get until operation_status clears before declaring the incident resolved.
  2. The resize restarts the project as part of the change, which also clears any wedged state — there is no separate user-facing restart, and a bare restart would only buy minutes before the next spike OOMs again. OOM under real load on the smallest sizes is common and expected, not a bug.

Recipe: Pre-launch / proactive audit

Requires Platform login (npx -y @insforge/cli login). Not available when the project is linked via --api-key — fall back to db-health + policies + metadata for a manual audit in that case.

  1. advisor — full scan, then --severity critical first, then warnings.
  2. advisor (--category security) — focus on security issues; cross-verify with policies (RLS coverage) and metadata (auth config, public buckets, secret presence).
  3. advisor (--category performance) — cross-verify with db-health (slow-queries, index-usage, bloat).
  4. advisor (--category health) — cross-verify with metrics (resource trends over 7d).
  5. After fixes, re-run advisor and confirm isResolved: true for each addressed ruleId.

Recipe: Don't know where to start

  1. ai-assisted (diagnose --ai "<error or URL>") — get a starting hypothesis.
  2. Verify by re-checking the primitives the diagnosis names. Trust the primitive observations over the suggestion.

When the Root Cause Is InsForge Itself

Some diagnoses end at an InsForge-side defect, not a project misconfiguration: a platform bug or regression, an SDK call that misbehaves, docs or a skill that contradict observed behavior, or a missing capability. A debug session is exactly where these get confirmed — report them while the evidence is in hand:

npx -y @insforge/cli feedback --json \
  --type bug --component backend --area db \
  --title "<one-line summary>" \
  --detail "<what happened vs expected, minimal repro>" \
  --command "<the failing call>" \
  --error "<verbatim error from logs>" \
  --workaround "<what you did instead>"

No login required; common PII patterns (emails, credential/key formats, public IPs, home-directory usernames) are redacted locally — pattern-based, so still keep user data out. Use --component sdk --language <lang> for SDK defects; --component docs or --component skills with --doc and --expected when documentation contradicts reality; --type feature-request when the finding is "not supported". Then continue the user's task with the workaround — never block on the report, and never file feedback for problems in the user's own app code or config. Full flag reference: the insforge-cli skill's Feedback section.

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