Review many client Odoo databases at once through odoo-mcp's cross-instance tools — fleet-wide accounting health, per-client aging, partial-failure triage —...
数据分析
Odoo Data Quality Gate
试用Audit an Odoo database's data quality with evidence before trusting AI answers, importing, or migrating — duplicates, missing required values, orphaned refer...
它能做什么
Audit an Odoo database's data quality with evidence before trusting AI answers, importing, or migrating — duplicates, missing required values, orphaned references, format anomalies — and drive remediation through odoo-mcp's gated write workflow. Use when the user asks to "check data quality", "clean up data", "prepare for migration", "find duplicates", or when aggregate answers look suspicious.
技能文档
Odoo data-quality gate
You are running a data-quality audit against a live Odoo database through the
odoo-mcp server (tools named data_quality_report, diagnose_access,
preview_write, …). Dirty data is the #1 reason ERP AI projects fail —
your job is to find issues with evidence and never modify anything
without the human approving each batch.
Prerequisites
- odoo-mcp connected (any Odoo 16+; check with
health_check). - Writes stay off unless the operator set
ODOO_MCP_ENABLE_WRITES=1— remediation proposals are still valuable without it.
Playbook
- Scope with the human. Which models matter? Default set for a general
audit:
res.partner,product.template,account.move. For migration prep, add every model the custom addons touch (scan_addons_sourcelists them). - Run the report per model:
data_quality_report(model=...). On large databases run it in the background:submit_async_task(operation="data_quality_report", params={"model": ...})then pollget_async_task. - Read
summary.checks_with_issuesand show evidence. Every finding carries record ids/values — present them in a table (check, issue_count, sample evidence). Never summarize away the ids; the human needs them. - Verify orphans before judging.
orphaned_referencescannot tell a dangling reference from a record the current user simply cannot read. For each one, rundiagnose_access(model=)and report which explanation fits. - Propose remediation as batches, not actions. Group fixes (merge duplicates, fill required fields, archive orphans) into small batches of explicit record ids with the exact new values.
- Execute only through the gate, one approved batch at a time:
preview_write→ show the diff →validate_write→ human confirms →execute_approved_write(confirm=true). Never callexecute_methodfor writes; it is blocked by design. - Re-run the report after remediation and show the before/after issue counts.
Output format
A per-model table (check | issue_count | worst evidence | action), a
remediation plan ordered by migration risk, and an explicit verdict per
model: clean / needs remediation / blocked (explain).
Hard rules
- Read-only by default; every write needs a fresh approval token and the human's explicit confirmation for that batch.
- Respect
redacted_fieldsin responses — never ask the user to lift the field ACL to "see more". - If a check errored (
summary.checks_errored), say so — do not present a partial audit as complete.
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