feat(ms-ai-architect): R22 decision-b Enhet 3 — Status-backfill 25 none + ai-act dual-header-dedup 4 (Missing Status/Last-updated 29+4→0) [skip-docs]
To operasjoner, én økt (⊥ R7), begge ren metadata-normalisering (verdi aldri fabrikkert). Premiss-korreksjon (ground truth 2026-07-07): roadmap sa «27 none + 4 ai-act». Målt: 29 mangler bold **Status:** = 25 rene none + 4 ai-act (plain Status: GA). De «27» inkluderte 2 for mye — 2 filer (custom-dashboards-ai-operations, zero-trust-ai-services) har bold **Status:** KUN forbi byte 500 (present for full-fil-audit, usynlig for 500B header-parser) → egen header-slanking-residual (§8-register), utenfor Enhet 3. Op A — Status-backfill 25 rene none: utvidet backfill-status.mjs MANIFEST 14→39 (samme statusForFile + insertMetaField + hard per-fil-invariant, idempotent skip på de 14 R21-gjorte). Alle 25 → **Status:** Established Practice (ingen matcher template|matrix|benchmarks|register). Diff +25/-0. Op B — ai-act dual-header-dedup (4 filer): ny driver dedup-plain-header.mjs + 2 rene primitiver i transform.mjs — boldifyPlainField (plain→bold, verdi bevart byte-eksakt, header-scoped, idempotent) + dropRedundantPlainField (sletter plain KUN når bold m/ identisk verdi beviser redundans; kaster ved avvik/manglende bold). Per fil: plain Last updated: + Status: GA → bold (2026-06-18/2026-02, GA bevart), redundant plain Category: fjernet. Hard per-fil-invariant (net -1 linje, begge felt bold m/ bevart verdi, ingen plain-header igjen, body byte-identisk). Diff -12/+8. Verifisering: test-backfill-status 8/8 + test-dedup-plain-header 13/13; audit Missing Status 29→0, Missing English Last updated 4→0; skills-diff 29 filer +33/-12 (kun **Status:** + 8 bold-swaps), diff-kontekst inspisert per fil; begge drivere idempotent (re-run 0 writes); suite 806/806 exit 0; none=8 uendret (Enhet 4).
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**Relevans:** Azure Machine Learning, MLOps-implementering, FinOps for AI
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/machine-learning/concept-ml-pipelines
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**Status:** Established Practice
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## Innhold
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**Confidence:** HIGH (basert på offisiell Microsoft-dokumentasjon)
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/foundry/concepts/observability
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**Status:** Established Practice
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## Innhold
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**Konfidensgrad:** Høy (basert på 18 MCP-kilder fra Microsoft Learn)
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**Type:** reference
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**Source:** https://learn.microsoft.com/python/api/overview/azure/ai-evaluation-readme
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**Status:** Established Practice
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---
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**Confidence:** 95% (High — bygger på offisiell Microsoft-dokumentasjon og Azure-referansearkitekturer)
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/machine-learning/concept-responsible-ai-dashboard
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**Status:** Established Practice
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## Innhold
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**Forfattet av:** Cosmo Skyberg, Senior Microsoft AI Solution Architect
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/machine-learning/concept-onnx
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**Status:** Established Practice
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## Innhold
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**Forfatter:** Cosmo Skyberg, Senior Microsoft AI Solution Architect
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/aks/concepts-machine-learning-ops
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**Status:** Established Practice
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## Innhold
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**Confidence:** High (basert på offisiell Microsoft dokumentasjon, Microsoft Foundry SDK, og MLflow 3)
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/foundry/concepts/observability
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**Status:** Established Practice
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---
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**Confidence:** HIGH — Basert på offisiell Microsoft Learn dokumentasjon (8 MCP-oppslag, 16 kilder)
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/machine-learning/concept-enterprise-security
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**Status:** Established Practice
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---
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**Konfidensgradering:** ⭐⭐⭐⭐⭐ (Verifisert mot offisiell Microsoft-dokumentasjon)
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/machine-learning/overview-what-is-azure-machine-learning
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**Status:** Established Practice
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## Innhold
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/machine-learning/concept-model-management-and-deployment
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**Category:** MLOps & GenAIOps
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**Status:** Established Practice
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**Last updated:** 2026-04
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**Konfidensgrad:** ⭐⭐⭐⭐⭐ (Verifisert mot offisiell Microsoft-dokumentasjon)
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/machine-learning/concept-model-monitoring
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**Status:** Established Practice
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---
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**Confidence:** 🟢 Høy (basert på offisiell Microsoft-dokumentasjon fra Microsoft Foundry og Azure Machine Learning)
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/machine-learning/prompt-flow/migrate-prompt-flow-to-agent-framework
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**Status:** Established Practice
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**Confidence:** 95% (basert på offisiell Microsoft-dokumentasjon og Azure Machine Learning-referanser)
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**Type:** reference
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**Source:** https://learn.microsoft.com/azure/machine-learning/concept-responsible-ai-dashboard
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**Status:** Established Practice
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