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Pattern Analysis Agent

Applies K-Means clustering to defect data across severity, location, subcontractor, date, temperature, and humidity features. Identifies actionable patterns with confidence scores: (1) Tile defects correlate with winter months (87% confidence), (2) Subcontractor performance declines at 4+ concurrent projects (92% confidence), (3) Pre-commissioning inspections reduce HVAC defects 67% (94% confidence).

Agent ID
pattern-analyst
Sector Social Housing Construction & Renovation
Status
Operational

Problem Statement

The challenge addressed

Hidden patterns in quality data—correlations between defect types, subcontractors, weather, timing—are invisible to manual analysis but critical for preventing systemic quality issues.

Core Logic

How the agent solves it

Applies K-Means clustering to defect data across severity, location, subcontractor, date, temperature, and humidity features. Identifies actionable patterns with confidence scores: (1) Tile defects co...

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