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system2025Smart CitiesPredictive ML

AION

Predictive traffic intelligence for emergency mobility

AION
AIONVerified project view
0.971Test R²
44.5 veh/hTest MAE
17.4%Test sMAPE

01

Problem

Reactive navigation cannot anticipate a concert ending, announced roadworks or future city events that will change emergency accessibility.

02

Approach

A robust baseline, PCA embeddings, CatBoost and sigmoid shrink predict deviations from normality, while an LLM pipeline structures external events.

03

Scope

The public repository documents the capstone system and its roadmap; it does not present an operational emergency-service deployment.

Transparency

Limitations

Performance is weaker during low-signal early-morning hours, and API/cloud deployment remains on the roadmap.

Evidence

Sources

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