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CALYPSO: Forecasting and Analyzing MRSA Infection Patterns with Community and Healthcare Transmission Dynamics

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arxiv 2508.13548 v1 pith:7Y47HXEP submitted 2025-08-19 cs.LG

CALYPSO: Forecasting and Analyzing MRSA Infection Patterns with Community and Healthcare Transmission Dynamics

classification cs.LG
keywords mrsaforecastinghealthcarecalypsoinfectionmodelscommunitydynamics
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Methicillin-resistant Staphylococcus aureus (MRSA) is a critical public health threat within hospitals as well as long-term care facilities. Better understanding of MRSA risks, evaluation of interventions and forecasting MRSA rates are important public health problems. Existing forecasting models rely on statistical or neural network approaches, which lack epidemiological interpretability, and have limited performance. Mechanistic epidemic models are difficult to calibrate and limited in incorporating diverse datasets. We present CALYPSO, a hybrid framework that integrates neural networks with mechanistic metapopulation models to capture the spread dynamics of infectious diseases (i.e., MRSA) across healthcare and community settings. Our model leverages patient-level insurance claims, commuting data, and healthcare transfer patterns to learn region- and time-specific parameters governing MRSA spread. This enables accurate, interpretable forecasts at multiple spatial resolutions (county, healthcare facility, region, state) and supports counterfactual analyses of infection control policies and outbreak risks. We also show that CALYPSO improves statewide forecasting performance by over 4.5% compared to machine learning baselines, while also identifying high-risk regions and cost-effective strategies for allocating infection prevention resources.

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Cited by 1 Pith paper

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  1. Are LLMs Ready for Neural-integrated Mechanistic Modeling? A Benchmark and Agentic Framework

    cs.LG 2026-02 reject novelty 6.0

    A benchmark (NIMM) and agentic framework (NIMMGen) for LLM-generated neural-integrated mechanistic models, reporting strong but possibly inflated RMSE gains.