Sustainable Efficiency Optimization for Synchronously Integrated Urban Rail Transit: SIMILP—A Hybrid Enhanced Approach Balancing Economy, Safety, and Capacity

Thai Nguyen , Hoang Minh Luu , Xuan Hong Le , Van Dong Doan

Urban Rail Transit ›› : 1 -28.

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Urban Rail Transit ›› :1 -28. DOI: 10.1007/s40864-026-00286-8
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Sustainable Efficiency Optimization for Synchronously Integrated Urban Rail Transit: SIMILP—A Hybrid Enhanced Approach Balancing Economy, Safety, and Capacity
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Abstract

Integrated urban rail transit (IUR) systems are vital for the resilience of global megacities; however, integrating heterogeneous networks presents profound challenges due to technical disparities to operational paralysis. This paper proposes a sustainable efficiency assessment framework utilizing a synchronous integration mixed-integer linear programming (SIMILP) model to reconcile economic revenue with technical safety constraints, effectively addressing limitations of traditional MILP models in managing nonlinear technical compatibility. We established a multi-criteria compatibility matrix,

Kfsoe
, by quantifying safety integrity levels (SIL), grades of automation (GoA), and type of alignment (TOA) through a geometric mean methodology. A Hybrid Quadratic Programming (QP) model, augmented by a Penalty Function and executed via SIMILP model, was developed to optimize operational frequencies (
Xopt
) across ten distinct rail modes, including Metro (MS, MX), Commuter Rail (CS, CC), and Light Rail (LL). The study identifies a “Technical Gold Standard” in the MS-CS corridor (100% compatibility) while revealing “Technical Valleys” (efficiency < 30%) in lines such as MX due to safety-risk thresholds. Comparative analysis reveals that while conventional cost-minimization models lead to service shutdowns for branch lines, our SIMILP-based Enhanced Hybrid model restores 100% connectivity with an MX line capacity reaching 45 trips/h. To achieve sustainability, the model accepts a 39.28% increase in net operating costs, reviving frequencies from 0 to 27 trips/h for low-revenue corridors while anchoring capacity of decisive lines. This research proves that synchronous integration urban rail transit (SIUR) is a transition, providing a scalable tool to harmonize technical rigor with socioeconomic welfare, ensuring the high performance of assets is not compromised by system components.

Keywords

Integrated urban rail transit / Heterogeneous rail networks / Synchronous integration mixed-integer linear programming / Hybrid enhanced optimization / Quadratic programming / Network resilience

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Thai Nguyen, Hoang Minh Luu, Xuan Hong Le, Van Dong Doan. Sustainable Efficiency Optimization for Synchronously Integrated Urban Rail Transit: SIMILP—A Hybrid Enhanced Approach Balancing Economy, Safety, and Capacity. Urban Rail Transit 1-28 DOI:10.1007/s40864-026-00286-8

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