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cs.LG2026

Enactor: From Traffic Simulators to Surrogate World Models

Yash Ranjan, Rahul Sengupta, Anand Rangarajan +1

Traffic microsimulators are widely used to evaluate road network performance under various ``what-if" conditions. However, the behavior models controlling the actions of the actors…

cs.LG2025

MTDT: A Multi-Task Deep Learning Digital Twin

Nooshin Yousefzadeh, Rahul Sengupta, Yashaswi Karnati +2

Traffic congestion has significant impacts on both the economy and the environment. Measures of Effectiveness (MOEs) have long been the standard for evaluating traffic intersection…

cs.LG2025

Guaranteed Conditional Diffusion: 3D Block-based Models for Scientific Data Compression

Jaemoon Lee, Xiao Li, Liangji Zhu +2

This paper proposes a new compression paradigm -- Guaranteed Conditional Diffusion with Tensor Correction (GCDTC) -- for lossy scientific data compression. The framework is based o…

cs.LG2024

Foundation Model for Lossy Compression of Spatiotemporal Scientific Data

Xiao Li, Jaemoon Lee, Anand Rangarajan +1

We present a foundation model (FM) for lossy scientific data compression, combining a variational autoencoder (VAE) with a hyper-prior structure and a super-resolution (SR) module.…

cs.LG2024

Attention Based Machine Learning Methods for Data Reduction with Guaranteed Error Bounds

Xiao Li, Jaemoon Lee, Anand Rangarajan +1

Scientific applications in fields such as high energy physics, computational fluid dynamics, and climate science generate vast amounts of data at high velocities. This exponential…

cs.LG2024

Graph Attention Network for Lane-Wise and Topology-Invariant Intersection Traffic Simulation

Nooshin Yousefzadeh, Rahul Sengupta, Yashaswi Karnati +2

Traffic congestion has significant economic, environmental, and social ramifications. Intersection traffic flow dynamics are influenced by numerous factors. While microscopic traff…