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arXiv · 2609.09021

Linearly Constrained Generalized Linear Models with Applications in Origin-Destination Estimation

Abstract

We show that data censored by linear constraints can be fit within the generalized linear model (GLM) framework, recovering the expected latent counts together with their uncertainty in a single Fisher-scoring procedure. Our motivating application is origin-destination (OD) estimation in transportation studies, where the latent data are the OD trip demands and constraints are either origin and destination marginal counts per zone, as in OD matrix estimation, or observed link counts, as in network tomography. Casting the problem as a linearly constrained GLM lets us treat, within one model, three features that arise routinely in practice: unmatched constraints, trip predictors such as costs, and prior information such as diagonal dominance and seed counts. We demonstrate the methodology in synthetic and small scale studies and in a larger case study based on simulated data from the BO4Mob study.

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BibTeXRIS

Likun Chou, Luis Carvalho. 2026-09-08. Linearly Constrained Generalized Linear Models with Applications in Origin-Destination Estimation. https://arxiv.org/abs/2609.09021

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