Tractable Identification of Strategic Network Formation Models with Unobserved Heterogeneity

Fuente: arXiv
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Main Authors: Gao, Wayne Yuan, Li, Ming, Xu, Zhengyan
Format: Preprint
Published: 2026
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author Gao, Wayne Yuan
Li, Ming
Xu, Zhengyan
author_facet Gao, Wayne Yuan
Li, Ming
Xu, Zhengyan
contents We develop a tractable identification approach for strategic network formation models with both strategic link interdependence and individual unobserved heterogeneity (fixed effects). The key challenge is that endogenous network statistics (e.g. number of common friends) enter the link formation equation, while the mapping from model primitives to equilibrium network structure is generally intractable. Our approach sidesteps this difficulty using a ``bounding-by-$c$'' technique that treats endogenous covariates as random variables and exploits monotonicity restrictions to obtain identifying information. A central contribution is to develop a spectrum of fixed-effects handling strategies based on subnetwork configurations: tetrad-based restrictions that difference out all individual fixed effects, triad-based and weighted restrictions that combine ``difference-out'' and ``integrate-out'' steps by differencing out some fixed effects and profiling over the remainder conditional on observed characteristics, and general weighted cycle-based restrictions that unify these cases. We also provide point identification results. Preliminary simulations show that the approach can deliver informative bounds on the structural parameters.
format Preprint
id arxiv_https___arxiv_org_abs_2603_08634
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Tractable Identification of Strategic Network Formation Models with Unobserved Heterogeneity
Gao, Wayne Yuan
Li, Ming
Xu, Zhengyan
Econometrics
We develop a tractable identification approach for strategic network formation models with both strategic link interdependence and individual unobserved heterogeneity (fixed effects). The key challenge is that endogenous network statistics (e.g. number of common friends) enter the link formation equation, while the mapping from model primitives to equilibrium network structure is generally intractable. Our approach sidesteps this difficulty using a ``bounding-by-$c$'' technique that treats endogenous covariates as random variables and exploits monotonicity restrictions to obtain identifying information. A central contribution is to develop a spectrum of fixed-effects handling strategies based on subnetwork configurations: tetrad-based restrictions that difference out all individual fixed effects, triad-based and weighted restrictions that combine ``difference-out'' and ``integrate-out'' steps by differencing out some fixed effects and profiling over the remainder conditional on observed characteristics, and general weighted cycle-based restrictions that unify these cases. We also provide point identification results. Preliminary simulations show that the approach can deliver informative bounds on the structural parameters.
title Tractable Identification of Strategic Network Formation Models with Unobserved Heterogeneity
topic Econometrics
url https://arxiv.org/abs/2603.08634