Clearing Payments in Dynamic Financial Networks

Fuente: arXiv
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Hauptverfasser: Calafiore, Giuseppe C., Fracastoro, Giulia, Proskurnikov, Anton V.
Format: Preprint
Veröffentlicht: 2022
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author Calafiore, Giuseppe C.
Fracastoro, Giulia
Proskurnikov, Anton V.
author_facet Calafiore, Giuseppe C.
Fracastoro, Giulia
Proskurnikov, Anton V.
contents This paper proposes a novel dynamical model for determining clearing payments in financial networks. We extend the classical Eisenberg-Noe model of financial contagion to multiple time periods, allowing financial operations to continue after possible initial pseudo defaults, thus permitting nodes to recover and eventually fulfil their liabilities. Optimal clearing payments in our model are computed by solving a suitable linear program, both in the full matrix payments case and in the pro-rata constrained case. We prove that the proposed model obeys the \emph{priority of debt claims} requirement, that is, each node at every step either pays its liabilities in full, or it pays out all its balance. In the pro-rata case, the optimal dynamic clearing payments are unique, and can be determined via a time-decoupled sequential optimization approach.
format Preprint
id arxiv_https___arxiv_org_abs_2201_12898
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Clearing Payments in Dynamic Financial Networks
Calafiore, Giuseppe C.
Fracastoro, Giulia
Proskurnikov, Anton V.
Optimization and Control
Computational Engineering, Finance, and Science
Systems and Control
Mathematical Finance
Risk Management
This paper proposes a novel dynamical model for determining clearing payments in financial networks. We extend the classical Eisenberg-Noe model of financial contagion to multiple time periods, allowing financial operations to continue after possible initial pseudo defaults, thus permitting nodes to recover and eventually fulfil their liabilities. Optimal clearing payments in our model are computed by solving a suitable linear program, both in the full matrix payments case and in the pro-rata constrained case. We prove that the proposed model obeys the \emph{priority of debt claims} requirement, that is, each node at every step either pays its liabilities in full, or it pays out all its balance. In the pro-rata case, the optimal dynamic clearing payments are unique, and can be determined via a time-decoupled sequential optimization approach.
title Clearing Payments in Dynamic Financial Networks
topic Optimization and Control
Computational Engineering, Finance, and Science
Systems and Control
Mathematical Finance
Risk Management
url https://arxiv.org/abs/2201.12898