A scalable parallel Progressive Hedging Algorithm for stochastic cluster-scenario-based mixed-integer models

Autor/a

Castells Gasia, Joan Pau

Otros/as autores/as

Mateo Fornés, Jordi

Pagès Bernaus, Adela

Universitat de Lleida. Escola Politècnica Superior

Fecha de publicación

2019-12-19T19:04:30Z

2019-12-19T19:04:30Z

2019-07



Resumen

This work presents a general parallelisation of the Progressive Hedging algorithm to coordinate the resolution of two-stage and multi-stage stochastic mixed-integer problems without (binary or integer) variables in the first stage. We report a benchmark study between the computational improvements using our proposal and the parallel version (using pyro) of the Pyomo integrated Progressive Hedging. Moreover, we study the influence of a quadratic term to accelerate the convergence, different scenario-cluster formation and several step update policies by solving different instances using our proposal.

Tipo de documento

Proyecto / Trabajo fin de carrera o de grado

Lengua

Inglés

Materias y palabras clave

Progressive Hedging Algorithm; Stochastic mixed-integer optimization; Parallelization; Algorismes; Paral·lelisme (Informàtica)

Derechos

cc-by-nc-nd

http://creativecommons.org/licenses/by-nc-nd/4.0/

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