Optimizing Retaining Walls through Reinforcement Learning Approaches and Metaheuristic Techniques

Author:

Lemus-Romani José1ORCID,Ossandón Diego2ORCID,Sepúlveda Rocío2ORCID,Carrasco-Astudillo Nicolás1ORCID,Yepes Victor3ORCID,García José2ORCID

Affiliation:

1. Pontificia Universidad Católica de Chile, Facultad de Ingeniería, Escuela de Construcción Civil, Santiago 7820436, Chile

2. Pontificia Universidad Católica de Valparaíso, Facultad de Ingeniería, Escuela de Ingeniería de Construcción y Transporte, Valparaíso 2362807, Chile

3. Universitat Politècnica de València, Institute of Concrete Science and Technology (ICITECH), 46022 València, Spain

Abstract

The structural design of civil works is closely tied to empirical knowledge and the design professional’s experience. Based on this, adequate designs are generated in terms of strength, operability, and durability. However, such designs can be optimized to reduce conditions associated with the structure’s design and execution, such as costs, CO2 emissions, and related earthworks. In this study, a new discretization technique based on reinforcement learning and transfer functions is developed. The application of metaheuristic techniques to the retaining wall problem is examined, defining two objective functions: cost and CO2 emissions. An extensive comparison is made with various metaheuristics and brute force methods, where the results show that the S-shaped transfer functions consistently yield more robust outcomes.

Publisher

MDPI AG

Subject

General Mathematics,Engineering (miscellaneous),Computer Science (miscellaneous)

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