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Human-Centered Multi-Objective Flow Shop Scheduling with Missing Operations under an Industry 5.0 Perspective (#2693)

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Date of Conference

July 15-17, 2026

Published In

"Engineering without Borders: Artificial Intelligence, Knowledge, Innovation, and Alliances for a Future from the Americas"

Location of Conference

Santiago (Chile)

Authors

Castellano, Camila

Marcenac, Felicitas

Yuraszeck, Francisco

Rossit, Diego

Rossit, Daniel Alejandro

Abstract

Industry 5.0 is transforming production planning by integrating human factors into decision-making. This paper addresses a multi-objective permutation flow shop scheduling problem with missing operations, where jobs may skip machines and processing times depend on worker-related factors such as skill level, age, learning, and forgetting. The model simultaneously minimizes makespan, total tardiness, and total earliness. To solve the problem, an NSGA-II-based evolutionary algorithm with permutation encoding was implemented. Computational experiments with 0%, 20%, and 40% missing operations show that greater route flexibility generally improves schedule quality, reducing makespan by 4.41% to 27.71% and total earliness by 18.11% to 77.53% in compromise solutions, while tardiness shows a more heterogeneous behavior. The results also indicate that missing operations reshape the trade-off structure among objectives rather than simply reducing problem size. Overall, the study provides a human-centered scheduling approach aligned with Industry 5.0 and relevant for production environments with workforce heterogeneity and route variability.

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