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Schedule optimization for scattered repetitive projects
Abstract This paper addresses a challenging category of repetitive projects that involves scattered sites, such as rehabilitation programs for multiple bridges, multiple schools, etc. The paper proposes a schedule optimization framework with four novel components: (1) scheduling algorithm that efficiently schedules the crews among scattered sites, considering the activities independent site sequences and the time and cost of moving among sites; (2) cost optimization that considers deadlines, crew limits, and optional construction methods to determine the activities’ optimum crews, methods, and site sequences; (3) interactive documentation of all progress events to support re-scheduling during construction; and (4) legible schedule representation of scattered projects. A computer prototype was developed and validated on a real-life case study and literature examples. Activity-specific site sequences proved uniquely flexible to optimize the scheduling of scattered projects without extra cost. The proposed framework enables efficient delivery planning of large infrastructure rehabilitation program within the execution constraints.
Highlights This paper identifies the unique scheduling challenges of scattered repetitive projects (SRPs). Based on a field study, SRPs require activity-independent site sequences and productivity factors for operational facilities. A cost optimization framework was developed to determine the optimum crews, methods, and activity sequences that minimize cost. The framework has functions to record progress events and develop optimum corrective-action plans. A real case study proved the powerful optimization of the developed framework.
Schedule optimization for scattered repetitive projects
Abstract This paper addresses a challenging category of repetitive projects that involves scattered sites, such as rehabilitation programs for multiple bridges, multiple schools, etc. The paper proposes a schedule optimization framework with four novel components: (1) scheduling algorithm that efficiently schedules the crews among scattered sites, considering the activities independent site sequences and the time and cost of moving among sites; (2) cost optimization that considers deadlines, crew limits, and optional construction methods to determine the activities’ optimum crews, methods, and site sequences; (3) interactive documentation of all progress events to support re-scheduling during construction; and (4) legible schedule representation of scattered projects. A computer prototype was developed and validated on a real-life case study and literature examples. Activity-specific site sequences proved uniquely flexible to optimize the scheduling of scattered projects without extra cost. The proposed framework enables efficient delivery planning of large infrastructure rehabilitation program within the execution constraints.
Highlights This paper identifies the unique scheduling challenges of scattered repetitive projects (SRPs). Based on a field study, SRPs require activity-independent site sequences and productivity factors for operational facilities. A cost optimization framework was developed to determine the optimum crews, methods, and activity sequences that minimize cost. The framework has functions to record progress events and develop optimum corrective-action plans. A real case study proved the powerful optimization of the developed framework.
Schedule optimization for scattered repetitive projects
Hegazy, Tarek (author) / Kamarah, Ehab (author)
2021-11-03
Article (Journal)
Electronic Resource
English
Resources Deployment Optimization in Scattered Repetitive Projects
Springer Verlag | 2023
|Generation, visualization, and evaluation schedule of repetitive construction projects using GIS
Taylor & Francis Verlag | 2022
|Application of Weibull Analysis to Evaluate and Forecast Schedule Performance in Repetitive Projects
Online Contents | 2016
|Scheduling of Repetitive Projects with Cost Optimization
Online Contents | 1993
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