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Articles

A novel multiple objective whale optimization for time-cost-quality tradeoff in non-unit repetitive projects

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References

  • Agrama FA. 2014. Multi-objective genetic optimization for scheduling a multi-storey building. Autom Constr. 44:119–128.
  • Akbari R, Hedayatzadeh R, Ziarati K, Hassanizadeh B. 2012. A multi-objective artificial bee colony algorithm. Swarm Evol Comput. 2:39–52.
  • Ali M, Siarry P, Pant M. 2011. An efficient Differential evolution based algorithm for solving multi-objective optimization problems. Eur J Oper Res. 217(2):404–416.
  • Altuwaim A, El-Rayes K. 2018. Optimizing the scheduling of repetitive construction to minimize interruption cost. J Constr Eng Manage. 144(7):04018051.
  • Babu AJG, Suresh N. 1996. Project management with time, cost, and quality considerations. Eur J Oper Res. 88(2):320–327.
  • Deb K, Pratap A, Agarwal S, Meyarivan T. 2002. A fast and elitist multiobjective genetic algorithm: NSGA-II. IEEE Trans Evol Computat. 6(2):182–197.
  • Elaziz MA, Mirjalili S. 2019. A hyper-heuristic for improving the initial population of whale optimization algorithm. Knowledge Based Syst. 172:42–63.
  • El-Rayes K, Kandil A. 2005. Time-cost-quality trade-off analysis for highway construction. J Constr Eng Manage. 131(4):477–486.
  • El-Rayes K, Moselhi O. 2001. Optimizing resource utilization for repetitive construction projects. J Constr Eng Manage. 127(1):18–27.
  • Ezeldin AS, Ahmed S. 2009. Hybrid time-cost optimization of nonserial repetitive construction projects. J Constr Eng Manage. 135(1):42–55.
  • Fan S-L, Sun K-S, Wang Y-R. 2012. GA optimization model for repetitive projects with soft logic. Autom Constr. 21:253–261.
  • Ghodsi R, Skandari MR, Allahverdiloo M, Iranmanesh SH. 2009. A new practical model to trade-off time, cost, and quality of a project. Aust J Basic Appl Sci. 3(4):3741–3756.
  • Got A, Moussaoui A, Zouache D. 2020. A guided population archive whale optimization algorithm for solving multiobjective optimization problems. Expert Syst Appl. 141:112972.
  • Hamta N, Ehsanifar M, Sarikhani J. 2021. Presenting a goal programming model in the time-cost-quality trade-off. Int J Construct Manage. 21(1):1–11.
  • Heravi G, Moridi S. 2019. Resource-constrained time-cost tradeoff for repetitive construction projects. KSCE J Civ Eng. 23(8):3265–3274.
  • Hsie M, Chang C-J, Yang IT, Huang C-Y. 2009. Resource-constrained scheduling for continuous repetitive projects with time-based production units. Autom Constr. 18(7):942–949.
  • Hu W, He X. 2014. An innovative time-cost-quality tradeoff modeling of building construction project based on resource allocation. Sci World J. 2014: 673248.
  • Huang R-y, Sun K-S. 2005. System development for non-unit based repetitive project scheduling. Autom Constr. 14(5):650–665.
  • Huang R-y, Sun K-S. 2006. Non-unit-based planning and scheduling of repetitive construction projects. J Constr Eng Manage. 132(6):585–597.
  • Huang Y, Zou X, Zhang L. 2016. Genetic algorithm–based method for the deadline problem in repetitive construction projects considering soft logic. J Manage Eng. 32(4):04016002.
  • Hyari K, El-Rayes K. 2006. Optimal planning and scheduling for repetitive construction projects. J Manage Eng. 22(1):11–19.
  • Hyari KH, El‐Rayes K, El‐Mashaleh M. 2009. Automated trade‐off between time and cost in planning repetitive construction projects. Construct Manage Econ. 27(8):749–761. Mismatch]
  • Hegazy T, Nagib W. 2001. Cost optimization in projects with repetitive nonserial activities. J Constr Eng Manage. 127(3):183–191.
  • Khang DB, Myint YM. 1999. Time, cost and quality trade-off in project management: a case study. Int J Project Manage. 17(4):249–256.
  • Kris GM, Amy P. 2003. Comparison of linear scheduling model and repetitive scheduling method. J Constr Eng Manage. 129(1):56–64.
  • Li A-D, He Z. 2020. Multiobjective feature selection for key quality characteristic identification in production processes using a nondominated-sorting-based whale optimization algorithm. Comput Ind Eng. 149:106852.
  • Li Y, Han M, Guo Q. 2020. Modified Whale optimization algorithm based on tent chaotic mapping and its application in structural optimization. KSCE J Civ Eng. 24(12):3703–3713.
  • Liu S-S, Wang C-J. 2012. Optimizing linear project scheduling with multi-skilled crews. Autom Constr. 24:16–23.
  • Long LD, Ohsato A. 2009. A genetic algorithm-based method for scheduling repetitive construction projects. Autom Constr. 18(4):499–511.
  • Luong D-L, Tran D-H, Nguyen PT. 2018. Optimizing multi-mode time-cost-quality trade-off of construction project using opposition multiple objective difference evolution. Int J Construct Manage. 0(0):1–13.
  • Maghsoudlou H, Afshar-Nadjafi B, Niaki STA. 2016. A multi-objective invasive weeds optimization algorithm for solving multi-skill multi-mode resource constrained project scheduling problem. Comput Chem Eng. 88:157–169.
  • Mirjalili S, Lewis A. 2016. The whale optimization algorithm. Adv Eng Softw. 95:51–67.
  • Moreno F, Orozco F, Rojas O, Senior B, Poshdar M, Forcael E. 2020. A fixed start scheduling approach for repetitive construction projects. KSCE J Civ Eng. 24(6):1671–1682.
  • Nabipoor Afruzi E, Najafi AA, Roghanian E, Mazinani M. 2014. A Multi-Objective Imperialist Competitive Algorithm for solving discrete time, cost and quality trade-off problems with mode-identity and resource-constrained situations. Comput Oper Res. 50:80–96.
  • Photios GI, Yang IT. 2016. Repetitive scheduling method: requirements, modeling, and implementation. J Constr Eng Manage. 142(5):04016002.
  • Rana N, Latiff MSA, Abdulhamid S. i M, Chiroma H. 2020. Whale optimization algorithm: a systematic review of contemporary applications, modifications and developments. Neural Comput Applic. 32(20):16245–16277.
  • Razek RHAE, Diab AM, Hafez SM, Aziz RF. 2010. Time-cost-quality trade-off software by using simplified genetic algorithm for typical repetitive construction projects. Int J Civil Environ Eng. 4(1):22–31.
  • Senouci AB, Mubarak SA. 2016. Multiobjective optimization model for scheduling of construction projects under extreme weather. J Civil Eng Manage. 22(3):373–381.
  • Sharma K, Trivedi MK. 2020. Latin hypercube sampling-based NSGA-III optimization model for multimode resource constrained time–cost–quality–safety trade-off in construction projects. Int J Construct Manage. DOI: 10.1080/15623599.2020.1843769.
  • Tavakolan M, Nikoukar S. 2019. Developing an optimization financing cost-scheduling trade-off model in construction project. Int J Construct Manage. DOI: 10.1080/15623599.2019.1619439.
  • Tomar A, Bansal VK. 2019. Generation, visualization, and evaluation schedule of repetitive construction projects using GIS. Int J Construct Manage. DOI: 10.1080/15623599.2019.1683691.
  • Tomczak M, Jaśkowski P. 2020. New approach to improve general contractor crew’s work continuity in repetitive construction projects. J Constr Eng Manage. 146(5):04020043.
  • Tran D-H, Cheng M-Y, Cao M-T. 2013. Chaotic initialized multiple objective differential evolution with adaptive mutation strategy (CA-MODE) for construction project time-cost-quality trade-off. J Civil Eng Manage. 22(2):210–233.
  • Tran D-H, Chou J-S, Luong D-L. 2019. Multi-objective symbiotic organisms optimization for making time-cost tradeoffs in repetitive project scheduling problem. J Civil Eng Manage. 25(4):322–339.
  • Tran D-H, Chou J-S, Luong D-L. 2020. Optimizing non-unit repetitive project resource and scheduling by evolutionary algorithms. Operation Res. 191:1–27.
  • Wang L, Singh C. 2009. Reserve-constrained multiarea environmental/economic dispatch based on particle swarm optimization with local search. Eng Appl Artif Intell. 22(2):298–307.
  • Wang T, Abdallah M, Clevenger C, Monghasemi S. 2021. Time–cost–quality trade-off analysis for planning construction projects. Eng Constr Archit Manage. 28(1):82–100.
  • Wang Y-N, Wu L-H, Yuan X-F. 2010. Multi-objective self-adaptive differential evolution with elitist archive and crowding entropy-based diversity measure. Soft Comput. 14(3):193–209. (in English),
  • Wu LH, Wang YN, Yuan XF, Zhou SW. 2010. Environmental/economic power dispatch problem using multi-objective differential evolution algorithm. Electr Power Syst Res. 80(9):1171–1181.
  • Yang I-T. 2007. Using elitist particle swarm optimization to facilitate bicriterion time-cost trade-off analysis. J Constr Eng Manage. 133(7):498–505.
  • Zeng N, Song D, Li H, You Y, Liu Y, Alsaadi FE. 2021. A competitive mechanism integrated multi-objective whale optimization algorithm with differential evolution. Neurocomputing. 432:170–182.
  • Zhang H, Xing F. 2010. Fuzzy-multi-objective particle swarm optimization for time–cost–quality tradeoff in construction. Autom Constr. 19(8):1067–1075.
  • Zhang L-h, Zou X. 2015. Repetitive project scheduling: theory and methods. Amsterdam, Netherlands: Elsevier Inc.
  • Zhang L, Du J, Zhang S. 2014. Solution to the time-cost-quality trade-off problem in construction projects based on immune genetic particle swarm optimization. J Manage Eng. 30(2):163–172.
  • Zitzler E, Thiele L. 1999. Multiobjective evolutionary algorithms: a comparative case study and the strength Pareto approach. IEEE Trans Evol Computat. 3(4):257–271.
  • Zitzler E, Thiele L, Laumanns M, Fonseca CM, Fonseca V. G d. 2003. Performance assessment of multiobjective optimizers: an analysis and review. IEEE Trans Evol Computat. 7(2):117–132.
  • Zou X, Zhang L. 2020. A constraint programming approach for scheduling repetitive projects with atypical activities considering soft logic. Autom Constr. 109:102990.
  • Zou X, Wu G, Zhang Q. 2020. Work continuity constraints in repetitive project scheduling considering soft logic. Eng Constr Archit Manage. DOI: 10.1108/ECAM-11-2019-0595.

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