[1] Rao, K., Janardhana, G. (2014). The Effect of Rescheduling on Operating Performance of the Supply Chain under Disruption-A Literature Review, Applied Mechanics and Materials, 592-594: 2704-2710.
[2] Vieira, G.E., Herrmann, J.W., Lin, E. (2003). Rescheduling manufacturing systems: a framework of strategies, policies, and methods, Journal of Scheduling, 6(1): 39-62.
[3] دانشآموز، فاطمه؛ جباری، مونا؛ فتاحی، پرویز (1393). ارائه مدلی برای زمانبندی خط تولید کارگاهی همراه با یک مرحله مونتاژ موازی با هدف کمینهسازی حداکثر دوره ساخت، نشریه پژوهشهای مهندسی صنایع در سیستمهای تولید، 2(4): 53-39.
[4] Yimer, A. D., Demirli, K. (2010). A genetic approach to two-phase optimization of dynamic supply chain scheduling, Computers & Industrial Engineering, 58(3): 411-422.
[5] Averbakh, I. (2010). On-line integrated production–distribution scheduling problems with capacitated deliveries, European Journal of Operational Research, 200(2): 377–384.
[6] Rostamian Delavar, M., Hajiaghaei-Keshteli, M. and Molla-Alizadeh-Zavardehi, S. (2010). Genetic algorithms for coordinated scheduling of production and air transportation, Expert Systems with Applications, 37(12): 8255–8266.
[7] Scholz-Reiter, B., Frazzon, E. M., Makuschewitz, T. (2010). Integrating manufacturing and logistics systems along global supply chains, CIRP Journal of Manufacturing Science and Technology, 2(3): 216–223.
[9] Liu, S., Chen, A. (2012). Variable neighborhood search for the inventory routing and scheduling problem in a supply chain, Expert Systems with Applications, 39(4): 4149–4159.
[11] Averbakh, I., Baysan, M. (2013). Approximation algorithm for the on-line multi-customer two-level supply chain scheduling problem. Operations Research Letters, 41(6): 710–714.
[12] Ren, J., Du, D., Xu, D. (2013). The complexity of two supply chain scheduling problems, Information Processing Letters, 113(17): 609–612.
[13] Ullrich, C. A. (2013). Integrated machine scheduling and vehicle routing with time windows. European Journal of Operational Research, 227(1): 152–165.
[14] Sawik, T. (2014). Joint supplier selection and scheduling of customer orders under disruption risks: Single vs. dual sourcing. Omega, 43, 83–95.
[16] Jin, W. S., Feng, X. L., Zhou, B. H. (2007). Filtered-beam-search-based algorithm for dynamic rescheduling in FMS. Robotics and Computer-Integrated Manufacturing, 23(4): 457–468.
[17] Adhitya, A., Srinivasan, R., Karimi, I. (2007). A model-based rescheduling framework for managing abnormal supply chain events, Computers & Chemical Engineering, 31(5-6), 496–518.
[18] Liu, S. S., Shih, K. C. (2009). Construction rescheduling based on a manufacturing rescheduling frame, Automation in Construction, 18(6): 715–723.
[19] Zhao, C., Tang, H. (2010). Rescheduling problems with deteriorating jobs under disruptions, Applied Mathematical Modelling, 34(1): 238–243.
[20] Yin, J., Li, T., Chen, B., & Wang, B. (2011). Dynamic Rescheduling Expert System for Hybrid Flow Shop with Random Disturbance, Procedia Engineering, 15: 3921–3925.
[21] Rubrico, J. I., Higashi, T., Tamura, H., & Ota, J. (2011). Online rescheduling of multiple picking agents for warehouse management. Robotics and Computer-Integrated Manufacturing, 27(1): 62–71.
[22] Palombarini, J., Martínez, E. (2012). SmartGantt – An interactive system for generating and updating rescheduling knowledge using relational abstractions, Computers & Chemical Engineering, 47: 202–216.
[23] Zakaria, Z., Petrovic, S. (2012). Genetic algorithms for match-up rescheduling of the flexible manufacturing systems, Computers & Industrial Engineering, 62(2): 670–686.
[24] Yu, S. P., Pan, Q. K. (2012). A Rescheduling Method for Operation Time Delay Disturbance in Steelmaking and Continuous Casting Production Process. Journal of Iron and Steel Research, International, 19(12): 33–41.
[25] Hoogeveen, H., Lenté, C., Tkindt, V. (2012). Rescheduling for new orders on a single machine with setup times, European Journal of Operational Research, 223(1): 40–46.
[26] Katragjini, K., Vallada, E., & Ruiz, R. (2013). Flow shop rescheduling under different types of disruption. International Journal of Production Research, 51(3): 780-797.
[27] Liu, L., Zhou, H. (2013). On the identical parallel-machine rescheduling with job rework disruption, Computers & Industrial Engineering, 66(1): 186-198.
[28] Liu, L., Ro, Y. (2014). Rescheduling for machine disruption to minimize makespan and maximum lateness.
Journal of Scheduling, 17(4): 339-352.
[30] Chang, Y., Lee, C. (2004). Machine scheduling with job delivery coordination, European Journal of Operational Research, 158(2): 470–487.
[31] Pinedo, M. L. (2008). Scheduling Theory, Algorithms, and Systems, Springer, 3rd Edition.
[32] Potts, C.N., Van Wassenhove, L. (1982). Decomposition algorithm for the single machine total tardiness problem, Operations Research Letters, 1 (5): 177–181.