研究方向
智慧型製造系統的建模與調度、供應鏈與物流管理、多目標最佳化、機器學習與大數據等
代表性期刊論文
1. Zhen L., Zhang B. Q., Yang F. J., and Zhou M. C., “Efficient Scheduling of Residency-Time-Constrained Dual-Armed Cluster Tools With Condition-Based Chamber Cleaning Operations,” IEEE Transactions on Automation Science and Engineering, 2024, DOI: 10.1109/TASE.2024.3414843.
2. Li C., Yang Z., Yang F. J.* and Wang F, “A Novel and Efficient Real-timeSequencing Strategy for Appointment Scheduling with Unpunctual Patients,” Journal of Scheduling, 27: 135-149, 2024.
3. 鎮璐, 張曉琴, 陽罰軍*. 帶駐留時間約束及清洗工藝的晶圓製造設備調度研究. 系統工程理論與實踐. 43(8):2395-2411, 2023.
4. Li C., Yang F. J., and Zhen L., “Efficient Scheduling Approaches to Time-constrained Single-armed Cluster Tools with Condition-based Chamber Cleaning Operations,” International Journal of Production Research, 60(11): 3555-3568, 2022.
5. Yang F. J., Wu N. Q., Qiao Y., Zhou M. C., Su R., and Zhang C. J., “Wafer Sojourn Time Fluctuation Analysis for Time-Constrained Dual-Arm Multi-Cluster Tools with Activity Time Variation,” International Journal of Computer Integrated Manufacturing, 34(7-8): 734-751, 2021.
6. Gao K. Z., Yang F. J., Li J. Q., Sang H. Y., and Luo J. P., “Improved Jaya Algorithm for Flexible Job Shop Rescheduling Problem,” IEEE Access, 8: 86915-86922, 2020.
7. Yang F. J., Qiao Y., Gao K. Z, Wu N. Q., Simon I. W., Zhu Y. T., and Su R., “Efficient Approach to Scheduling of Transient Processes for Time-Constrained Single-Arm Cluster Tools With Parallel Chambers,” IEEE Transactions on Systems, Man and Cybernetics: Systems, 50(10): 3646-3657, 2020.
7. Yang F. J., Tang X., Wu N. Q., Zhang C. J., and Gao L., “Wafer Residency Time Analysis for Time -constrained Single-robot-arm Cluster Tools with Activity Time Variation,” IEEE Transactions on Control Systems Technology, 28(4): 1177-1188, 2020.
8. Qiao Y., Wu N. Q., Yang F. J., ZhouM. C., Zhu Q. H., and Qu T., “Robust Scheduling of Time-Constrained Dual-Arm Cluster Tools With Wafer Revisiting andActivity Time Disturbance,” IEEE Transactions on Systems, Man, and Cybernetics: Systems,49(6): 1228-1240, 2019.
9. Yang F. J., Wu N. Q., Qiao Y., and Zhou M. C., “Optimal One-wafer Cyclic Scheduling of Hybrid Multi-robot Cluster Tools with Tree Topology,” IEEE Transactions on Systems, Man and Cybernetics: Systems, 48(2): 289-298, 2018.
10. Yang F. J., Wu N. Q., Qiao Y., and Su R., “Polynomial Approach to Optimal One-wafer Cyclic Scheduling of Treelike Hybrid Multi-Cluster Tools via Petri Nets,” IEEE/CAA Journal of Automatica Sinica, 5(1): 270-280, 2018.
11. Yang F. J., Gao K. Z., Simon I. W., Zhu Y. T., and Su R., “Decomposition Methods for Manufacturing System Scheduling: A Survey,” IEEE/CAA Journal of Automatica Sinica, 5(2): 389-400, 2018.
12. Yang F. J., Wu N. Q., Gao, K. Z., Zhang C. J., Zhu Y. T., Su R., and Qiao Y., “Efficient Approach to Cyclic Scheduling of Single-arm Cluster Tools with Chamber Cleaning Operations and Wafer Residency Time Constraint,” IEEE Transactions on Semiconductor Manufacturing, 31(2): 196-205, 2018.
13. Gao K. Z., Yang F. J., Zhou M. C., Pan Q. K., and Suganthan P. N., “Flexible Job-Shop Rescheduling for New Job Insertion by Using Discrete Jaya Algorithm,” IEEE Transactions on Cybernetics, 49(5): 1944-1955, 2018. (ESI高被引論文)
14. Qiao Y., Wu N. Q., Yang F. J., Zhou M. C., and Zhu Q. H., “Wafer Sojourn Time Fluctuation Analysis of Time-Constrained Dual-Arm Cluster Tools With Wafer Revisiting and Activity Time Variation,” IEEE Transactions on Systems, Man, and Cybernetics: Systems, 48(4): 622-636, 2018.
15. Yang F. J., Qiao Y., Gao K. Z., Wu N. Q., Zhu Y. T., Ware S. I., and Su R., “Scheduling and Control of Start-up Process for Time-Constrained Single-Arm Cluster Tools withParallel Chambers,” IFAC-Papers Online, 2018, 51(7) : 251-256.
16. Yang F. J., Wu N. Q., Qiao Y., Zhou M. C., Su R., and Qu, T., “Modeling and Optimal Scheduling of Wafer- residency-time Constrained Cluster Tools via Petri Nets and Linear Programming,” IEEE Transactions on Systems, Man and Cybernetics: Systems, 50(3): 871-883, 2017.
17. Yang F. J., Wu N. Q., Qiao Y., and Zhou M. C., “Optimal One-Wafer Cyclic Scheduling of Time-Constrained Hybrid Multicluster Tools via Petri Nets,” IEEE Transactions on Systems, Man and Cybernetics: Systems, 47(11): 2920-2932, 2017.
18. Yang F. J., Wu N. Q., Qiao Y., Zhou M. C., and Li Z. W., “Scheduling of Single-Arm Cluster Tools for an Atomic Layer Deposition Process With Residency Time Constraints,” IEEE Transactions on Systems, Man and Cybernetics: Systems, 47(3): 502-516, 2017. (ESI高被引論文)
19. Yang F. J., Wu N. Q., Qiao Y., Zhou M. C., Su R., and Qu T., “Petri Net-Based Efficient Determination of Optimal Schedule for Transport-dominant Single-Arm Multi-Cluster Tools,” IEEE Access, 6: 355-365, 2017
20. Liu Z. C., Wu N. Q., and Yang F. J., “Petri net-based scheduling of time constrained single-arm cluster tools with wafer revisiting,” Advances in Mechanical Engineering,8(5): 1-13, 2016.
22. Yang F. J., Wu N. Q., Qiao Y., and Zhou M. C., “Petri Net-Based Optimal One-Wafer Cyclic Scheduling of Hybrid Multi-Cluster Tools in Wafer Fabrication,” IEEE Transactions on Semiconductor Manufacturing, 27(2): 192-203, 2014.
21. Yang F. J., Wu N. Q., Qiao Y., and Zhou M. C., “Petri Net-Based Polynomially Complex Approach to Optimal One-Wafer Cyclic Scheduling of Hybrid Multi-Cluster Tools in Semiconductor Manufacturing,” IEEE Transactions on Systems, Man and Cybernetics: Systems, 44(12): 1598-1610, 2014.
23. Yang F. J., Wu N. Q., Qiao Y., and Zhou M. C., “Optimal One-Wafer Cyclic Scheduling of Single-Arm Multi-Cluster Tools with Two-Space Buffering Modules,” IEEE Transactions on Systems, Man and Cybernetics: Systems, 44(12): 1584-1597, 2014.