| [1] | Zhang, Z. Y., Yan, J. W. & Kuriyagawa, T. Manufacturing technologies toward extreme precision. International Journal of Extreme Manufacturing 1, 022001 (2019). doi: 10.1088/2631-7990/ab1ff1 |
| [2] | Ben-Larbi, M. K. et al. Towards the automated operations of large distributed satellite systems. Part 1: review and paradigm shifts. Advances in Space Research 67, 3598-3619 (2021). |
| [3] | Hu, L. Z. et al. Design of off-axis double reflection freeform miniaturized antenna. Optics Communications 526, 128906 (2023). doi: 10.1016/j.optcom.2022.128906 |
| [4] | Baisden, P. A. et al. Large optics for the national ignition facility. Fusion Science and Technology 69, 295-351 (2016). doi: 10.13182/FST15-143 |
| [5] | Gong, T. et al. Recent research progress of laser plasma interactions in Shenguang laser facilities. Matter and Radiation at Extremes 4, 055202 (2019). |
| [6] | Wang, T. Y. et al. A comprehensive review of dwell time optimization methods in computer-controlled optical surfacing. Light: Advanced Manufacturing 5, 21 (2024). |
| [7] | Loh, Y. M. et al. Magnetic field-assisted batch polishing method for the mass production of precision optical glass components. Light: Advanced Manufacturing 5, 28 (2024). |
| [8] | Wahballa, H., Duan, J. J. & Dai, Z. D. An automatic robot polishing control method for compound surface comprising plane and curved surfaces. The International Journal of Advanced Manufacturing Technology 132, 3801-3819 (2024). doi: 10.1007/s00170-024-13319-y |
| [9] | Tian, H. X. et al. A prediction method of the removal function for inductively coupled atmospheric pressure plasma processing based on jet morphology monitoring and diagnosis. Plasma Chemistry and Plasma Processing 42, 905-922 (2022). doi: 10.1007/s11090-022-10247-1 |
| [10] | Kim, D. W. & Burge, J. H. Rigid conformal polishing tool using non-linear visco-elastic effect. Optics Express 18, 2242-2257 (2010). doi: 10.1364/OE.18.002242 |
| [11] | Wang, B. et al. Design and frequency control study of small-sized magnetorheological finishing device applied in optical manufacturing. Journal of Manufacturing Processes 108, 863-876 (2023). doi: 10.1016/j.jmapro.2023.11.031 |
| [12] | Zhang, Y. F. et al. Dwell time algorithm based on bounded constrained least squares under dynamic performance constraints of machine tool in deterministic optical finishing. International Journal of Precision Engineering and Manufacturing-Green Technology 8, 1415-1427 (2021). doi: 10.1007/s40684-020-00306-3 |
| [13] | Zhang, Z. L. et al. Numerical and experimental investigation on the effect of surface curvature and slope angle on the material removal characteristics in fluid jet polishing. International Journal of Mechanical Sciences 249, 108266 (2023). doi: 10.1016/j.ijmecsci.2023.108266 |
| [14] | Wang, B. et al. Advancements in material removal mechanism and surface integrity of high speed metal cutting: a review. International Journal of Machine Tools and Manufacture 166, 103744 (2021). doi: 10.1016/j.ijmachtools.2021.103744 |
| [15] | Wang, T. Y. et al. Computer-controlled finishing via dynamically constraint position-velocity-time scheduler. Journal of Manufacturing Processes 87, 97-105 (2023). doi: 10.1016/j.jmapro.2023.01.005 |
| [16] | Schinhaerl, M. et al. Utilisation of time-variant influence functions in the computer controlled polishing. Precision Engineering 32, 47-54 (2008). doi: 10.1016/j.precisioneng.2007.04.005 |
| [17] | Su, X. et al. Freeform surface generation by atmospheric pressure plasma processing using a time-variant influence function. Optics Express 29, 11479-11493 (2021). doi: 10.1364/OE.421688 |
| [18] | Zhang, J. et al. Experimental and theoretical study of internal finishing by a novel magnetically driven polishing tool. International Journal of Machine Tools and Manufacture 153, 103552 (2020). doi: 10.1016/j.ijmachtools.2020.103552 |
| [19] | Ji, P. et al. Compensation of the tool influence function changes under neighborhood effect in atmospheric pressure plasma processing. Optics Express 31, 39465-39482 (2023). doi: 10.1364/OE.504613 |
| [20] | Rao, Z. M. et al. Form error compensation in soft wheel polishing by contact force optimization. The International Journal of Advanced Manufacturing Technology 91, 1197-1207 (2017). doi: 10.1007/s00170-016-9798-3 |
| [21] | Sun, Z. Z. et al. Optimization of dynamic characteristics for Time-Controlled Grinding using time-varying removal function. Journal of Manufacturing Processes 119, 1033-1048 (2024). doi: 10.1016/j.jmapro.2024.04.018 |
| [22] | Wan, S. L. et al. Novel magic angle-step state and mechanism for restraining the path ripple of magnetorheological finishing. International Journal of Machine Tools and Manufacture 161, 103673 (2021). doi: 10.1016/j.ijmachtools.2020.103673 |
| [23] | Bai, Y. et al. Material removal model of magnetorheological finishing based on dense granular flow theory. Light: Advanced Manufacturing 3, 41 (2022). |
| [24] | Ke, X. L. et al. Modeling of tool influence function for high-efficiency polishing. The International Journal of Advanced Manufacturing Technology 84, 2479-2489 (2016). doi: 10.1007/s00170-015-7913-5 |
| [25] | Sidpara, A. & Jain, V. K. Experimental investigations into forces during magnetorheological fluid based finishing process. International Journal of Machine Tools and Manufacture 51, 358-362 (2011). doi: 10.1016/j.ijmachtools.2010.12.002 |
| [26] | Cheng, J. et al. Overview of advanced optical manufacturing techniques applied in regulating laser damage precursors in nonlinear functional KHxD2-xPO4 crystal. Light: Advanced Manufacturing 6, 48 (2025). doi: 10.37188/lam.2025.048 |
| [27] | Kordonski, W. & Golini, D. Progress update in magnetorheological finishing. International Journal of Modern Physics B 13, 2205-2212 (1999). doi: 10.1142/S0217979299002320 |
| [28] | Jang, J. Y. & Khonsari, M. M. Performance analysis of grease-lubricated journal bearings including thermal effects. Journal of Tribology 119, 859-868 (1997). doi: 10.1115/1.2833897 |
| [29] | Zhen, L. et al. Analysis of damping characteristics of magneto-rheological damper considering temperature effect. Machine Tool & Hydraulics 51, 96-104 (2023). |
| [30] | Liu, J. B. et al. Predicting the Material Removal Rate (MRR) in surface Magnetorheological Finishing (MRF) based on the synergistic effect of pressure and shear stress. Applied Surface Science 504, 144492 (2020). doi: 10.1016/j.apsusc.2019.144492 |
| [31] | Dong, Z. C., Cheng, H. B. & Tam, H. Y. Compensating for velocity truncation during subaperture polishing by controllable and time-variant tool influence functions. Applied Optics 54, 1167-1174 (2015). doi: 10.1364/AO.54.001167 |
| [32] | Aikens, D. M. , Wolfe, C. R. & Lawson, J. K. Use of power spectral density (PSD) functions in specifying optics for the National Ignition Facility. Proceedings of SPIE 2576, International Conference on Optical Fabrication and Testing. Tokyo, Japan: SPIE, 1995. |
| [33] | Wang, B. et al. Novel suppression strategy of mid-spatial-frequency errors in sub-aperture polishing: adaptive spacing-swing controllable spiral magnetorheological finishing (CSMRF) method. Light: Advanced Manufacturing 6, 45 (2025). doi: 10.37188/lam.2025.045 |
| [34] | Xu, C. et al. Optimization of magnetorheological finishing process for aluminum mirror with complex surface. Acta Aeronautica et Astronautica Sinica 42, 524914 (2021). |
| [35] | Deng, W. J. et al. Dwell time algorithm based on matrix algebra and regularization method. Optics and Precision Engineering 15, 1009-1015 (2007). |
| [36] | Jiang, Y. et al. Simulated annealing genetic algorithm and its application in mixed-model assembly line design. Advanced Materials Research 136, 64-68 (2010). doi: 10.4028/www.scientific.net/AMR.136.64 |
| [37] | Toloueiashtian, M., Golsorkhtabaramiri, M. & Rad, S. Y. B. An improved whale optimization algorithm solving the point coverage problem in wireless sensor networks. Telecommunication Systems 79, 417-436 (2022). doi: 10.1007/s11235-021-00866-y |
| [38] | Krasnogor, N. & Smith, J. A tutorial for competent memetic algorithms: model, taxonomy, and design issues. IEEE Transactions on Evolutionary Computation 9, 474-488 (2005). doi: 10.1109/TEVC.2005.850260 |
| [39] | Neri, F. & Cotta, C. Memetic algorithms and memetic computing optimization: a literature review. Swarm and Evolutionary Computation 2, 1-14 (2012). doi: 10.1016/j.swevo.2011.11.003 |