[1] 小行星附着自主导航与制导. 中国宇航出版社, 2024.
[2] Efficient selection of asteroid landing sites using composite guidance vectors. Acta Astronautica, 2025, 228: 121-130.
[3] State estimation with nonlinear inequality constraints for small celestial body flexible landing. IEEE Transactions on Aerospace and Electronic Systems, 2025, 61(2): 4155-4167.
[4] Asteroid approach guidance based on predicted rendezvous probability. IEEE Transactions on Aerospace and Electronic Systems, 2025, 61(1): 684-695.
[5] Intelligent cooperative control for flexible landing on small celestial bodies. Advances in Space Research, 2025, 75(1): 606-619.
[6] Guidance for precision landing on asteroid using active hopping trajectory. Acta Astronautica, 2022, 198: 320-328.
[7] Collision risk-perceptive landing control for small body missions. IEEE Transactions on Aerospace and Electronic Systems, 2021, 57(6): 3801-3812.
[8] Robust learning for collision-free trajectory in space environment with limited a priori information. Acta Astronautica, 2021, 187: 281-294.
[9] Recent development of autonomous GNC technologies for small celestial body descent and landing. Progress in Aerospace Sciences, 2019, 110: 0-100551.
[10] Prudent small celestial body landing strategy with risk precautions. Acta Astronautica, 2019, 165: 259-267.
[11] Optimal landing site selection based on safety index during planetary descent. Acta Astronautica, 2017, 132: 326-336.
[12] 小天体柔性附着状态估计的智能预报方法. 宇航学报, 2025, 46(11): 2324-2333.
[13] 航天器相对论导航角距观测构型优化方法. 宇航学报,2025, 46(5): 965-976.
[14] 小天体柔性附着状态协同估计方法. 宇航学报, 2022, 43(9): 1219-1226.
[15] 行星着陆点自主评估与选取研究进展. 中国科学:技术科学, 2021, 51(11): 1315-1325.