[1] 董杨, 范大昭, 纪松, 等. 一种区域立体快速自适应重建方法[J]. 测绘学报, 2016, 45(10)1241-1249.DOI: 10.11947/j.AGCS.2016.20150651. DONG Yang, FAN Dazhao, JI Song, et al. A rapid adaptive reconstruction method for stereoscopic images[J]. Acta Geodaetica et Cartographica Sinica, 2016, 45(10)1241-1249.DOI: 10.11947/j.AGCS.2016.20150651. [2] 董杨, 范大昭, 纪松, 等. 主成分分析的匹配点对提纯方法[J]. 测绘学报, 2017, 46(2)228-236. DOI: 10.11947/j.AGCS.2017.20160250. DONG Yang, FAN Dazhao, JI Song, et al. The purification method of matching points based on principal component analysis[J]. Acta Geodaetica et Cartographica Sinica, 2017, 46(2)228-236. DOI: 10.11947/j.AGCS.2017.20160250. [3] MOREL J M, YU Guoshen. ASIFT: a new framework for fully affine invariant image comparison[J]. SIAM Journal on Imaging Sciences, 2009, 2(2): 438-469. [4] JIA Di, CAO Jun, SONG Weidong, et al. Colour FAST (CFAST) match: fast affine template matching for colourimages[J]. Electronics Letters, 2016, 52(14): 1220-1221. [5] LÓPEZ J, SANTOS R, FDEZ-VIDAL X R, et al. Two-view line matching algorithm based on context and appearance in low-textured images[J]. Pattern Recognition, 2015, 48(7): 2164-2184. [6] 王竞雪, 刘肃艳, 王伟玺.联合共线约束与匹配冗余的组直线匹配结果检核算法[J]. 测绘学报, 2020, 49(6)746-756. DOI: 10.11947/j.AGCS.2020.20190123. WANG Jingxue, LIU Suyan, WANG Weixi. A checking algorithm for pair-wise line matching based on collinearity constraint and matching redundancy[J]. Acta Geodaetica et Cartographica Sinica, 2020, 49(6)746-756. DOI: 10.11947/j.AGCS.2020.20190123. [7] LI K, YAO J, LU X, et al. Hierarchical line matching based on line-junction-line structure descriptor and local homography estimation[J]. Neurocomputing, 2016,184:207-220. [8] LI Kai, YAO Jian, XIA Menghan, et al. Joint point and line segment matching on wide-baseline stereo images[C]//Proceedings of 2016 IEEE Winter Conference on Applications of Computer Vision (WACV).Lake Placid: IEEE,2016:1-9. [9] CHEN Min, YAN Shaohua, QIN Rongjun, et al. Hierarchical line segment matching for wide-baseline images via exploiting viewpoint robust local structure and geometric constraints[J]. ISPRS Journal of Photogrammetry and Remote Sensing, 2021, 181: 48-66. [10] FAN Bin, WU Fuchao, HU Zhanyi. Robust line matching through line-point invariants[J]. Pattern Recognition, 2012,45(2):794-805. [11] FAN Bin, WU Fuchao, HU Zhanyi. Line matching leveraged by point correspondences[C]//Proceedings of 2010 IEEE Computer Society Conference on Computer Vision and Pattern Recognition.San Francisco: IEEE, 2010: 390-397. [12] JIA Qi, GAO Xinkai, FAN Xin, et al. Novel coplanar line-points invariants for robust line matching across views[C]//Proceedings of 2016 Computer Vision-ECCV 2016. Cham: Springer International Publishing, 2016: 599-611. [13] ZHANG Lilian, KOCH R. An efficient and robust line segment matching approach based on LBD descriptor and pairwise geometric consistency[J]. Journal of Visual Communication and Image Representation, 2013, 24(7): 794-805. [14] WANG Zhiheng, WU Fuchao, HU Zhanyi. MSLD: a robust descriptor for line matching[J]. Pattern Recognition, 2009, 42(5): 941-953. [15] WANG Qiang, ZHANG Wei, LIU Xiaolong, et al. Line matching of wide baseline images in an affine projection space[J]. International Journal of Remote Sensing, 2020, 41(2): 632-654. [16] QIN Rongjun, CHEN Min, HUANG Xu, et al.Disparity refinement in depth discontinuity using robustly matched straight lines for digital surface model generation[J]. IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing, 2019, 12(1): 174-185. [17] FAN Fan, DONG Dong, ZHANG Zhang. Satellite image matching method based on deep convolutional neural network[J]. Journal of Geodesy and Geoinformation Science, 2019(2): 90-100. [18] PAUTRAT R, LIN Juanting, LARSSON V, et al. SOLD2: self-supervised occlusion-aware line description and detection[C]//Peoceedings of 2021 IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR).Nashville: IEEE, 2021:11363-11373. [19] 刘威, 段成伟, 遇冰, 等. 基于后验 HOG 特征的多姿态行人检测[J]. 电子学报, 2015, 43(2): 217-224. LIU Wei, DUAN Chengwei, YU Bing, et al. Multi-pose pedestrian detection based on posterior HOG feature[J]. Acta Electronica Sinica, 2015, 43(2): 217-224. [20] DETONE D, MALISIEWICZ T, RABINOVICH A. SuperPoint: self-supervised interest point detection and description[C]//Proceedings of 2018 IEEE/CVF Conference on Computer Vision and Pattern Recognition Workshops (CVPRW).Salt Lake City: IEEE, 2018: 224-236. [21] YOON S, KIM A. Line as a visual sentence: context-aware line descriptor for visual localization[J]. IEEE Robotics and Automation Letters, 2021, 6(4): 8726-8733. [22] BIAN Jiawang, ZHANG Le, LIU Yun, et al. Image matching: an application-oriented benchmark[EB/OL]. [2023-3-29]. https://arxiv.org/abs/1709.03917. [23] ISPRS.Zurich City hall data set[EB/OL]. [2023-3-29].https://www.isprs.org/data/zurich/default.aspx. [24] ZHENG Zhedong, WEI Yunchao, YANG Yi. University-1652: a multi-view multi-source benchmark for drone-based geo-localization[C]//Proceedings of the 28th ACM International Conference on Multimedia.Seattle: ACM press, 2020: 1395-1403. [25] 杨佳宾, 范大昭, 杨幸彬, 等. 面向倾斜摄影的深度学习航空影像匹配方法[J]. 地球信息科学学报, 2021, 23(10): 1823-1837. YANG Jiabin, FAN Dazhao, YANG Xingbin, et al. Deep learning based on image matching method for oblique photogrammetry[J]. Journal of Geo-Information Science, 2021, 23(10): 1823-1837. [26] AKINLAR C, TOPAL C. Edlines: Real-time line segment detection by Edge Drawing (ed)[C]//Proceedings of 2011 18th IEEE International Conference on Image Processing.Brussels: IEEE, 2011: 2837-2840. |