[1] Shen S H. Accurate multiple view 3D reconstruction using patch-based stereo for large-scale scenes[J]. IEEE Transactions on Image Processing, 22, 1901-1914(2013).
[2] Howard A. Real-time stereo visual odometry for autonomous ground vehicles[C], 3946-3952(2008).
[3] Scharstein D, Szeliski R. A taxonomy and evaluation of dense two-frame stereo correspondence algorithms[J]. International Journal of Computer Vision, 47, 7-42(2002).
[4] Veksler O. Stereo correspondence by dynamic programming on a tree[C], 384-390(2005).
[5] Kolmogorov V, Zabih R. Computing visual correspondence with occlusions using graph cuts[C], 508-515(2001).
[6] Tombari F, Mattoccia S, di Stefano L et al. Classification and evaluation of cost aggregation methods for stereo correspondence[C], 2609-2616(2008).
[7] Yan L, Wang R, Liu H et al. Stereo matching method based on improved cost computation and adaptive guided filter[J]. Acta Optica Sinica, 38, 1115007(2018).
[8] Qu Y F, Jiang J X, Deng X J et al. Robust local stereo matching under varying radiometric conditions[J]. IET Computer Vision, 8, 263-276(2014).
[9] Zhu J H, Wang C S, Gao M F. An improved matching algorithm of census transform and adaptive window[J]. Laser & Optoelectronics Progress, 58, 1215003(2021).
[10] Zhang K, Lu J B, Lafruit G. Cross-based local stereo matching using orthogonal integral images[J]. IEEE Transactions on Circuits and Systems for Video Technology, 19, 1073-1079(2009).
[11] Wang Y F, Wu W, Yu X L et al. A stereo matching system with the adaptive weight AD-Census[J]. Advanced Engineering Sciences, 50, 153-160(2018).
[12] Chen Y G, Zhou P, Zhu J P et al. Stereo matching based on improved Census transformation and adaptive support region[J]. Laser & Optoelectronics Progress, 58, 1433002(2021).
[13] Wang K, Li Z W, Zhu C D et al. Local stereo matching algorithm based on secondary guided filtering[J]. Laser & Optoelectronics Progress, 56, 081004(2019).
[14] Zhu S P, Li Z. A stereo matching algorithm using improved gradient and adaptive window[J]. Acta Optica Sinica, 35, 0110003(2015).
[15] Yang Q X. A non-local cost aggregation method for stereo matching[C], 1402-1409(2012).
[16] Mei X, Sun X, Zhou M C et al. On building an accurate stereo matching system on graphics hardware[C], 467-474(2011).
[17] Song W, Wei X Y, Zhang M H et al. Stereo matching based on improved cost calculation and a disparity candidate strategy[J]. Laser & Optoelectronics Progress, 58, 0215001(2021).
[18] Yuan W M, Meng C, Tong X Y et al. Efficient local stereo matching algorithm based on fast gradient domain guided image filtering[J]. Signal Processing: Image Communication, 95, 116280(2021).
[19] Fan H R, Yang F, Pan X R et al. Stereo matching algorithm for improved Census transform and gradient fusion[J]. Acta Optica Sinica, 38, 0215006(2018).
[20] Zhu C T, Li Q. Disparity refinement iterative algorithm based on gradient domain guided image filtering[J]. Journal of Tianjin University (Science and Technology), 51, 638-644(2018).
[21] Chang Y W, Zhao D Q, Shan Y H. Research on stereo matching algorithm based on multi-feature fusion and adaptive aggregation[J]. Computer Engineering and Applications, 57, 219-225(2021).
[22] Kong L Y, Zhu J P, Ying S C. Stereo matching based on guidance image and adaptive support region[J]. Acta Optica Sinica, 40, 0915001(2020).
[23] He K M, Sun J, Tang X O. Guided image filtering[J]. IEEE Transactions on Pattern Analysis and Machine Intelligence, 35, 1397-1409(2013).
[24] Zhu S Q, Wang Z, Zhang X Q et al. Edge-preserving guided filtering based cost aggregation for stereo matching[J]. Journal of Visual Communication and Image Representation, 39, 107-119(2016).
[25] Zhou B, Qin L, Gong W. Stereo-matching algorithm using weighted guided image filtering based on Laplacian of Gaussian operator[J]. Laser & Optoelectronics Progress, 56, 101502(2019).
[26] Scharstein D, Szeliski R. High-accuracy stereo depth maps using structured light[C](2003).
[27] Humenberger M, Zinner C, Weber M et al. A fast stereo matching algorithm suitable for embedded real-time systems[J]. Computer Vision and Image Understanding, 114, 1180-1202(2010).
[28] Hirschmuller H. Accurate and efficient stereo processing by semi-global matching and mutual information[C], 807-814(2005).
[29] Mattoccia S, Tombari F, di Stefano L. Stereo vision enabling precise border localization within a scanline optimization framework[M]. Yagi Y, Kang S B, Kweon I S, et al. Computer vision-ACCV 2007. Lecture notes in computer science, 4844, 517-527(2007).
[30] Wang L, Liao M, Gong M L et al. High-quality real-time stereo using adaptive cost aggregation and dynamic programming[C], 798-805(2006).
[31] Yoon K J, Kweon I S. Adaptive support-weight approach for correspondence search[J]. IEEE Transactions on Pattern Analysis and Machine Intelligence, 28, 650-656(2006).