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领域计算机视觉计算机视觉
方法族Machine learningMachine learning
起源年份1990s1980s
提出者David Scharstein and Richard SzeliskiComputer vision community
类型Depth estimation and 3D visionPattern matching and detection
开创性文献Scharstein, D., & Szeliski, R. (2002). A taxonomy and evaluation of dense two-frame stereo correspondence algorithms. International Journal of Computer Vision, 47(1), 7–42. DOI ↗Lewis, J. P. (2004). Fast normalized cross-correlation. Vision Interface, 120–123. link ↗
别名Stereo correspondence, Disparity estimationCorrelation-based matching, Similarity matching
相关55
摘要Stereo matching is a computer vision technique for recovering depth information by finding corresponding points between a pair of stereo images (taken from slightly different viewpoints). By locating the same scene feature in both images and measuring the disparity (horizontal shift), stereo matching reconstructs 3D structure using the principles of triangulation.Template matching is a straightforward technique for locating a known pattern (template) within a larger image. By sliding a template image across the target image and computing a similarity measure at each position, template matching identifies locations where the template appears. It is effective for simple object detection when templates are well-defined and appearance variation is limited.
ScholarGate数据集
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  2. 2 来源
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  1. v1
  2. 2 来源
  3. PUBLISHED

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ScholarGate方法对比: Stereo Matching · Template Matching. 于 2026-06-18 检索自 https://scholargate.app/zh/compare