This paper presents a system for matching and pose estimation of 3D space curves under the similarity transformation composed of rotation, translation and uniform scaling. The system makes use of constraints not only on the feature points but also on curve segments. A representation called the simil
New algorithms for 2D and 3D point matching: pose estimation and correspondence
โ Scribed by Steven Gold; Anand Rangarajan; Chien-Ping Lu; Suguna Pappu; Eric Mjolsness
- Publisher
- Elsevier Science
- Year
- 1998
- Tongue
- English
- Weight
- 340 KB
- Volume
- 31
- Category
- Article
- ISSN
- 0031-3203
No coin nor oath required. For personal study only.
โฆ Synopsis
A fundamental open problem in computer vision-determining pose and correspondence between two sets of points in space-is solved with a novel, fast, robust and easily implementable algorithm. The technique works on noisy 2D or 3D point sets that may be of unequal sizes and may differ by non-rigid transformations. Using a combination of optimization techniques such as deterministic annealing and the softassign, which have recently emerged out of the recurrent neural network/statistical physics framework, analog objective functions describing the problems are minimized. Over thirty thousand experiments, on randomly generated points sets with varying amounts of noise and missing and spurious points, and on hand-written character sets demonstrate the robustness of the algorithm.
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