首页> 外文会议>Third International Conference on Computer Vision Systems ICVS 2003, Apr 1-3, 2003, Graz, Austria >A Multiple Classifier System Approach to Affine Invariant Object Recognition
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A Multiple Classifier System Approach to Affine Invariant Object Recognition

机译:仿射不变对象识别的多分类器系统方法

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摘要

We propose an affine invariant object recognition system which is based on the principle of multiple classifier fusion. Accordingly, two recognition experts are developed and used in tandem. The first expert performs a course grouping of the object hypotheses based on an entropy criterion. This initial classification is performed using colour cues. The second expert establishes the object identity by considering only the subset of candidate models contained in the most probable coarse group. This expert takes into account geometric relations between object primitives and determines the winning hypothesis by means of relaxation labelling. We demonstrate the effectiveness of the proposed object recognition strategy on the Surrey Object Image Library database. The experimental results not only show improved recognition performance but also a computational speed up.
机译:我们提出了一种基于多分类器融合原理的仿射不变物体识别系统。相应地,两个识别专家被共同开发和使用。第一专家基于熵准则对对象假设进行过程分组。使用颜色提示执行此初始分类。第二个专家通过仅考虑最可能的粗糙组中包含的候选模型的子集来建立对象标识。该专家考虑了对象基元之间的几何关系,并通过松弛标记确定了获胜的假设。我们在萨里物体图像库数据库上证明了提出的物体识别策略的有效性。实验结果不仅显示了改进的识别性能,而且还提高了计算速度。

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