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A Graph-Based Approach for Making Consensus-Based Decisions in Image Search and Person Re-Identification

机译:基于图形的基于图的方法,用于在图像搜索和人员重新识别中进行共识的基于协议的决策

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摘要

Image matching and retrieval is the underlying problem in various directions of computer vision research, such as image search, biometrics, and person re-identification. The problem involves searching for the closest match to a query image in a database of images. This work presents a method for generating a consensus amongst multiple algorithms for image matching and retrieval. The proposed algorithm, Shortest Hamiltonian Path Estimation (SHaPE), maps the process of ranking candidates based on a set of scores to a graph-theoretic problem. This mapping is extended to incorporate results from multiple sets of scores obtained from different matching algorithms. The problem of consensus-based decision-making is solved by searching for a suitable path in the graph under specified constraints using a two-step process. First, a greedy algorithm is employed to generate an approximate solution. In the second step, the graph is extended and the problem is solved by applying Ant Colony Optimization. Experiments are performed for image search and person re-identification to illustrate the efficiency of SHaPE in image matching and retrieval. Although SHaPE is presented in the context of image retrieval, it can be applied, in general, to any problem involving the ranking of candidates based on multiple sets of scores.
机译:图像匹配和检索是计算机视觉研究的各种方向的潜在问题,例如图像搜索,生物识别技术和人员重新识别。问题涉及在图像数据库中搜索最接近的查询图像。该工作介绍了一种用于在多种算法中生成共识的方法,用于图像匹配和检索。所提出的算法,最短的Hamiltonian路径估计(形状),将基于一组分数的排序候选的过程映射到图形 - 理论问题。扩展该映射以合并来自不同匹配算法获得的多组分数的结果。通过使用两步处理根据指定约束下的图表中的合适路径来解决基于共识的决策问题。首先,采用贪婪算法来生成近似解。在第二步中,延长了图表,通过应用蚁群优化来解决问题。对图像搜索和人重新识别进行实验,以说明图像匹配和检索中的形状效率。尽管在图像检索的背景下呈现形状,但是通常可以应用于基于多组分数涉及候选者排名的任何问题。

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