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An Image-Based Class Retrieval System for Roman Republican Coins

机译:罗马共和党硬币的基于图像的类检索系统

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摘要

We propose an image-based class retrieval system for ancient Roman Republican coins that can be instrumental in various archaeological applications such as museums, Numismatics study, and even online auctions websites. For such applications, the aim is not only classification of a given coin, but also the retrieval of its information from standard reference book. Such classification and information retrieval is performed by our proposed system via a user friendly graphical user interface (GUI). The query coin image gets matched with exemplar images of each coin class stored in the database. The retrieved coin classes are then displayed in the GUI along with their descriptions from a reference book. However, it is highly impractical to match a query image with each of the class exemplar images as there are 10 exemplar images for each of the 60 coin classes. Similarly, displaying all the retrieved coin classes and their respective information in the GUI will cause user inconvenience. Consequently, to avoid such brute-force matching, we incrementally vary the number of matches per class to find the least matches attaining the maximum classification accuracy. In a similar manner, we also extend the search space for coin class to find the minimal number of retrieved classes that achieve maximum classification accuracy. On the current dataset, our system successfully attains a classification accuracy of 99% for five matches per class such that the top ten retrieved classes are considered. As a result, the computational complexity is reduced by matching the query image with only half of the exemplar images per class. In addition, displaying the top 10 retrieved classes is far more convenient than displaying all 60 classes.
机译:我们提出了一种基于图像的类级检索系统,适用于古罗马共和党硬币,这可以在各种考古应用中有乐器,如博物馆,数字化学研究,甚至在线拍卖网站。对于此类应用,目的不仅是给定硬币的分类,还不仅可以从标准参考书中检索其信息。这种分类和信息检索是由我们所提出的系统通过用户友好的图形用户界面(GUI)执行的。查询硬币图像与存储在数据库中的每个硬币类的示例图像匹配。然后,在GUI中显示检索到的硬币类以及他们从参考书的描述。然而,与每个类示例图像相匹配的查询图像非常不切实际,因为对于60个硬币类别中的每一个存在10个示例图像。同样,在GUI中显示所有检索到的硬币类及其各自的信息将导致用户不便。因此,为了避免这种蛮力匹配,我们逐步改变每个类的匹配数,以找到实现最大分类准确性的最小匹配项。以类似的方式,我们还扩展了硬币类的搜索空间,以找到实现最大分类准确性的最小检索类。在当前数据集上,我们的系统成功地达到了每种级别的五场比赛的分类准确性,以便考虑前十个检索的类。结果,通过将查询图像与每个类的示例图像的一半匹配来减少计算复杂性。此外,显示前10个检索类比显示所有60个类更方便。

著录项

  • 期刊名称 Entropy
  • 作者单位
  • 年(卷),期 2020(22),8
  • 年度 2020
  • 页码 799
  • 总页数 10
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:图像熵;图像处理;图像分类;
  • 入库时间 2022-08-21 12:20:31

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