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Possibilistic Similarity Estimation and Visualization

机译:可能性相似度估计和可视化

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摘要

In this paper, we present a very general and powerful approach to represent and to visualize the similarity between the objects that contain heterogeneous, imperfect and missing attributes in order to easily achieve efficient analysis and retrieval of information by organizing and gathering these objects into meaningful groups. Our method is essentially based on possibility theory to estimate the similarity and on the spatial, the graphical, and the clustering-based representational models to visualize and represent its structure. Our approach will be applied to a real digestive image database. Without any a priori medical knowledge concerning the key attributes of the pathologies, and without any complicated preprocessing of the imperfect data, results show that we are capable to visualize and to organize the different categories of the digestive pathologies. These results were validated by the doctor.
机译:在本文中,我们提出了一种非常通用且功能强大的方法来表示和可视化包含异构,不完善和缺失属性的对象之间的相似性,以便通过将这些对象组织并收集到有意义的组中来轻松实现有效的信息分析和检索。我们的方法主要基于可能性理论来估计相似性,并基于空间,图形和基于聚类的表示模型来可视化并表示其结构。我们的方法将应用于真实的消化图像数据库。没有关于病理关键属性的任何先验医学知识,也没有对不完善数据的任何复杂预处理,结果表明我们能够可视化并组织消化病理的不同类别。这些结果被医生证实。

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