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Experts Fusion and Multilayer Perceptron Based on Belief Learning for Sonar Image Classification

机译:基于信念学习的专家融合与多层感知器   声纳图像分类

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摘要

The sonar images provide a rapid view of the seabed in order to characterizeit. However, in such as uncertain environment, real seabed is unknown and theonly information we can obtain, is the interpretation of different humanexperts, sometimes in conflict. In this paper, we propose to manage thisconflict in order to provide a robust reality for the learning step ofclassification algorithms. The classification is conducted by a multilayerperceptron, taking into account the uncertainty of the reality in the learningstage. The results of this seabed characterization are presented on real sonarimages.
机译:声纳图像提供了海床的快速视图,以进行表征。但是,在不确定的环境中,真正的海床是未知的,我们可以获得的唯一信息是对不同人类专家的解释,有时甚至是冲突。在本文中,我们建议解决此冲突,以便为分类算法的学习步骤提供可靠的现实。考虑到学习阶段现实的不确定性,该分类由多层感知器进行。在真实的声纳图像上呈现了海底表征的结果。

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