COMPARATIVE STUDY OF CAPSULE NEURAL NETWORK IN VARIOUS APPLICATIONS

Vijayakumar T Dr
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引用次数: 114

Abstract

The advancement in the machine learning and the computer vision has caused several improvements and development in numerous of domains. Capsule neural networks are one such machine learning system that imitates the neural system and develops the structures based on the hierarchical relationships. It does the inverse operation of the computer graphic in representing an object by, segregating the object in the image into different part and viewing the in-existing relationship between the each parts to represent in order to preserve even the minute details related to the object, unlike CNN that losses major of the information’s related to the spatial location of the object that are essential in the segmentation and the detection. So the paper presents the comparative study of the capsule neural network in various application, presenting the efficiency of the capsules networks over the convolutional neural networks.
胶囊神经网络在各种应用中的比较研究
机器学习和计算机视觉的进步在许多领域引起了一些改进和发展。胶囊神经网络就是这样一种模仿神经系统并基于层次关系发展结构的机器学习系统。它在表示物体时做了与计算机图形相反的操作,将图像中的物体分离成不同的部分,并查看要表示的各个部分之间存在的关系,以保留与物体相关的微小细节,而CNN则丢失了大部分与物体的空间位置相关的信息,而这些信息在分割和检测中是必不可少的。因此,本文对胶囊神经网络在各种应用中的比较研究,给出了胶囊网络相对于卷积神经网络的效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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