Intelligent system for bar detection based on Non-negative Matrix Factorization Algorithms

I. Selim, shimaa elbably, Walid Dabour
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Abstract

In this paper, a new automated machine supervised learning method for bar detection scheme in spiral galaxies based on the Nonnegative Matrix Factorization algorithm have been presented. Nonnegative matrix factorization has been introduced in this paper to detection bar in spiral galaxies, which is very easy to use, and gives us a good accuracy. Detection bar in spiral galaxies is the main objective of this research. WE describe an entirely automated method that extract feature from spiral galaxies and then automatically bar detection. The algorithm is trained using manually bared and non-bared images of spiral galaxies. The algorithm show that the bar in spiral images from the EFIGI catalog can be detected automatically with an accuracy of 97.3% with an average processing time of 0.37 s per galaxy compared to bar detection carried out by other authors and manually detection.
基于非负矩阵分解算法的棒材检测智能系统
本文提出了一种基于非负矩阵分解算法的螺旋星系棒材检测方案的机器监督学习方法。本文将非负矩阵分解引入到螺旋星系的检测棒中,该方法使用简单,精度高。螺旋星系中的探测条是本研究的主要目标。我们描述了一种完全自动化的方法,从螺旋星系中提取特征,然后自动检测。该算法使用螺旋星系的手动裸照和非裸照图像进行训练。该算法表明,与其他作者的方法和人工检测相比,EFIGI星表中螺旋图像中的棒状结构的自动检测准确率为97.3%,平均处理时间为0.37 s。
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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