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首页> 外文期刊>New astronomy >Automated star-galaxy segregation using spectral and integrated band data for TAUVEX/ASTROSAT satellite data pipeline
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Automated star-galaxy segregation using spectral and integrated band data for TAUVEX/ASTROSAT satellite data pipeline

机译:使用TAUVEX / ASTROSAT卫星数据管道的频谱和积分波段数据进行自动星系隔离

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摘要

We employ an Artificial Neural Network (ANN) based technique to develop a pipeline for automated segregation of stars from the galaxies to be observed by Tel-Aviv University Ultra-Violet Experiment (TAU-VEX). We use synthetic spectra of stars from UVBLUE library and selected International Ultraviolet Explorer (IUE) low-resolution spectra for galaxies in the ultraviolet (UV) region from 1250 to 3220 A as the training set and IUE low-resolution spectra for both the stars and the galaxies as the test set. All the data sets have been pre-processed to get band integrated fluxes so as to mimic the observations of the TAUVEX UV imager. We also perform the ANN based segregation scheme using the full length spectral features (which will also be useful for the ASTROSAT mission). Our results suggest that, in the case of the non-availability of full spectral features, the limited band integrated features can be used to segregate the two classes of objects: although the band data classification is less accurate than the full spectral data classification.
机译:我们采用基于人工神经网络(ANN)的技术来开发管道,以自动分离星系中的恒星,并由特拉维夫大学的紫外线实验(TAU-VEX)对其进行观测。我们使用来自UVBLUE库的恒星的合成光谱,并为1250至3220 A的紫外线(UV)区域中的星系选择了国际紫外线探测器(IUE)低分辨率光谱作为训练集,并为恒星和恒星使用了IUE低分辨率光谱星系作为测试集。所有数据集都经过了预处理,以获取波段积分通量,以模仿TAUVEX UV成像仪的观测结果。我们还使用全长频谱特征执行基于ANN的分离方案(这对于ASTROSAT任务也将很有用)。我们的结果表明,在无法使用全光谱数据特征的情况下,可以使用有限的波段积分特征来分离两类物体:尽管波段数据分类的准确性不如全光谱数据分类。

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