assessingtheperformanceofmoleculargasclumpidentificationalgorithms
Li Chong2; Wang Hongchi2; Wu Yuanwei1; Ma Yuehui2; Lin Lianghao2
刊名researchinastronomyandastrophysics
2020
卷号20期号:3
关键词methods: data analysis methods: numerical ISM: structure
ISSN号1674-4527
DOI10.1088/1674–4527/20/3/31
英文摘要The detection of clumps (cores) in molecular clouds is an important issue in sub-millimetre astronomy. However, the completeness of the identification and the accuracy of the returned parameters of the automated clump identification algorithms are still not clear. In this work, we test the performance and bias of the GaussClumps, ClumpFind, FellWalker, Reinhold, and Dendrograms algorithms in identifying simulated clumps. By designing the simulated clumps with various sizes, peak brightness, and crowdedness, we investigate the characteristics of the algorithms and their performance. In the aspect of detection completeness, FellWalker, Dendrograms, and GaussClumps are the first, second, and third best algorithms, respectively. The numbers of correct identifications of the six algorithms gradually increase as the size and signal-to-noise ratio (SNRs) of the simulated clumps increase and they decrease as the crowdedness increases. In the aspect of the accuracy of retrieved parameters, FellWalker and Dendrograms exhibit better performance than the other algorithms. The average deviations in clump parameters for all algorithms gradually increase as the size and SNR of clumps increase. Most of the algorithms except FellWalker exhibit significant deviation in extracting the total flux of clumps. Taken together, FellWalker, GaussClumps, and Dendrograms exhibit the best performance in detection completeness and extracting parameters. The deviation in virial parameter for the six algorithms is relatively low. When applying the six algorithms to the clump identification for the Rosette molecular cloud, ClumpFind1994, ClumpFind2006, GaussClumps, FellWalker, and Reinhold exhibit performance that is consistent with the results from the simulated test.
语种英语
内容类型期刊论文
源URL[http://210.72.145.45/handle/361003/9171]  
专题国家授时中心_高精度时间传递与精密测定轨研究室
作者单位1.中国科学院国家授时中心
2.中国科学院紫金山天文台
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GB/T 7714
Li Chong,Wang Hongchi,Wu Yuanwei,et al. assessingtheperformanceofmoleculargasclumpidentificationalgorithms[J]. researchinastronomyandastrophysics,2020,20(3).
APA Li Chong,Wang Hongchi,Wu Yuanwei,Ma Yuehui,&Lin Lianghao.(2020).assessingtheperformanceofmoleculargasclumpidentificationalgorithms.researchinastronomyandastrophysics,20(3).
MLA Li Chong,et al."assessingtheperformanceofmoleculargasclumpidentificationalgorithms".researchinastronomyandastrophysics 20.3(2020).
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