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AQUAdexIM: highly efficient in-memory indexing and querying of astronomy time series images
Authors:Zhi Hong  Ce Yu  Jie Wang  Jian Xiao  Chenzhou Cui  Jizhou Sun
Institution:1.School of Computer Science and Technology,Tianjin University,Tianjin,China;2.School of Computer Software,Tianjin University,Tianjin,China;3.National Astronomical Observatories,Chinese Academy of Sciences,Beijing,China
Abstract:Astronomy has always been, and will continue to be, a data-based science, and astronomers nowadays are faced with increasingly massive datasets, one key problem of which is to efficiently retrieve the desired cup of data from the ocean. AQUAdexIM, an innovative spatial indexing and querying method, performs highly efficient on-the-fly queries under users’ request to search for Time Series Images from existing observation data on the server side and only return the desired FITS images to users, so users no longer need to download entire datasets to their local machines, which will only become more and more impractical as the data size keeps increasing. Moreover, AQUAdexIM manages to keep a very low storage space overhead and its specially designed in-memory index structure enables it to search for Time Series Images of a given area of the sky 10 times faster than using Redis, a state-of-the-art in-memory database.
Keywords:
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