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Muses: Distributed Data Migration System for Polystores

Kaitoua, Abdulrahman*; Rabl, Tilmann; Katsifodimos, Asterios; Markl, Volker
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摘要

Large datasets can originate from various sources and are being stored in heterogeneous formats, schemas, and locations. Typical data science tasks need to combine those datasets in order to increase their value and extract knowledge. This is done in various data processing systems with diverse execution engines. In order to take advantage of each execution engine's characteristics and APIs data scientists need to migrate and transform their datasets at a very high computational cost and manual labor. Data migration is challenging for two main reasons: i) execution engines expect specific types/shapes of the data as input; ii) there are various physical representations of the data (e.g., partitions). Therefore, migrating data efficiently requires knowledge of systems internals and assumptions. @@@ In this paper we present Muses, a distributed, highperformance data migration engine that is able to forward, transform, repartition, and broadcast data between distributed engines' instances efficiently. Muses does not require any changes in the underlying execution engines. In an experimental evaluation, we show that migrating data from one execution engine to another (in order to take advantage of faster, native operations) can increase a pipeline's performance by 30%.

关键词

Distributed systemsdata migrationdata transformationbig data enginedata integration

出版信息

会议名称
IEEE 35th International Conference on Data Engineering (ICDE)
会议地址
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会议日期
2019-4-8 ~ 2019-4-11
论文集名
2019 IEEE 35TH INTERNATIONAL CONFERENCE ON DATA ENGINEERING (ICDE 2019)
发表日期
2019
起止页码
1602-1605
DOI
10.1109/ICDE.2019.00152

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