Join queries optimization in the distributed databases using a hybrid multi-objective algorithm


연구 분야: Databases



학회: Cluster Computing


초록

In the distributed database systems, the relations needed by a query can be kept in several locations. This process significantly increases potential corresponding Query Execution Plans (QEP’s) for a user query. Henceforth, in addition to the expense of local computing, the charge of transferring data between different cloud sites should also be considered. It does not sound logical to investigate all potential query plans in a high setting like this. The best query plan (regarding cost) must be generated for processing a given query. A new hybrid multi-objective genetic and bat algorithm, a Multi-Objective Genetic Algorithm with BAT (MOGABAT), is used in the present article to produce the best query plans. The functionality comparison is made on different join graph structures, among MOGABAT, Multi-Objective BAT (MOBAT), and Non-dominated Sorting Genetic Algorithm II (NSGA-II). The obtained results have shown that the quality of generated query plans is enhanced for the join graph structures. Nevertheless, more execution time is needed.


Author Profile
Elham Azhir

Department of Computer Engineering Science and Research Branch Islamic Azad University Tehran Iran

Andorra
Author Profile
Nima Jafari Navimipour

Future Technology Research Center National Yunlin University of Science and Technology 123 University Road Section 3 Douliou 64002 Yunlin Taiwan

Andorra
Author Profile
Mehdi Hosseinzadeh

Pattern Recognition and Machine Learning Lab Gachon University 1342 Seongnamdaero Sujeonggu Seongnam 13120 Republic of Korea

Andorra

📄 논문 정보

발행 연도 2021년
인용수 0
출판 국가 Iraq, Andorra, Turkey
사이트 Springer
좋아요 수 0

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