Self-adaptive clock synchronization for computational grid
This paper presents an innovative method to synchronize physical clocks for a computational grid, in particular for a computational grid linked through the asynchronous Intranet or Internet environments. The method discussed is an asynchronous self-adaptive clock synchronization mechanism. Two strat...
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Veröffentlicht in: | Journal of computer science and technology 2003-07, Vol.18 (4), p.434-441 |
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creator | Zhao, Ying Zhou, WanLei Huang, JiuMei Yu, Shui Lanham, E. J. |
description | This paper presents an innovative method to synchronize physical clocks for a computational grid, in particular for a computational grid linked through the asynchronous Intranet or Internet environments. The method discussed is an asynchronous self-adaptive clock synchronization mechanism. Two strategies for clock synchronisationare introduced. (1), Use continuous time intervals to calculate the precision of clocks, which can reduce the effect of network delay efficiently. (2) Every node synchronizes its clock, with its leader actively. In addition, a node self-adaptive model is presented, and the relationship between the clock precision and synchronization time is induced, hence a node can predict when it should begin the synchronization process. Detailed simulation and extension of this issue are provided at the end of the paper. The presented model is both practical and feasible. |
doi_str_mv | 10.1007/BF02948917 |
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J.</creator><creatorcontrib>Zhao, Ying ; Zhou, WanLei ; Huang, JiuMei ; Yu, Shui ; Lanham, E. J.</creatorcontrib><description>This paper presents an innovative method to synchronize physical clocks for a computational grid, in particular for a computational grid linked through the asynchronous Intranet or Internet environments. The method discussed is an asynchronous self-adaptive clock synchronization mechanism. Two strategies for clock synchronisationare introduced. (1), Use continuous time intervals to calculate the precision of clocks, which can reduce the effect of network delay efficiently. (2) Every node synchronizes its clock, with its leader actively. In addition, a node self-adaptive model is presented, and the relationship between the clock precision and synchronization time is induced, hence a node can predict when it should begin the synchronization process. Detailed simulation and extension of this issue are provided at the end of the paper. The presented model is both practical and feasible.</description><identifier>ISSN: 1000-9000</identifier><identifier>EISSN: 1860-4749</identifier><identifier>DOI: 10.1007/BF02948917</identifier><language>eng</language><publisher>Beijing: Springer Nature B.V</publisher><subject>Clock synchronization ; Clocks ; Clocks & watches ; Computational grids ; Computer simulation ; Internet ; Intranets ; Mathematical models ; Nodes ; Studies ; Synchronism ; Synchronization ; Time synchronization</subject><ispartof>Journal of computer science and technology, 2003-07, Vol.18 (4), p.434-441</ispartof><rights>Science Press, Beijing China and Allerton Press Inc. 2003.</rights><rights>Copyright © Wanfang Data Co. Ltd. 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Detailed simulation and extension of this issue are provided at the end of the paper. The presented model is both practical and feasible.</description><subject>Clock synchronization</subject><subject>Clocks</subject><subject>Clocks & watches</subject><subject>Computational grids</subject><subject>Computer simulation</subject><subject>Internet</subject><subject>Intranets</subject><subject>Mathematical models</subject><subject>Nodes</subject><subject>Studies</subject><subject>Synchronism</subject><subject>Synchronization</subject><subject>Time synchronization</subject><issn>1000-9000</issn><issn>1860-4749</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2003</creationdate><recordtype>article</recordtype><sourceid>ABUWG</sourceid><sourceid>AFKRA</sourceid><sourceid>AZQEC</sourceid><sourceid>BENPR</sourceid><sourceid>CCPQU</sourceid><sourceid>DWQXO</sourceid><sourceid>GNUQQ</sourceid><recordid>eNpdkEFLxDAQhYMouK5e_AXFk4jVSZMmqTddXBUED-o5ZNNkbbfb1KTVXX-90RUFL_Nm4OMx7yF0iOEMA_DzqylkBRUF5ltohAWDlHJabMcdANIijl20F0INQDhQOkIXj6axqSpV11dvJtGN04skrFv94l1bfai-cm1inU-0W3ZD_32rJpn7qtxHO1Y1wRz86Bg9T6-fJrfp_cPN3eTyPtWZyPuUMqE4J9gQrIUhrBBCKGBY20wxlmeZsmVpuSYCopQCeI6BK2OEmOUzBmSMTje-76q1qp3L2g0-PhFkHerFqg6rmTRZTAQUgEb8eIN33r0OJvRyWQVtmka1xg1BYsYxAWAFj-jRP_TXWgjKIctzHKGTDaS9C8EbKztfLZVfSwzyq3T5Vzr5BF5Fck8</recordid><startdate>20030701</startdate><enddate>20030701</enddate><creator>Zhao, Ying</creator><creator>Zhou, WanLei</creator><creator>Huang, JiuMei</creator><creator>Yu, Shui</creator><creator>Lanham, E. 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subjects | Clock synchronization Clocks Clocks & watches Computational grids Computer simulation Internet Intranets Mathematical models Nodes Studies Synchronism Synchronization Time synchronization |
title | Self-adaptive clock synchronization for computational grid |
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