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HPDC
1999
IEEE

An Evaluation of Linear Models for Host Load Prediction

14 years 4 months ago
An Evaluation of Linear Models for Host Load Prediction
This paper evaluates linear models for predicting the Digital Unix five-second load average from 1 to 30 seconds into the future. A detailed statistical study of a large number of load traces leads to consideration of the Box-Jenkins models (AR, MA, ARMA, ARIMA), and the ARFIMA models (due to self-similarity.) These models, as well as a simple windowed-mean scheme, are evaluated by running a large number of randomized testcases on the load traces. The main conclusions are that load is consistently predictable to a useful degree, and that the simpler models such as AR are sufficient for doing this prediction. Effort sponsored in part by the Advanced Research Projects Agency and Rome Laboratory, Air Force Materiel Command, USAF, under agreement number F30602-96-1-0287, in part by the National Science Foundation under Grant CMS-9318163, and in part by a grant from the Intel Corporation. The U.S. Government is authorized to reproduce and distribute reprints for Governmental purposes notwi...
Peter A. Dinda, David R. O'Hallaron
Added 03 Aug 2010
Updated 03 Aug 2010
Type Conference
Year 1999
Where HPDC
Authors Peter A. Dinda, David R. O'Hallaron
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