中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
time series analysis for bug number prediction

文献类型:会议论文

作者Wu Wenjin ; Zhang Wen ; Yang Ye ; Wang Qing
出版日期2010
会议名称2nd International Conference on Software Engineering and Data Mining, SEDM 2010
会议日期37430
会议地点Chengdu, China
关键词Computer software Data mining Economics Forecasting Managers Polynomials Project management Regression analysis Systems engineering Time series
页码589-596
英文摘要Monitoring and predicting the increasing or decreasing trend of bug number in a software system is of great importance to both software project managers and software end-users. For software managers, accurate prediction of bug number of a software system will assist them in making timely decisions, such as effort investment and resource allocation. For software end-users, knowing possible bug number of their systems will enable them to take timely actions in coping with loss caused by possible system failures. To accomplish this goal, in this paper, we model the bug number data per month as time series and, use time series analysis algorithms as ARIMA and X12 enhanced ARIMA to predict bug number, in comparison with polynomial regression as the baseline. X12 is the widely used seasonal adjustment algorithm proposed by U.S. Census. The case study based on Debian bug data from March 1996 to August 2009 shows that X12 enhanced ARIMA can achieve the best performance in bug number prediction. Moreover, both ARIMA and X12 enhanced ARIMA outperform the baseline as polynomial regression.
会议主办者Int. Assoc. Inf., Cult., Hum. Ind. Techno. (AICIT); Inst. Electr. Electro. Eng., Inc.; Inst. Electr. Electron. Eng.(IEEE), Chengdu Sect.; National Natural Science Foundation of China(NSFC); University of Electronic Science and Technology of China (UESTC); et. al.
会议录2nd International Conference on Software Engineering and Data Mining, SEDM 2010
会议录出版地United States
ISBN号9788990000000
源URL[http://124.16.136.157/handle/311060/8940]  
专题软件研究所_互联网软件技术实验室 _会议论文
推荐引用方式
GB/T 7714
Wu Wenjin,Zhang Wen,Yang Ye,et al. time series analysis for bug number prediction[C]. 见:2nd International Conference on Software Engineering and Data Mining, SEDM 2010. Chengdu, China. 37430.

入库方式: OAI收割

来源:软件研究所

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