An empirical investigation of changes in some software properties over time

J. Gil, M. Goldstein, Dany Moshkovich
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引用次数: 4

Abstract

Software metrics are easy to define, but not so easy to justify. It is hard to prove that a metric is valid, i.e., that measured numerical values imply anything on the vaguely defined, yet crucial software properties such as complexity and maintainability. This paper employs statistical analysis and tests to check some plausible assumptions on the behavior of software and metrics measured for this software in retrospective on its versions evolution history. Among those are the reliability assumption implicit in the application of any code metric, and the assumption that the magnitude of change, i.e., increase or decrease of its size, in a software artifact is correlated with changes to its version number. Putting a suite of 36 metrics to the trial, we confirm most of the assumptions on a large repository of software artifacts. Surprisingly, we show that a substantial portion of the reliability of some metrics can be observed even in random changes to architecture. Another surprising result is that Boolean-valued metrics tend to flip their values more often in minor software version increments than in major increments.
对一些软件属性随时间变化的经验调查
软件度量很容易定义,但不容易证明。很难证明度量是有效的,也就是说,测量的数值暗示了模糊定义上的任何东西,但重要的软件属性,如复杂性和可维护性。本文采用统计分析和测试来检查一些关于软件行为的合理假设,以及在回顾其版本演变历史时为该软件测量的度量。其中包括在任何代码度量的应用中隐含的可靠性假设,以及软件工件中变化的幅度,即其大小的增加或减少与其版本号的变化相关的假设。将一套36个度量标准放入试验中,我们确认了大型软件工件存储库中的大多数假设。令人惊讶的是,我们表明,即使在体系结构的随机更改中,也可以观察到一些度量的可靠性的很大一部分。另一个令人惊讶的结果是,布尔值度量在较小的软件版本增量中比在较大的软件版本增量中更经常地翻转它们的值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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