A Neuro-Fuzzy Method to Improving Backfiring Conversion Ratios
نویسندگان
چکیده
Software project estimation is crucial aspect in delivering software on time and on budget. Software size is an important metric in determining the effort, cost, and productivity. Today, source lines of code and function point are the most used sizing metrics. Backfiring is a wellknown technique for converting between function points and source lines of code. However when backfiring is used, there is a high margin of error. This study introduces a method to improve the accuracy of backfiring. Intelligent systems have been used in software prediction models to improve performance over traditional techniques. For this reason, a hybrid Neuro-Fuzzy is used because it takes advantages of the neural network’s learning and fuzzy logic’s human-like reasoning. This paper describes an improved backfiring technique which uses Neuro-Fuzzy and compares the new method against the default conversion ratios currently used by software practitioners.
منابع مشابه
Calibrating Function Point Backfiring Conversion Ratios Using Neuro-Fuzzy Technique
Software size estimation is an important aspect in software development projects because poor estimations can lead to late delivery, cost overruns and possibly project failure. Backfiring is a popular technique for sizing and predicting the volume of source code by converting the function point metric into source lines of code mathematically using conversion ratios. While this technique is popu...
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ورودعنوان ژورنال:
- CoRR
دوره abs/1508.06191 شماره
صفحات -
تاریخ انتشار 2015