Deep Learning Based on Fine Tuning with Application to the Reliability Assessment of Similar Open Source Software

Y. Tamura, Shigeru Yamada
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Abstract

Recently, many open-source products have been used under the situations of general software development, because the cost saving and standardization. Therefore, many open-source products are gathering attention from many software development companies. Then, the reliability/quality of open-source products becomes very important factor for the software development. This paper focuses on the reliability/quality evaluation of open-source products. In particular, the large quantity fault data sets recorded on Bugzilla of open-source products is used in many open-source development projects. Then, the large amount of data sets of software faults is recorded on the Bugzilla. This paper proposes the reliability/quality evaluation approach based on the deep machine learning by using the large quantity fault data on the Bugzilla. Moreover, the large quantity fault data sets are analyzed by the deep machine learning based on the fine-tuning.
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基于微调的深度学习及其在同类开源软件可靠性评估中的应用
近年来,由于成本节约和标准化,许多开源产品已经在通用软件开发的情况下使用。因此,许多开源产品正受到许多软件开发公司的关注。因此,开源产品的可靠性/质量就成为影响软件开发的重要因素。本文主要研究开源产品的可靠性/质量评估。特别是开源产品在Bugzilla上记录的大量故障数据集,在很多开源开发项目中都有使用。然后在Bugzilla上记录大量的软件故障数据集。利用Bugzilla上的大量故障数据,提出了基于深度机器学习的可靠性/质量评估方法。此外,采用基于微调的深度机器学习方法对大量故障数据集进行分析。
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来源期刊
CiteScore
3.80
自引率
6.20%
发文量
57
审稿时长
20 weeks
期刊介绍: IJMEMS is a peer reviewed international journal aiming on both the theoretical and practical aspects of mathematical, engineering and management sciences. The original, not-previously published, research manuscripts on topics such as the following (but not limited to) will be considered for publication: *Mathematical Sciences- applied mathematics and allied fields, operations research, mathematical statistics. *Engineering Sciences- computer science engineering, mechanical engineering, information technology engineering, civil engineering, aeronautical engineering, industrial engineering, systems engineering, reliability engineering, production engineering. *Management Sciences- engineering management, risk management, business models, supply chain management.
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