暂态分析软件功能测试智能评估方法研究

Chen Ping, Zhang Jun-zhe
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引用次数: 0

摘要

在瞬态分布式云计算环境下,软件容易受到攻击,导致软件功能不完备,因此有必要进行功能测试。为了解决无监督测试方法开销大、复杂度高的问题,提出了一种基于主动深度学习算法的瞬态分析软件功能测试智能评估方法。首先,利用关联规则挖掘方法构建暂态分析软件功能测试的主动深度学习数学模型,分析软件功能故障的相关维数特征;然后采用软件功能完备度谱密度分布法对软件的可靠性进行了测度。建立了暂态分布式云计算环境下暂态分析软件功能测试的智能评估模型,实现了功能测试和可靠性智能评估。最后,通过仿真实验验证了瞬态分析软件的性能。结果表明,采用该方法对暂态分析软件进行功能测试,软件功能完整性定位精度高,暂态分析软件功能测试智能评价具有良好的自适应性。保证了软件的安全可靠运行。
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Research on Intelligent Evaluation Method of Transient Analysis Software Function Test
In transient distributed cloud computing environment, software is vulnerable to attack, which leads to software functional completeness, so it is necessary to carry out functional testing. In order to solve the problem of high overhead and high complexity of unsupervised test methods, an intelligent evaluation method for transient analysis software function testing based on active depth learning algorithm is proposed. Firstly, the active deep learning mathematical model of transient analysis software function test is constructed by using association rule mining method, and the correlation dimension characteristics of software function failure are analyzed. Then the reliability of the software is measured by the spectral density distribution method of software functional completeness. The intelligent evaluation model of transient analysis software function testing is established in the transient distributed cloud computing environment, and the function testing and reliability intelligent evaluation are realized. Finally, the performance of the transient analysis software is verified by the simulation experiment. The results show that the accuracy of the software functional integrity positioning is high and the intelligent evaluation of the transient analysis software function testing has a good self-adaptability by using this method to carry out the function test of the transient analysis software. It ensures the safe and reliable operation of the software.
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