利用仿生自然河流系统算法优化有利测试路径序列

Nisha Rathee, R. S. Chhillar
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引用次数: 3

摘要

软件测试需要大量的时间和精力。测试人员的主要目标是用最少的时间、精力和较少的冗余来设计优化的测试序列。测试人员使用人工智能元启发式算法来优化测试序列。模型驱动方法仅在早期设计阶段对测试序列的生成有帮助。模型驱动方法在软件开发生命周期的设计阶段使用UML图来表示系统的行为,并为系统设计测试用例。所提出的方法利用自然河流系统利用UML活动图和序列图来优化有利的非冗余测试路径序列。使用python实现了该方法,结果表明,与其他元启发式算法相比,该方法提供了测试路径的全覆盖,测试节点冗余较少。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of Favourable Test Path Sequences Using Bio-Inspired Natural River System Algorithm
Testing of software requires a great amount of time and effort. The tester's main aim is to design optimized test sequences with a minimum amount of time, effort, and with less redundancy. Testers have used artificial intelligence meta-heuristic algorithms for optimization of test sequences. The model-driven approach is helpful in the generation of test sequences at early designing phase only. The model-driven approach uses UML diagram to represent the system's behavior and design test cases for the system at design stage of software development life cycle. The proposed approach uses natural river system for optimizing favourable non-redundant test path sequences using UML activity diagrams and sequence diagrams. The implementation of proposed approach has been done using python and results show that the proposed approach provides full coverage of test paths with less redundant test nodes compared to other meta heuristic algorithms.
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