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Novel preemptive intelligent artificial intelligence-model for detecting inconsistency during software testing

Govinda, SangeethaPrasanthi, B. G.Vincent, Agnes Nalini
IAES International Journal of Artificial Intelligence (IJ-AI) (Sinta 1)Vol. 0 No. 01 Juni 2025
DOI10.11591/ijai.v14.i3.pp1781-1789

Abstrak

The contribution of artificial intelligence (AI)-based modelling is highly significant in automating the software testing process; thereby enhancing the cost, resources, and productivity while performing testing. Review of existing AI-models towards software testing showcases yet an open-scope for further improvement as yet the conventional AI-model suffers from various challenges especially in perspective of test case generation. Therefore, the proposed scheme presents a novel preemptive intelligent computational framework that harnesses a unique ensembled AI-model for generating and executing highly precise and optimized test-cases resulting in an outcome of adversary or inconsistencies associated with test cases. The ensembled AI-model uses both unsupervised and supervised learning approaches on publicly available outlier dataset. The benchmarked outcome exhibits supervised learning-based AI-model to offer 21% of reduced error and 1.6% of reduced processing time in contrast to unsupervised scheme while performing software testing.

Kata Kunci

Artificial intelligenceAutomationErrorInconsistencySoftware testing

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Novel preemptive intelligent artificial intelligence-model for detecting inconsistency during software testing | IAES International Journal of Artificial Intelligence (IJ-AI) | Publiora