NaviQAte: Functionality-Guided Web Application Navigation

September 16, 2024 Β· Declared Dead Β· πŸ› arXiv.org

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Authors Mobina Shahbandeh, Parsa Alian, Noor Nashid, Ali Mesbah arXiv ID 2409.10741 Category cs.SE: Software Engineering Cross-listed cs.CL Citations 9 Venue arXiv.org Last Checked 4 months ago
Abstract
End-to-end web testing is challenging due to the need to explore diverse web application functionalities. Current state-of-the-art methods, such as WebCanvas, are not designed for broad functionality exploration; they rely on specific, detailed task descriptions, limiting their adaptability in dynamic web environments. We introduce NaviQAte, which frames web application exploration as a question-and-answer task, generating action sequences for functionalities without requiring detailed parameters. Our three-phase approach utilizes advanced large language models like GPT-4o for complex decision-making and cost-effective models, such as GPT-4o mini, for simpler tasks. NaviQAte focuses on functionality-guided web application navigation, integrating multi-modal inputs such as text and images to enhance contextual understanding. Evaluations on the Mind2Web-Live and Mind2Web-Live-Abstracted datasets show that NaviQAte achieves a 44.23% success rate in user task navigation and a 38.46% success rate in functionality navigation, representing a 15% and 33% improvement over WebCanvas. These results underscore the effectiveness of our approach in advancing automated web application testing.
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