A Case Study of Testing an Image Recognition

Chuanqi Tao, Dongyu Cao, Hongjing Guo, J. Gao
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引用次数: 0

Abstract

High-quality Artificial intelligence (AI) software in different domains, like image recognition, has been widely emerged in people’s daily life. They are built on machine learning models to implement intelligent features. However, the current research on image recognition software rarely discusses test questions, clear quality requirements, and evaluation methods. The quality of image recognition applications becomes more and more prominent. A three-dimensional(3D) classification decision table can help users to conduct classification-based test requirement analysis and modeling for any given mobile apps powered with AI functions in detection, classification, and prediction. This paper presents a case study of a realistic image recognition application called Calorie Mama using manual testing and automation testing with a 3D decision table. The study results indicate the proposed method is feasible and effective in quality evaluation.
一个测试图像识别的案例研究
高质量的人工智能(AI)软件在不同领域,如图像识别,已经广泛出现在人们的日常生活中。它们建立在机器学习模型上,以实现智能功能。然而,目前对图像识别软件的研究很少讨论测试问题、明确的质量要求和评估方法。图像识别应用的质量越来越突出。三维(3D)分类决策表可以帮助用户对任何给定的具有AI检测、分类和预测功能的移动应用进行基于分类的测试需求分析和建模。本文介绍了一个名为“卡路里妈妈”的现实图像识别应用程序的案例研究,该应用程序使用手动测试和带有3D决策表的自动化测试。研究结果表明,该方法在质量评价中是可行和有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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