A Software Verification Method for the Internet of Things and Cyber-Physical Systems

Yu. Manzhos, Yevheniia Sokolova
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Abstract

With the proliferation of the Internet of Things devices and cyber-physical systems, there is a growing demand for highly functional and high-quality software. To address this demand, it is crucial to employ effective software verification methods. The proposed method is based on the use of physical quantities defined by the International System of Units, which have specific physical dimensions. Additionally, a transformation of the physical value orientation introduced by Siano is utilized. To evaluate the effectiveness of this method, specialized software defect models have been developed. These models are based on the statistical characteristics of the open-source C/C++ code used in drone applications. The advantages of the proposed method include early detection of software defects during compile-time, reduced testing duration, cost savings by identifying a significant portion of latent defects, improved software quality by enhancing reliability, robustness, and performance, as well as complementing existing verification techniques by focusing on latent defects based on software characteristics. By implementing this method, significant reductions in testing time and improvements in both reliability and software quality can be achieved. The method aims to detect 90% of incorrect uses of software variables and over 50% of incorrect uses of operations at both compile-time and run-time.
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面向物联网和网络物理系统的软件验证方法
随着物联网设备和网络物理系统的激增,对高功能和高质量软件的需求不断增长。为了满足这一需求,采用有效的软件验证方法是至关重要的。所提出的方法是基于使用国际单位制定义的物理量,这些物理量具有特定的物理尺寸。此外,利用了Siano引入的物理价值取向的转变。为了评估这种方法的有效性,已经开发了专门的软件缺陷模型。这些模型是基于无人机应用中使用的开源C/ c++代码的统计特征。所提出的方法的优点包括在编译时早期检测软件缺陷,减少测试时间,通过识别潜在缺陷的重要部分节省成本,通过增强可靠性,鲁棒性和性能提高软件质量,以及通过关注基于软件特征的潜在缺陷来补充现有的验证技术。通过实现这种方法,可以显著减少测试时间,提高可靠性和软件质量。该方法的目标是在编译时和运行时检测90%的软件变量的错误使用和50%以上的操作的错误使用。
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