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Towards Estimating Physical Properties of Embedded Systems using Software Quality Metrics

机译:探讨使用软件质量指标估算嵌入式系统的物理特性

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The complexity of embedded devices poses new challenges to embedded software development in addition to the traditional physical requirements. Therefore, the evaluation of the quality of embedded software and its impact on these traditional properties becomes increasingly relevant. Concepts such as reuse, abstraction, cohesion, coupling, and other software attributes have been used as quality metrics in the software engineering domain. However, they have not been used in the embedded software domain. In embedded systems development, another set of tools is used to estimate physical properties such as power consumption, memory footprint, and performance. These tools usually require costly synthesis-and-simulation design cycles. In current complex embedded devices, one must rely on tools that can help design space exploration at the highest possible level, identifying a solution that represents the best design strategy in terms of software quality, while simultaneously meeting physical requirements. We present an analysis of the cross-correlation between software quality metrics, which can be extracted before the final system is synthesized, and physical metrics for embedded software. Using a neural network, we investigate the use of these cross-correlations to predict the impact that a given modification on the software solution will have on embedded software physical metrics. This estimation can be used to guide design decisions towards improving physical properties of embedded systems, while maintaining an adequate trade-off regarding software quality.
机译:除了传统的物理要求之外,嵌入式设备的复杂性对嵌入式软件开发的新挑战造成了新的挑战。因此,评估嵌入式软件的质量及其对这些传统性质的影响变得越来越相关。诸如重用,抽象,凝聚,耦合和其他软件属性等概念已被用作软件工程域中的质量指标。但是,它们尚未在嵌入式软件域中使用。在嵌入式系统开发中,另一组工具用于估算功耗,内存占用和性能等物理性质。这些工具通常需要昂贵的合成和仿真设计周期。在当前复杂的嵌入式设备中,必须依赖于可以在最高可能级别设计空间探索的工具,识别在软件质量方面代表最佳设计策略的解决方案,同时满足物理要求。我们介绍了软件质量指标之间的互相关分析,可以在合成最终系统之前提取,以及嵌入式软件的物理指标。使用神经网络,我们调查这些互相关来预测对软件解决方案对嵌入式软件物理度量的给定修改的影响。该估计可用于指导在提高嵌入式系统的物理特性方面的设计决策,同时保持关于软件质量的充分折衷。

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