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首页> 外文期刊>Measurement Science & Technology >Enhancing electrical capacitance tomographic sensor design using fuzzy theory based quantifiers
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Enhancing electrical capacitance tomographic sensor design using fuzzy theory based quantifiers

机译:使用基于模糊理论的量词增强电容层析成像传感器设计

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摘要

Electrical capacitance tomography is a non-invasive imaging technique that uses measured capacitances to recover the unknown permittivity distribution in the medium. A new method using fuzzy theory and quantifiers in enhancing the ECT sensor system design and the associated data fusion is presented. Unlike the traditional methods that set a single indicator as the optimization objective, the method presented in the paper provides a way to integrate multiple evaluation criteria (some may conflict with others) of ECT sensors into a single comparable index. The uniformity index, the correlation coefficient and combinatorial fuzzy index of ECTs are set as the optimization objectives respectively at the experimental stage to evaluate the validity of the method. The experiments are set up based on multi-index orthogonal design and the experimental results indicate that the fuzzy optimization method can derive an optimized sensor structure with an evenly distributed sensitivity field and a better imaging reconstruction result at the same time. It proves the method is intuitive, reliable, and practical.
机译:电容层析成像是一种非侵入式成像技术,使用测得的电容来恢复介质中未知的介电常数分布。提出了一种利用模糊理论和量词来增强ECT传感器系统设计和相关数据融合的新方法。与将单个指标设置为优化目标的传统方法不同,本文介绍的方法提供了一种将ECT传感器的多个评估标准(有些可能与其他标准冲突)集成到单个可比较指标中的方法。在实验阶段分别将ECT的均匀度指标,相关系数和组合模糊指标作为优化目标,以评价该方法的有效性。基于多指标正交设计进行了实验,实验结果表明,模糊优化方法可以得到灵敏度场均匀分布,成像重建效果更好的传感器结构。证明了该方法直观,可靠,实用。

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