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Ratiometric decoding of pheromones for a biomimetic infochemical communication system.

机译:仿生信息化学通讯系统信息素的比率解码。

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摘要

Biosynthetic infochemical communication is an emerging scientific field employing molecular compounds for information transmission, labelling, and biochemical interfacing; having potential application in diverse areas ranging from pest management to group coordination of swarming robots. Our communication system comprises a chemoemitter module that encodes information by producing volatile pheromone components and a chemoreceiver module that decodes the transmitted ratiometric information via polymer-coated piezoelectric Surface Acoustic Wave Resonator (SAWR) sensors. The inspiration for such a system is based on the pheromone-based communication between insects. Ten features are extracted from the SAWR sensor response and analysed using multi-variate classification techniques, i.e., Linear Discriminant Analysis (LDA), Probabilistic Neural Network (PNN), and Multilayer Perception Neural Network (MLPNN) methods, and an optimal feature subset is identified. A combination of steady state and transient features of the sensor signals showed superior performances with LDA and MLPNN. Although MLPNN gave excellent results reaching 100% recognition rate at 400 s, over all time stations PNN gave the best performance based on an expanded data-set with adjacent neighbours. In this case, 100% of the pheromone mixtures were successfully identified just 200 s after they were first injected into the wind tunnel. We believe that this approach can be used for future chemical communication employing simple mixtures of airborne molecules.
机译:生物合成信息化学通讯是一个新兴的科学领域,采用分子化合物进行信息传输,标记和生化接口。在虫害管理到群居机器人的团体协调等各个领域都有潜在的应用。我们的通信系统包括一个化学发射器模块,它通过产生挥发性信息素成分来编码信息;一个化学接收器模块,它可以通过聚合物涂层的压电表面声波谐振器(SAWR)传感器来解码所传输的比例信息。这种系统的灵感是基于昆虫之间基于信息素的通信。从SAWR传感器响应中提取十个特征,并使用多变量分类技术(即线性判别分析(LDA),概率神经网络(PNN)和多层感知神经网络(MLPNN))进行分析,并且最佳特征子集为确定。传感器信号的稳态和瞬态特征相结合,显示了LDA和MLPNN的卓越性能。尽管MLPNN可以在400 s的时间内达到100%的识别率,但PNN在扩展的数据集基础上,与相邻邻域相比,在所有时间站上都表现出最佳的性能。在这种情况下,首次将其注入风洞后仅200 s就成功识别出100%的信息素混合物。我们相信,这种方法可以用于未来的化学交流中,采用空气中分子的简单混合物。

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