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首页> 外文期刊>IEEE transactions on nanobioscience >Biological Optical-to-Chemical Signal Conversion Interface: A Small-Scale Modulator for Molecular Communications
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Biological Optical-to-Chemical Signal Conversion Interface: A Small-Scale Modulator for Molecular Communications

机译:生物光化学信号转换接口:用于分子通信的小型调制器

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Although many exciting applications of molecular communication (MC) systems are envisioned to be at microscale, the MC testbeds reported in the literature so far are mostly at macroscale. This may partially be due to the fact that controlling an MC system at microscale is challenging. To link the macroworld to the microworld, we propose and demonstrate a biological signal conversion interface that can also be seen as a microscale modulator. In particular, the proposed interface transduces an optical signal, which is controlled using a light-emitting diode, into a chemical signal by changing the pH of the environment. The modulator is realized using Escherichia coli bacteria as microscale entity expressing the light-driven proton pump gloeorhodopsin from Gloeobacter violaceus. Upon inducing external light stimuli, these bacteria locally change their surrounding pH level by exporting protons into the environment. To verify the effectiveness of the proposed optical-to-chemical signal converter, we analyze the pH signal measured by a pH sensor, which serves as a receiver. We develop an analytical parametric model for the induced chemical signal as a function of the applied optical signal. Using this model, we derive a training-based channel estimator that estimates the parameters of the proposed model to fit the measurement data based on a least square error approach. We further derive the optimal maximum likelihood detector and a suboptimal low-complexity detector to recover the transmitted data from the measured received signal. It is shown that the proposed parametric model is in good agreement with the measurement data. Moreover, for an example scenario, we show that the proposed setup is able to successfully convert an optical signal representing a sequence of binary symbols into a chemical signal with a bit rate of 1 bit/min and recover the transmitted data from the chemical signal using the proposed estimation and detection schemes. The proposed modulator may form the basis for future MC testbeds and applications at microscale.
机译:尽管可以预料分子通信(MC)系统的许多令人兴奋的应用都是在微观尺度上进行的,但迄今为止,文献中报道的MC测试平台大多是在宏观尺度上进行的。这可能部分是由于在微尺度上控制MC系统具有挑战性这一事实。为了将宏观世界与微观世界联系起来,我们提出并演示了一种生物信号转换接口,该接口也可以看作是微型调节器。特别地,所提出的接口通过改变环境的pH将使用发光二极管控制的光信号转换为化学信号。该调节剂使用大肠杆菌细菌作为微型实体来实现,该实体表达来自紫罗兰杆菌的光驱动质子泵浦视紫红质。在诱导外部光刺激后,这些细菌通过将质子输出到环境中来局部改变其周围的pH值。为了验证所提出的光化学信号转换器的有效性,我们分析了作为接收器的pH传感器测量的pH信号。我们针对所产生的化学信号开发了一个解析参数模型,该模型是所施加光信号的函数。使用该模型,我们得出了一个基于训练的信道估计器,它基于最小二乘误差方法估计所提出模型的参数以适合测量数据。我们进一步推导最佳的最大似然检测器和次优的低复杂度检测器,以从测量的接收信号中恢复发送的数据。结果表明,所提出的参数模型与实测数据吻合良好。此外,对于一个示例场景,我们表明,提出的设置能够成功地将代表二进制符号序列的光信号转换为比特率为1 bit / min的化学信号,并使用以下方法从化学信号中恢复传输的数据:提出的估计和检测方案。拟议的调制器可为将来的微型计算机测试平台和应用奠定基础。

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