A Synchronization-assisted Photolysis Scheme to Mitigate ISI in Diffusion-based Molecular Communication

Yue Xiao, Huafeng Bian, Yue Sun, Yifan Chen, Fanqiang Lin
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引用次数: 1

Abstract

Bio-inspired Molecular Communication (MC) is a promising communication paradigm benefiting from the advance in bio-nanotechnology. Due to diffusion motion’s slow and stochastic nature, inter-symbol interference (ISI), resulting from previous symbols’ residual information molecules, inevitably occurs in diffusion-based MC. As one of the challenges in diffusion-based MC, ISI impacts signal detection significantly. This paper proposes a synchronization-assisted photolysis scheme to mitigate ISI and improve the bit error rate (BER) performance. Inspired by on-off keying (OOK) modulation, the proposed modulation implements a switch of molecules and light alternatively. The light emitted is triggered by a synchronization signal, and the photolysis reactions could reduce the redundant molecules. We establish a hybrid channel model of diffusion and photolysis-reaction and derive the relevant channel impulse response (CIR) expression. Through the maximum posterior estimation scheme the optimal decision threshold is obtained and the BER performance of the proposed scheme is analysed in terms of different time intervals of the system. Numerical simulations show that the proposed method can eliminate ISI effectively.
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一种同步辅助光解方案减轻扩散基分子通信中的ISI
生物启发分子通信(MC)是一种很有前途的通信模式,得益于生物纳米技术的进步。由于扩散运动的缓慢和随机特性,在基于扩散的融合中不可避免地会产生符号间干扰(ISI), ISI是基于扩散的融合中所面临的挑战之一,对信号检测产生重大影响。本文提出了一种同步辅助光解方案,以减轻ISI,提高误码率(BER)性能。受开关键控(OOK)调制的启发,提出的调制实现了分子和光的交替开关。发射的光由同步信号触发,光解反应可以减少多余的分子。我们建立了扩散和光分解反应的混合通道模型,并推导了相应的通道脉冲响应表达式。通过最大后验估计方案获得了最优决策阈值,并分析了该方案在系统不同时间间隔下的误码率性能。数值仿真结果表明,该方法能够有效地消除码间干扰。
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