利用MIMO-OFDM技术通过金属屏障进行高速率超声通信

J. Ashdown, G. Saulnier, T. Lawry, K. Wilt, H. Scarton
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引用次数: 7

摘要

本文介绍了利用超声波信号技术通过金属屏障实现高数据传输率的方法。由于声电信道的频率选择性,采用正交频分复用技术(OFDM)可以获得较高的频谱效率。使用多个并行通道来进一步提高数据速率。多输入多输出(MIMO)技术用于减少串扰,否则串扰会大大限制性能和可实现的数据速率。研究了几种串扰缓解技术,并确定了它们在A发射机和A接收机(即A×A MIMO)的一般情况下的理论容量性能。物理MIMO声电通道阵列使用40毫米(1.575英寸)厚的钢屏障与7对4 MHz标称谐振频率的压电盘换能器形成,每个直径10毫米(0.394英寸)。为了研究串扰的影响,换能器的间隔很近,每个发射-接收对同轴地排列在金属屏障的两侧。结果表明,通过使用串扰缓解技术,总多通道容量性能与所使用的通道数量呈线性增长,并在高平均信噪比(SNR)水平下接近700 Mbps。最后,探讨了在不同水平的矩形正交调幅(QAM)下比特加载技术的使用,并比较了可实现的数据速率和多通道理论容量性能。
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High-rate ultrasonic communication through metallic barriers using MIMO-OFDM techniques
This paper presents methods to achieve high data transmission rates through metallic barriers using ultrasonic signalling techniques. Due to the frequency selective nature of acoustic-electric channels, orthogonal frequency division multiplexing (OFDM) is employed which achieves high spectral efficiency. Multiple parallel channels are used to further increase data rates. Multiple-input multiple-output (MIMO) techniques are used to reduce crosstalk that would otherwise greatly limit performance and achievable data rates. Several crosstalk mitigation techniques are investigated and their theoretical capacity performances are determined for the general case of A transmitters and A receivers (i.e. A×A MIMO). A physical MIMO acoustic-electric channel array is formed using a 40 mm (1.575 in) thick steel barrier with seven pairs of 4 MHz nominal resonant frequency piezoelectric disk transducers, each with 10 mm (0.394 in) diameter. To investigate the effects of crosstalk, the transducers are closely spaced, and each transmitter-receiver pair is coaxially aligned on opposing sides of the metallic barrier. It is shown that, with the use of crosstalk mitigation techniques, the aggregate multichannel capacity performance scales linearly with the number of channels used and approaches 700 Mbps at high average signal-to-noise ratio (SNR) levels. Finally, the use of bit-loading techniques are explored using several levels of rectangular quadrature amplitude modulation (QAM), and the achievable data rates are compared with each other and to the multichannel theoretical capacity performances.
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