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High-Rate Ultrasonic Through-Wall Communications Using MIMO-OFDM

机译:使用MIMO-OFDM的高速超声波穿墙通信

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This paper investigates methods to achieve high-rate data transmission through metallic barriers using ultrasound. Multiple-input-multiple-output-orthogonal frequency division multiplexing (MIMO-OFDM) is employed in conjunction with interference mitigation techniques to reduce throughput-limiting crosstalk. Several crosstalk mitigation strategies are investigated and their theoretical and practical bit-loaded data rates are determined for the general case of A transmitters and A receivers (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 theoretical capacity performance scales linearly with the number of channels. This paper also investigates the use of novel power allocation techniques in a MIMO-OFDM acoustic-electric channel, which show significant throughput performance gains over conventional bit-loading and greedy bit-filling techniques. Finally, this paper presents a study on the effects of transducer misalignment on the multichannel theoretical capacity and achievable data transmission rates using bit-loading techniques.
机译:本文研究了使用超声波通过金属屏障实现高速数据传输的方法。多输入多输出正交频分复用(MIMO-OFDM)与干扰缓解技术结合使用,以减少吞吐量受限的串扰。研究了几种串扰缓解策略,并针对A发射器和A接收器的一般情况(A×A MIMO)确定了其理论和实际位负载数据速率。物理MIMO声电通道阵列是使用40毫米(1.575英寸)厚的钢屏障形成的,具有7对4 MHz标称谐振频率压电盘式换能器,每对直径为10毫米(0.394英寸)。为了研究串扰的影响,换能器之间的距离很近,并且每个收发器对在金属栅栏的相对两侧同轴对齐。结果表明,通过使用串扰缓解技术,合计的多通道理论容量性能随通道数呈线性比例变化。本文还研究了新的功率分配技术在MIMO-OFDM声电信道中的使用,与传统的位加载和贪婪的位填充技术相比,它们显示出显着的吞吐量性能提升。最后,本文介绍了使用位加载技术对换能器未对准对多通道理论容量和可达到的数据传输速率的影响的研究。

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