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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Indoor Airborne Ultrasonic Wireless Communication Using OFDM Methods
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Indoor Airborne Ultrasonic Wireless Communication Using OFDM Methods

机译:使用OFDM方法的室内机载超声波无线通信

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Concerns still exist over the safety of prolonged exposure to radio frequency (RF) wireless transmissions and there are also potential data security issues due to remote signal interception techniques such as Bluesniping. Airborne ultrasound may be used as an alternative to RF for indoor wireless communication systems for securely transmitting data over short ranges, as signals are difficult to intercept from outside the room. Two types of air-coupled capacitive ultrasonic transducer were used in the implementation of an indoor airborne wireless communication system. One was a commercially available SensComp series 600 ultrasonic transducer with a nominal frequency of 50 kHz, and the other was a prototype transducer with a high-k dielectric layer operating at higher frequencies from 200 to 400 kHz. Binary phase-shift keying (BPSK), quadrature phase-shift keying (QPSK), and quadrature amplitude modulation (QAM)-based orthogonal frequency division multiplexing modulation methods were successfully implemented using multiple orthogonal subchannels. The modulated ultrasonic signal packets were synchronized using a wireless link, and a least-squares channel estimation algorithm was used to compensate the phase and amplitude distortion introduced by the air channel. By sending and receiving the ultrasonic signals using the SensComp transducers, the achieved maximum system data rate was up to 180 kb/s using 16-QAM with ultrasonic channels from 55 to 99 kHz, over a lineof-sight transmission distance of 6 m with no detectable errors. The transmission range could be extended to 9 and 11 m using QPSK and BPSK modulation schemes, respectively. The achieved data rates for the QPSK and BPSK schemes were 90 and 45 kb/s using the same bandwidth. For the high-k ultrasonic transducers, a maximum data rate up to 800 kb/s with no measurable errors was achieved up to a range of 0.7 m. The attainable transmission ranges were increased to 1.1 and 1.2 m with data rates of 400 and 200 kb/s using QPSK and BPSK, respectively.
机译:对于长时间暴露于射频(RF)无线传输的安全性仍然存在担忧,并且由于诸如Bluesniping之类的远程信号拦截技术,还存在潜在的数据安全问题。机载超声可以用作室内无线通信系统的RF的替代产品,以在短距离内安全地传输数据,因为信号很难从房间外截获。在室内机载无线通信系统的实现中使用了两种类型的空气耦合电容超声换能器。一个是市售的SensComp 600系列超声换能器,标称频率为50 kHz,另一个是具有高k介电层的原型换能器,其工作频率范围为200至400 kHz。使用多个正交子信道成功实现了基于二进制相移键控(BPSK),正交相移键控(QPSK)和基于正交幅度调制(QAM)的正交频分复用调制方法。使用无线链路对调制后的超声信号包进行同步,并使用最小二乘信道估计算法补偿空中信道引入的相位和幅度失真。通过使用SensComp传感器发送和接收超声波信号,使用16-QAM在55至99 kHz的超声波通道下实现的最大系统数据速率高达180 kb / s,视距传输距离为6 m,无可检测的错误。使用QPSK和BPSK调制方案,传输范围可以分别扩展到9和11 m。使用相同的带宽,QPSK和BPSK方案获得的数据速率分别为90和45 kb / s。对于高k超声换能器,在0.7 m的范围内实现了高达800 kb / s的最大数据速率而没有可测量的误差。使用QPSK和BPSK分别以400 kb / s和200 kb / s的数据速率将可达到的传输范围提高到1.1和1.2 m。

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