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Energy Efficient M -ary Frequency-Shift Keying-Based Modulation Techniques for Visible Light Communication

机译:可见光通信的节能M频移键控键控调制技术

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In this article, we introduce two variants of energy efficient M-ary frequency-shift keying (FSK) for low data rate/low power Internet-of-Things (IoT) applications. Both variants, i.e., M-ary direct current (DC)-FSK and M-ary unipolar (U)-FSK are compatible with intensity-modulation and direct detection (IM-DD) implementation of visible light communication (VLC). The two techniques intrinsically differ in the manner of attaining a non-negative signal for intensity-modulation. M-ary DC-FSK uses a DC-offset, while, M-ary U-FSK sequentially transmits the positive and the sign flipped negative halves of the bipolar M-ary FSK symbols. The spectral efficiencies of M-ary DC-FSK and M-ary U-FSK are augmented by biorthogonal extension of frequency waveforms resulting in 2M-ary biDC-FSK and 2M-ary biU-FSK, respectively. Two optimal maximum likelihood (ML) receiver configurations with different complexities are introduced for M-ary DC-FSK/2M-ary biDC-FSK. Whereas, for M-ary U-FSK/2M-ary biU-FSK, an optimal ML and a suboptimal receiver are proposed. We appraise the performance of these methods in terms of Euclidean distance, bit error rate (BER) in additive white Gaussain noise and time dispersive channels, energy efficiency with respect to spectral efficiency and computational complexity. Simulations confirm that the proposed techniques are more energy efficient than classical M-ary pulse-amplitude modulation (PAM) in an absolute sense.
机译:在本文中,我们为低数据速率/低功耗互联网(物联网)应用引入了两个节能M-ARY频移键控(FSK)的两个变体。变型,即M-ARY直流(DC)-FSK和M-ARY单极(U)-FSK与可见光通信(VLC)的强度调制和直接检测(IM-DD)实现兼容。两种技术以获得强度调制的非负信号的方式有本质上不同。 M-ARY DC-FSK使用DC偏移量,而M-ARY U-FSK顺序地传输双极M-ARY FSK符号的倒翻转的正数和标志。 M-ARY DC-FSK和M-ARY U-FSK的光谱效率分别通过双正交扩展来增强频率波形,导致2M-ARY BIDC-FSK和2M-ARY BIU-FSK。为M-ARY DC-FSK / 2M-ARY BIDC-FSK引入了具有不同复杂性的两个最佳最大可能性(ML)接收器配置。然而,对于M-ARY U-FSK / 2M-ARY BIU-FSK,提出了最佳ML和次优接收器。我们在欧几里德距离,钻头误差率(BER)方面评估这些方法的性能,在附加白色高斯噪声和时间分散通道,相对于光谱效率和计算复杂性的能量效率。模拟确认所提出的技术比在绝对意义上的经典M-ARY脉冲幅度调制(PAM)更节能。

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