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Capacity bounds for power- and band-limited optical intensity channels corrupted by Gaussian noise

机译:受高斯噪声破坏的功率和带宽受限的光强度通道的容量限制

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We determine upper and lower bounds on the channel capacity of power- and bandwidth-constrained optical intensity channels corrupted by white Gaussian noise. These bounds are shown to converge asymptotically at high optical signal-to-noise ratios (SNRs). Unlike previous investigations on low-intensity Poisson photon counting channels, such as some fiber optic links, this channel model is realistic for indoor free space optical channels corrupted by intense ambient light. An upper bound on the capacity is found through a sphere-packing argument while a lower bound is computed through the maxentropic source distribution. The role of bandwidth is expressed by way of the effective dimension of the set of signals and, together with an average optical power constraint, is used to determine bounds on the spectral efficiency of time-disjoint optical intensity signaling schemes. The bounds show that, at high optical SNRs, pulse sets based on raised-quadrature amplitude modulation (QAM) and prolate spheroidal wave functions have larger achievable maximum spectral efficiencies than traditional rectangular pulse basis sets. This result can be considered as an extension of previous work on photon counting channels which closely model low optical intensity channels with rectangular pulse shapes.
机译:我们确定受高斯白噪声破坏的功率和带宽受限的光强度通道的通道容量的上限和下限。这些边界显示为在高光学信噪比(SNR)下渐近收敛。与先前对低强度泊松光子计数通道(例如某些光纤链路)的研究不同,此通道模型对于被强烈环境光破坏的室内自由空间光通道是现实的。容量上限是通过球体填充参数确定的,而下限是通过最大熵源分布计算的。带宽的作用通过信号集的有效维度来表示,并与平均光功率约束一起用于确定时间不相交的光强度信令方案的频谱效率的界限。边界表明,在高光学信噪比下,基于升高的正交幅度调制(QAM)和扁球面波函数的脉冲集比传统的矩形脉冲基集具有更大的可达到的最大光谱效率。该结果可以被认为是对光子计数通道先前工作的扩展,该工作原理对具有矩形脉冲形状的低光强度通道进行了精确建模。

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