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Reed-Solomon decoding algorithms for digital audio broadcasting inthe AM band

机译:用于AM频段数字音频广播的Reed-Solomon解码算法

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Digital audio broadcasting (DAB) systems for the AM band are being developed to provide higher-quality radio broadcasts, broader coverage, and data services. Transmission is typically done by means of multistreaming with QAM/OFDM in the high bits/sec/Hz regime in which Reed-Solomon codes, either alone or in concatenation with inner trellis coded modulation (TCM), are natural choices for error control. For the AM DAB application, Reed-Solomon codes with suboptimal decoders of the bounded-distance type offer error correction important for bringing down the error probability, but also offers error detection important for generating block detected-error flags for use in the error concealment, or error mitigation, algorithm in the audio decoder. For multistream systems, the block detected-error flags can also be used to select the component streams retained by the audio decoder. In this paper, we evaluate the performance of Reed-Solomon codes in terms of both detected (flag) and undetected error rates for DAB applications. We provide simulation results for a variety of decoding algorithms, including hard-decision decoding (HDD), successive-erasure decoding (SED), and fixed-erasure decoding (FED), and discuss the channel environments in which each of these algorithms may be appropriate. Among other results, for example, we address the issue of matching the blocklength of the Reed-Solomon code to the audio decoder with its variable frame structure. From our simulation results for HDD, we conclude that the increased error correction capability of longer Reed-Solomon codes more than compensates for the mismatch in terms of error mitigation in the audio decoder. We also observe that SED provides only small improvements for uniform interference channels, while FED offers considerable improvements for some partial-band interference channels. We describe an appealing two-mode adaptive configuration using HDD and FED for mitigating partial-band interference caused by some second-adjacent AM broadcasts
机译:正在开发用于AM频段的数字音频广播(DAB)系统,以提供更高质量的无线电广播,更广泛的覆盖范围和数据服务。传输通常是通过在高比特/秒/赫兹体制下利用QAM / OFDM进行多流传输来实现的,在该体制中,单独使用Reed-Solomon码或与内部网格编码调制(TCM)一起使用都是里德-索罗门码进行错误控制的自然选择。对于AM DAB应用,具有有限距离类型的次优解码器的Reed-Solomon码提供了对降低错误概率很重要的纠错功能,但对于生成用于错误隐藏的块检测错误标志也很重要的错误检测功能,或错误缓解,音频解码器中的算法。对于多流系统,块检测到的错误标志还可用于选择音频解码器保留的分量流。在本文中,我们从DAB应用的检出(标记)和未检出错误率的角度评估Reed-Solomon码的性能。我们提供了各种解码算法的仿真结果,包括硬决策解码(HDD),连续擦除解码(SED)和固定擦除解码(FED),并讨论了每种算法可能在其中的信道环境。适当。例如,在其他结果中,我们解决了将Reed-Solomon码的块长与音频解码器及其可变帧结构进行匹配的问题。从HDD的仿真结果可以得出结论,更长的Reed-Solomon码的纠错能力增强了,可以在音频解码器中减少误码,从而弥补失配。我们还观察到,SED对统一干扰信道仅提供了很小的改进,而FED对某些部分频带干扰信道提供了相当大的改进。我们描述了一种使用HDD和FED的有吸引力的双模自适应配置,用于缓解由某些第二相邻AM广播引起的部分频带干扰

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