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Seminoisy deterministic multiple-access channels: coding theorems for list codes and codes with feedback

机译:半噪声确定性多址通道:列表码的编码定理和带反馈的代码

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Whereas the average error capacity region R/sub a/ for the multiple-access channel (MAC) W: X /spl times/ Y /spl rarr/ Z has been known for a long time, very little is known about the capacity region R/sub m/ for the maximal error concept (as predicted by Ahlswede in 1971). In spite of great efforts during the past three decades even for some special examples of deterministic MAC, for which the maximal error concept coincides with the concept of unique decodability, the progress has been slow. It is known that the permission of list codes can be of great help, even if list sizes are of negligible rates (cf. the arbitrarily varying channel (AVC) and, especially, Shannon's (1948) zero-error capacity problem for the one-way channels). Therefore, it is theoretically appealing to look at their regions R/sub m,l/ for the MAC. For a nice class of deterministic MAC, which we call "seminoisy," we completely characterized R/sub m,l/. For these channels, the Y-input is determined uniquely by the output. Dueck's (1978) example with R/sub a/ /spl ne/ R/sub m/ and Vanroose's (1988) "noiseless binary switching MAC" with R/sub a/ = R/sub m/ fall into this class. Finally, for this class, the capacity region R/sub m,f/, which concerns complete feedback, equals R/sub m,l/.
机译:对于多路访问信道(MAC)的平均错误容量区域R / sub a / W:X / spl times / Y / spl rarr / Z早已为人所知,但对容量区域R的了解却很少/ sub m /表示最大误差概念(由Ahlswede在1971年预测)。尽管在过去的三十年中付出了巨大的努力,即使对于确定性MAC的一些特殊示例,最大误差概念与唯一可解码性概念相吻合,但进展缓慢。众所周知,即使列表大小的速率可以忽略不计,列表代码的许可也会有很大帮助(请参阅任意变化的信道(AVC),尤其是Shannon(1948)的零误差容量问题,方式渠道)。因此,从理论上讲,对于MAC而言,它们的区域R / sub m,l /具有吸引力。对于一类好的确定性MAC(我们称为“半自动”),我们完全表征了R / sub m,l /。对于这些通道,Y输入由输出唯一确定。 Dueck(1978)使用R / sub a / / spl ne / R / sub m /的示例和Vanroose(1988)使用R / sub a / = R / sub m /的“无噪声二进制交换MAC”属于此类。最后,对于此类,涉及完全反馈的容量区域R / sub m,f /等于R / sub m,l /。

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