This paper considers the single antenna, static Gaussian broadcast channel in the finite blocklength regime. Second order achievable and converse rate regions are presented. Both a global reliability requirement and per-user reliability requirements are considered. The two-user case is analyzed in detail, and generalizations to the $K$-user case are also discussed. The largest second order achievable region presented here requires both superposition and rate splitting in the code construction, as opposed to the (infinite blocklength, first order) capacity region which does not require rate splitting. Indeed, the finite blocklength penalty causes superposition alone to under-perform other coding techniques in some parts of the region. In the two-user case with per-user reliability requirements, the capacity achieving superposition coding order (with the codeword of the user with the smallest SNR as cloud center) does not necessarily gives the largest second order region. Instead, the message of the user with the smallest point-to-point second order capacity should be encoded in the cloud center in order to obtain the largest second order region for the proposed scheme.
翻译:本文考虑了单一天线、固定的高斯广播频道在有限区段制度下的情况; 介绍了第二顺序可实现和反向速度的区域; 考虑了全球可靠性要求和每个用户的可靠性要求; 详细分析了两用户案例,并讨论了对美元用户案例的概括性。 这里介绍的最大第二顺序区域要求代码构造的叠加和分率,而不是不需要分率的(无限区段、第一顺序)能力区域。 事实上, 有限区段处罚导致该地区某些地方的超值单独导致其他编码技术的落后。 在涉及每个用户可靠性要求的两用户案例中,实现超级编码程序的能力(用最小的SNR作为云中心的用户的编码字)不一定给第二顺序区域带来最大的分数。 相反,拥有最小点对点第二顺序能力的用户的信息应该在云中心进行编码,以便获得拟议方案最大的第二顺序区域。