Feedback is Good, Active Feedback is Better: Block Attention Active Feedback Codes

被引:2
|
作者
Ozfatura, Emre [1 ]
Shao, Yulin [1 ,3 ]
Ghazanfari, Amin [2 ]
Perotti, Alberto [2 ]
Popovic, Branislav [2 ]
Gunduz, Deniz
机构
[1] Imperial Coll London, Informat Proc & Commun Lab IPC Lab, London, England
[2] Huawei Technol Sweden AB, Radio Transmiss Technol Lab, S-16494 Kista, Sweden
[3] Univ Exeter, Dept Engn, Exeter, Devon, England
基金
英国工程与自然科学研究理事会;
关键词
active feedback; channel coding; deep learning; feedback; transformer; self-attention; ADDITIVE NOISE CHANNELS; CODING SCHEME; CAPACITY; LENGTH;
D O I
10.1109/ICC45041.2023.10278839
中图分类号
TN [电子技术、通信技术];
学科分类号
0809 ;
摘要
Deep neural network (DNN)-assisted channel coding designs, such as low-complexity neural decoders for existing codes, or end-to-end neural-network-based auto-encoder designs are gaining interest recently due to their improved performance and flexibility; particularly for communication scenarios in which high-performing structured code designs do not exist. Communication in the presence of feedback is one such communication scenario, and practical code design for feedback channels has remained an open challenge in coding theory for many decades. Recently, DNN-based designs have shown impressive results in exploiting feedback. In particular, generalized block attention feedback (GBAF) codes, which utilizes the popular transformer architecture, achieved significant improvement in terms of the block error rate (BLER) performance. However, previous works have focused mainly on passive feedback, where the transmitter observes a noisy version of the signal at the receiver. In this work, we show that GBAF codes can also be used for channels with active feedback. We implement a pair of transformer architectures, at the transmitter and the receiver, which interact with each other sequentially, and achieve a new state-of-the-art BLER performance, especially in the low SNR regime.
引用
收藏
页码:6652 / 6657
页数:6
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