Enhanced BICM Receivers for Ultra-Reliable Low-Latency Short Packet Communications
Mody Sy, Raymond Knopp

TL;DR
This paper introduces enhanced joint estimation-detection receiver metrics for short packet communications, significantly improving performance over standard BICM receivers in scenarios with limited channel information and sparse training.
Contribution
It proposes a block-wise joint detection method that leverages statistical dependencies across multiple symbols, outperforming conventional symbol-by-symbol detection in short blocklength transmissions.
Findings
Performance close to coherent receivers with perfect CSI.
Significant gains with detection windows of about four symbols.
Effective in realistic 5G scenarios with Polar and LDPC codes.
Abstract
This paper presents enhanced receiver metrics for joint estimation-detection in short blocklength transmissions, addressing scenarios with unknown channel state information and low or sparse training resource density. We show that it is possible to enhance the performance and sensitivity through block-wise joint estimation-detection compared to standard receivers. The performance analysis makes use of a full 5G transmitter and receiver chains for both Polar and LDPC coded transmissions paired with QPSK modulation scheme. We consider transmissions where reference signals are interleaved with coded data and both are transmitted over a small number of OFDM symbols so that near-perfect channel estimation cannot be achieved. Unlike conventional symbol-by-symbol detection in BICM systems, where the observation for a given coded bit is confined to the symbol in which it is conveyed,the…
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Taxonomy
TopicsAdvanced Wireless Communication Techniques · Radio Frequency Integrated Circuit Design · Wireless Communication Networks Research
