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Simple Semi-Grant-Free Transmission Strategies Assisted by Non-Orthogonal Multiple Access

2018/12/19 by Zhiguo Ding, Ding, Zhiguo, Robert Schober +5 · 1 citation
Computer Science · Engineering · Mathematics · #Advanced Wireless Communication Technologies #Channel (broadcasting) #Computer network #Computer science #FOS: Computer and information sciences #Information Theory (cs.IT) #Interference (communication) #Noma #Optical Wireless Communication Technologies #Overhead (engineering) #PAPR reduction in OFDM #Simple (philosophy) #Telecommunications #Telecommunications link #Transmission (telecommunications) #cs.IT #math.IT

paper · pdf · doi:10.48550/arxiv.1812.07883

arxiv created 2018/12/19 · openalex publication_date 2018/12/19 · arxiv updated 2018/12/20 · openalex created_date 2019/06/27 · openalex updated_date 2026/07/28

Abstract

Grant-free transmission is an important feature to be supported by future wireless networks since it reduces the signalling overhead caused by conventional grant-based schemes. However, for grant-free transmission, the number of users admitted to the same channel is not caped, which can lead to a failure of multi-user detection. This paper proposes non-orthogonal multiple-access (NOMA) assisted semi-grant-free (SGF) transmission, which is a compromise between grant-free and grant-based schemes. In particular, instead of reserving channels either for grant-based users or grant-free users, we focus on an SGF communication scenario, where users are admitted to the same channel via a combination of grant-based and grant-free protocols. As a result, a channel reserved by a grant-based user can be shared by grant-free users, which improves both connectivity and spectral efficiency. Two NOMA assisted SGF contention control mechanisms are developed to ensure that, with a small amount of signalling overhead, the number of admitted grant-free users is carefully controlled and the interference from the grant-free users to the grant-based users is effectively suppressed. Analytical results are provided to demonstrate that the two proposed SGF mechanisms employing different successive interference cancelation decoding orders are applicable to different practical network scenarios.

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