TY - GEN
T1 - Finite Field Multiple Access for Sourced Massive Random Access with Finite Blocklength
AU - Yu, Qi Yue
AU - Lin, Shi Wen
AU - Lin, Shu
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024
Y1 - 2024
N2 - For binary source transmission, this paper introduces the concept of element-pair (EP) and establishes that when the Cartesian product of J distinct EPs satisfies the unique sum-pattern mapping (USPM) structural property, these J EPs can form a uniquely-decodable EP (UD-EP) code. EPs are treated as virtual resources allocated to different users in finite fields, serving to distinguish users. This approach enables the reordering of multiplexing and channel encoding modules, effectively addressing the finite blocklength (FBL) challenge in multiuser reliable transmission. Next, we introduce an orthogonal EP code Ψmathrmo,mathrmB constructed over an extension field GF (2m). Using this EP code, we develop a time-division mode of finite-field multiple-access (FFMA) systems, consisting of sparse-form and diagonal-form structures. Based on the diagonal-form (DF) structure, we present a specific configuration, referred to as polarization-adjusted DF-FFMA, which can simultaneously obtain the power gain and coding gain from the entire blocklength. Simulation results demonstrate that the proposed FFMA systems significantly improve error performance over a Gaussian multiple-access channel, compared to a slotted ALOHA system.
AB - For binary source transmission, this paper introduces the concept of element-pair (EP) and establishes that when the Cartesian product of J distinct EPs satisfies the unique sum-pattern mapping (USPM) structural property, these J EPs can form a uniquely-decodable EP (UD-EP) code. EPs are treated as virtual resources allocated to different users in finite fields, serving to distinguish users. This approach enables the reordering of multiplexing and channel encoding modules, effectively addressing the finite blocklength (FBL) challenge in multiuser reliable transmission. Next, we introduce an orthogonal EP code Ψmathrmo,mathrmB constructed over an extension field GF (2m). Using this EP code, we develop a time-division mode of finite-field multiple-access (FFMA) systems, consisting of sparse-form and diagonal-form structures. Based on the diagonal-form (DF) structure, we present a specific configuration, referred to as polarization-adjusted DF-FFMA, which can simultaneously obtain the power gain and coding gain from the entire blocklength. Simulation results demonstrate that the proposed FFMA systems significantly improve error performance over a Gaussian multiple-access channel, compared to a slotted ALOHA system.
KW - Gaussian multiple-access channel (GMAC)
KW - Multiple access
KW - binary source transmission
KW - element pair (EP)
KW - finite blocklength (FBL)
KW - finite-field multi-access (FFMA)
KW - polarization-adjusted
KW - slotted ALOHA
KW - sourced random access
UR - https://www.scopus.com/pages/publications/85216513709
U2 - 10.1109/ITW61385.2024.10806996
DO - 10.1109/ITW61385.2024.10806996
M3 - 会议稿件
AN - SCOPUS:85216513709
T3 - 2024 IEEE Information Theory Workshop, ITW 2024
SP - 741
EP - 746
BT - 2024 IEEE Information Theory Workshop, ITW 2024
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2024 IEEE Information Theory Workshop, ITW 2024
Y2 - 24 November 2024 through 28 November 2024
ER -