Praveen Sai Bere;Mohammed Zafar Ali Khan;Lajos Hanzo
{"title":"适用于任意线性编码的低复杂度分集保护通用比特翻转增强型硬判决译码器","authors":"Praveen Sai Bere;Mohammed Zafar Ali Khan;Lajos Hanzo","doi":"10.1109/OJVT.2024.3437470","DOIUrl":null,"url":null,"abstract":"V2X (Vehicle-to-everything) communication relies on short messages for short-range transmissions over a fading wireless channel, yet requires high reliability and low latency. Hard-decision decoding sacrifices the preservation of diversity order, leading to pronounced performance degradation in fading channels. By contrast, soft-decision decoding retains diversity order, albeit at the cost of increased computational complexity. We introduce a novel enhanced hard-decision decoder termed as the Diversity Flip decoder (DFD) designed for preserving the diversity order. Moreover, it exhibits ‘universal’ applicability to all linear block codes. For a \n<inline-formula><tex-math>$\\mathscr {C}(n,k)$</tex-math></inline-formula>\n code having a minimum distance \n<inline-formula><tex-math>${d_{\\min }}$</tex-math></inline-formula>\n, the proposed decoder incurs a worst-case complexity order of \n<inline-formula><tex-math>$2^{({d_{\\min }}-1)}-1$</tex-math></inline-formula>\n. Notably, for codes having low \n<inline-formula><tex-math>${d_{\\min }}$</tex-math></inline-formula>\n, this complexity represents a significant reduction compared to the popular soft and hard decision decoding algorithms. Due to its capability of maintaining diversity at a low complexity, it is eminently suitable for applications such as V2X (Vehicle-to-everything), IoT (Internet of Things), mMTC (Massive Machine type Communications), URLLC (Ultra-Reliable Low Latency Communications) and WBAN (Wireless Body Area Networks) for efficient decoding with favorable performance characteristics. The simulation results provided for various known codes and decoding algorithms validate the performance versus complexity benefits of the proposed decoder.","PeriodicalId":34270,"journal":{"name":"IEEE Open Journal of Vehicular Technology","volume":"5 ","pages":"1496-1517"},"PeriodicalIF":5.3000,"publicationDate":"2024-08-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=10621450","citationCount":"0","resultStr":"{\"title\":\"A Low-Complexity Diversity-Preserving Universal Bit-Flipping Enhanced Hard Decision Decoder for Arbitrary Linear Codes\",\"authors\":\"Praveen Sai Bere;Mohammed Zafar Ali Khan;Lajos Hanzo\",\"doi\":\"10.1109/OJVT.2024.3437470\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"V2X (Vehicle-to-everything) communication relies on short messages for short-range transmissions over a fading wireless channel, yet requires high reliability and low latency. Hard-decision decoding sacrifices the preservation of diversity order, leading to pronounced performance degradation in fading channels. By contrast, soft-decision decoding retains diversity order, albeit at the cost of increased computational complexity. We introduce a novel enhanced hard-decision decoder termed as the Diversity Flip decoder (DFD) designed for preserving the diversity order. Moreover, it exhibits ‘universal’ applicability to all linear block codes. For a \\n<inline-formula><tex-math>$\\\\mathscr {C}(n,k)$</tex-math></inline-formula>\\n code having a minimum distance \\n<inline-formula><tex-math>${d_{\\\\min }}$</tex-math></inline-formula>\\n, the proposed decoder incurs a worst-case complexity order of \\n<inline-formula><tex-math>$2^{({d_{\\\\min }}-1)}-1$</tex-math></inline-formula>\\n. Notably, for codes having low \\n<inline-formula><tex-math>${d_{\\\\min }}$</tex-math></inline-formula>\\n, this complexity represents a significant reduction compared to the popular soft and hard decision decoding algorithms. Due to its capability of maintaining diversity at a low complexity, it is eminently suitable for applications such as V2X (Vehicle-to-everything), IoT (Internet of Things), mMTC (Massive Machine type Communications), URLLC (Ultra-Reliable Low Latency Communications) and WBAN (Wireless Body Area Networks) for efficient decoding with favorable performance characteristics. 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A Low-Complexity Diversity-Preserving Universal Bit-Flipping Enhanced Hard Decision Decoder for Arbitrary Linear Codes
V2X (Vehicle-to-everything) communication relies on short messages for short-range transmissions over a fading wireless channel, yet requires high reliability and low latency. Hard-decision decoding sacrifices the preservation of diversity order, leading to pronounced performance degradation in fading channels. By contrast, soft-decision decoding retains diversity order, albeit at the cost of increased computational complexity. We introduce a novel enhanced hard-decision decoder termed as the Diversity Flip decoder (DFD) designed for preserving the diversity order. Moreover, it exhibits ‘universal’ applicability to all linear block codes. For a
$\mathscr {C}(n,k)$
code having a minimum distance
${d_{\min }}$
, the proposed decoder incurs a worst-case complexity order of
$2^{({d_{\min }}-1)}-1$
. Notably, for codes having low
${d_{\min }}$
, this complexity represents a significant reduction compared to the popular soft and hard decision decoding algorithms. Due to its capability of maintaining diversity at a low complexity, it is eminently suitable for applications such as V2X (Vehicle-to-everything), IoT (Internet of Things), mMTC (Massive Machine type Communications), URLLC (Ultra-Reliable Low Latency Communications) and WBAN (Wireless Body Area Networks) for efficient decoding with favorable performance characteristics. The simulation results provided for various known codes and decoding algorithms validate the performance versus complexity benefits of the proposed decoder.