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Ortogonal frekvensdelingsmultipleksing (OFDM)×Polar koder med suksessiv kanselleringsdekoding×Shannon kanal-kapasitetsteorem×
FagfeltTelekommunikasjonTelekommunikasjonTelekommunikasjon
FamilieProcess / pipelineProcess / pipelineProcess / pipeline
Opprinnelsesår197120091948
OpphavspersonWeinstein and EbertErdal ArikanClaude Shannon
Typemulticarrier modulation schemerecursive error-correcting codefundamental theoretical bound
Opprinnelig kildeWeinstein, S. B., & Ebert, P. M. (1971). Data transmission by frequency-division multiplexing using the discrete Fourier transform. IEEE Transactions on Communication Technology, 19(5), 628-634. DOI ↗Arikan, E. (2009). Channel polarization: A method for constructing capacity-achieving codes for symmetric binary-input memoryless channels. IEEE Transactions on Information Theory, 55(7), 3051-3073. DOI ↗Shannon, C. E. (1948). A mathematical theory of communication. Bell System Technical Journal, 27(3), 379-423. DOI ↗
Aliasmulticarrier modulationchannel polarization, recursive codeschannel capacity, information theory bound
Relaterte555
SammendragOFDM is a multicarrier modulation technique that divides a wideband channel into many narrowband orthogonal subcarriers. Introduced by Weinstein and Ebert in 1971, it exploits the duality between time and frequency domains to efficiently use spectrum while mitigating intersymbol interference in frequency-selective channels. OFDM is now the standard for high-speed wireless systems including WiFi, cellular LTE, and digital broadcasting.Polar codes, introduced by Erdal Arikan in 2009, are the first constructive family of codes proven to achieve the Shannon capacity of symmetric binary-input memoryless channels. They use recursive construction and successive cancellation decoding, a simple greedy algorithm with theoretical guarantees. Polar codes were adopted in 5G NR for control channel coding and are studied for future 6G systems. Unlike turbo and LDPC codes (which are empirical), polar codes provide rigorous theoretical foundations.Shannon's channel capacity theorem, published in 1948, establishes the maximum rate at which information can be reliably transmitted over a noisy channel. Expressed as C = B log2(1 + S/N) for additive white Gaussian noise (AWGN), it is a fundamental bound in information theory and communications engineering. Shannon proved that reliable communication is possible at any rate below capacity, and impossible above it. This theorem underpins the design of all modern communication systems and motivates coding theory, modulation, and signal processing techniques.
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ScholarGateSammenlign metoder: OFDM · Polar Codes · Shannon Capacity. Hentet 2026-06-18 fra https://scholargate.app/no/compare