Embedding carrier phase recovery into iterative decoding of turbo-coded linear modulations
In this paper, we introduce a low-complexity carrier phase estimation algorithm to be integrated into the data decoder of a turbo-coded modem employing a linear modulation. The estimator is based on a pseudo-maximum-likelihood approach and makes iterative use of soft decisions provided by the soft-i...
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Veröffentlicht in: | IEEE transactions on communications 2004-04, Vol.52 (4), p.661-669 |
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description | In this paper, we introduce a low-complexity carrier phase estimation algorithm to be integrated into the data decoder of a turbo-coded modem employing a linear modulation. The estimator is based on a pseudo-maximum-likelihood approach and makes iterative use of soft decisions provided by the soft-in/soft-out decoders within the overall turbo-decoding scheme. In doing so, iterative decoding and carrier phase recovery go together iteration after iteration in a "soft decision-directed" mode. This allows performing reliable blind phase estimation and almost ideal coherent detection for values of the signal-to-noise ratio down to a few decibels only, and without the need to resort to narrowband phase-locked loops with large acquisition time. Performance in terms of mean estimated value, root mean-squared estimation error, and overall decoder bit-error rate as derived by simulation are also reported. |
doi_str_mv | 10.1109/TCOMM.2004.826353 |
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The estimator is based on a pseudo-maximum-likelihood approach and makes iterative use of soft decisions provided by the soft-in/soft-out decoders within the overall turbo-decoding scheme. In doing so, iterative decoding and carrier phase recovery go together iteration after iteration in a "soft decision-directed" mode. This allows performing reliable blind phase estimation and almost ideal coherent detection for values of the signal-to-noise ratio down to a few decibels only, and without the need to resort to narrowband phase-locked loops with large acquisition time. Performance in terms of mean estimated value, root mean-squared estimation error, and overall decoder bit-error rate as derived by simulation are also reported.</description><identifier>ISSN: 0090-6778</identifier><identifier>EISSN: 1558-0857</identifier><identifier>DOI: 10.1109/TCOMM.2004.826353</identifier><identifier>CODEN: IECMBT</identifier><language>eng</language><publisher>New York: IEEE</publisher><subject>Iterative algorithms ; Iterative decoding ; Iterative methods ; Modems ; Narrowband ; Phase detection ; Phase estimation ; Phase modulation ; Signal to noise ratio ; Turbo codes</subject><ispartof>IEEE transactions on communications, 2004-04, Vol.52 (4), p.661-669</ispartof><rights>Copyright The Institute of Electrical and Electronics Engineers, Inc. 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The estimator is based on a pseudo-maximum-likelihood approach and makes iterative use of soft decisions provided by the soft-in/soft-out decoders within the overall turbo-decoding scheme. In doing so, iterative decoding and carrier phase recovery go together iteration after iteration in a "soft decision-directed" mode. This allows performing reliable blind phase estimation and almost ideal coherent detection for values of the signal-to-noise ratio down to a few decibels only, and without the need to resort to narrowband phase-locked loops with large acquisition time. Performance in terms of mean estimated value, root mean-squared estimation error, and overall decoder bit-error rate as derived by simulation are also reported.</description><subject>Iterative algorithms</subject><subject>Iterative decoding</subject><subject>Iterative methods</subject><subject>Modems</subject><subject>Narrowband</subject><subject>Phase detection</subject><subject>Phase estimation</subject><subject>Phase modulation</subject><subject>Signal to noise ratio</subject><subject>Turbo codes</subject><issn>0090-6778</issn><issn>1558-0857</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2004</creationdate><recordtype>article</recordtype><sourceid>RIE</sourceid><recordid>eNpdkEtLAzEQgIMoWB8_QLwED962TpLuJnuUUh9g6UUvXkI2mdXIdlOT3YL_3tQKgnMZZvhmmPkIuWAwZQzqm-f5armccoDZVPFKlOKATFhZqgJUKQ_JBKCGopJSHZOTlD4ggyDEhLwu1g065_s3ak2MHiPdvJuENKINW4xf1PdDoH7AaAa_Repy_wcPLR3G2IQi1-ho53s0ka6DG7tMhj6dkaPWdAnPf_MpeblbPM8fiqfV_eP89qmwgrOh4FJK4Qy0sqka57CWwK1pnbNlbjtjJbDWtm3VgK0zyZXLj8FMYN00aK04Jdf7vZsYPkdMg177ZLHrTI9hTJqrrKOqWAav_oEfYYx9vk0rNYOa58gQ20M2hpQitnoT_drEL81A71TrH9V6p1rvVeeZy_2MR8Q_ntdMgRTfAcZ8yg</recordid><startdate>200404</startdate><enddate>200404</enddate><creator>Lottici, V.</creator><creator>Luise, M.</creator><general>IEEE</general><general>The Institute of Electrical and Electronics Engineers, Inc. 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The estimator is based on a pseudo-maximum-likelihood approach and makes iterative use of soft decisions provided by the soft-in/soft-out decoders within the overall turbo-decoding scheme. In doing so, iterative decoding and carrier phase recovery go together iteration after iteration in a "soft decision-directed" mode. This allows performing reliable blind phase estimation and almost ideal coherent detection for values of the signal-to-noise ratio down to a few decibels only, and without the need to resort to narrowband phase-locked loops with large acquisition time. Performance in terms of mean estimated value, root mean-squared estimation error, and overall decoder bit-error rate as derived by simulation are also reported.</abstract><cop>New York</cop><pub>IEEE</pub><doi>10.1109/TCOMM.2004.826353</doi><tpages>9</tpages></addata></record> |
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subjects | Iterative algorithms Iterative decoding Iterative methods Modems Narrowband Phase detection Phase estimation Phase modulation Signal to noise ratio Turbo codes |
title | Embedding carrier phase recovery into iterative decoding of turbo-coded linear modulations |
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