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dc.contributor.advisorPerrins, Erik
dc.contributor.authorPorur Damodaran, Kanagaraj
dc.date.accessioned2008-12-01T01:59:50Z
dc.date.available2008-12-01T01:59:50Z
dc.date.issued2008-08-26
dc.date.submitted2008
dc.identifier.otherhttp://dissertations2.umi.com/ku:2709
dc.identifier.urihttp://hdl.handle.net/1808/4280
dc.description.abstractThis thesis treats the development of bandwidth-efficient serially concatenated coded (SCC) continuous phase modulation (CPM) techniques for aeronautical telemetry. The concatenated code consists of an inner and an outer code, separated by an interleaver in most configurations, and is decoded using relatively simple near-optimum iterative decoding algorithms. CPM waveforms such as shaped-offset quadrature phase shift keying (SOQPSK) and pulse code modulation/frequency modulation (PCM/FM), which are currently used in military satellite and aeronautical telemetry standards, can be viewed as inner codes due to their recursive nature. For the outer codes, this thesis applies serially concatenated convolutional codes (SCCC), turbo-product codes (TPC) and repeat-accumulate codes (RAC) because of their large coding gains, high code rates, and because their decoding algorithms are readily implemented. High-rate codes are of special interest in aeronautical telemetry applications due to recent reductions in available spectrum and ever-increasing demands on data rates. This thesis evaluates the proposed coding schemes with a large set of numerical simulation results and makes a number of recommendations based on these results.
dc.format.extent92 pages
dc.language.isoEN
dc.publisherUniversity of Kansas
dc.rightsThis item is protected by copyright and unless otherwise specified the copyright of this thesis/dissertation is held by the author.
dc.subjectElectronics and electrical engineering
dc.titleSerially Concatenated Coded Continuous Phase Modulation for Aeronautical Telemetry
dc.typeThesis
dc.contributor.cmtememberFrost, Victor
dc.contributor.cmtememberRoberts, James
dc.thesis.degreeDisciplineElectrical Engineering & Computer Science
dc.thesis.degreeLevelM.S.
kusw.oastatusna
kusw.oapolicyThis item does not meet KU Open Access policy criteria.
kusw.bibid6857363
dc.rights.accessrightsopenAccess


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