LEADER 05224nam 22006614a 450 001 9910143688103321 005 20170815123636.0 010 $a1-280-72165-0 010 $a9786610721658 010 $a0-470-08780-3 010 $a0-470-08779-X 035 $a(CKB)1000000000356621 035 $a(EBL)281846 035 $a(OCoLC)476027142 035 $a(SSID)ssj0000108024 035 $a(PQKBManifestationID)11138201 035 $a(PQKBTitleCode)TC0000108024 035 $a(PQKBWorkID)10017657 035 $a(PQKB)11139817 035 $a(MiAaPQ)EBC281846 035 $a(EXLCZ)991000000000356621 100 $a20060523d2006 uy 0 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 00$aAutonomous software-defined radio receivers for deep space applications$b[electronic resource] /$fedited by Jon Hamkins and Marvin K. Simon 210 $aHoboken, N.J. $cWiley-Interscience$dc2006 215 $a1 online resource (459 p.) 225 1 $aDeep-space communications and navigation series 300 $aDescription based upon print version of record. 311 $a0-470-08212-7 320 $aIncludes bibliographical references and index. 327 $aAutonomous Software-Defined Radio Receivers for Deep Space Applications; Table of Contents; Foreword; Preface; Acknowledgments; Contributors; Chapter 1: Introduction and Overview; 1.1 Preliminaries; 1.1.1 Signal Model; 1.1.2 Anatomy of the Received Signal; 1.2 Radio Receiver Architectures; 1.2.1 A Conventional Radio Receiver; 1.2.2 Electra; 1.2.3 An Autonomous Radio; 1.3 Estimators and Classifiers of the Autonomous Radio; 1.3.1 Carrier Phase Tracking; 1.3.2 Modulation Classification; 1.3.3 Signal-to-Noise Ratio Estimation; 1.3.4 Frequency Tracking 327 $a1.4 An Iterative Message-Passing Architecture1.4.1 Messages from the Symbol-Timing Estimator; 1.4.2 Messages from the Phase Tracker; 1.4.3 Messages from the Modulation Classification; 1.4.4 Messages from the Decoder; 1.5 A Demonstration Testbed; References; Chapter 2: The Electra Radio; 2.1 Electra Receiver Front-End Processing; 2.1.1 AGC; 2.1.2 ADC; 2.1.3 Digital Downconversion and Decimation; 2.2 Electra Demodulation; 2.2.1 Frequency-Acquisition and Carrier-Tracking Loop; 2.2.2 Navigation: Doppler Phase Measurement; 2.2.3 Symbol-Timing Recovery 327 $a2.2.4 Viterbi Node Sync and Symbol SNR Estimation2.3 Electra Digital Modulator; References; Chapter 3: Modulation Index Estimation; 3.1 Coherent Estimation; 3.1.1 BPSK; 3.1.2 M-PSK; 3.2 Noncoherent Estimation; 3.3 Estimation in the Absence of Knowledge of the Modulation, Data Rate, Symbol Timing, and SNR; 3.4 Noncoherent Estimation in the Absence of Carrier Frequency Knowledge; Chapter 4: Frequency Correction; 4.1 Frequency Correction for Residual Carrier; 4.1.1 Channel Model; 4.1.2 Optimum Frequency Estimation over an AWGN Channel 327 $a4.1.3 Optimum Frequency Estimation over a Raleigh Fading Channel4.1.4 Open-Loop Frequency Estimation; 4.1.5 Closed-Loop Frequency Estimation; 4.2 Frequency Correction for Known Data-Modulated Signals; 4.2.1 Channel Model; 4.2.2 Open-Loop Frequency Estimation; 4.2.3 Closed-Loop Frequency Estimation; 4.3 Frequency Correction for Modulated Signals with Unknown Data; 4.3.1 Open-Loop Frequency Estimation; 4.3.2 Closed-Loop Frequency Estimation; References; Chapter 5: Data Format and Pulse Shape Classification; 5.1 Coherent Classifiers of Data Format for BPSK 327 $a5.1.1 Maximum-Likelihood Coherent Classifier of Data Format for BPSK5.1.2 Reduced-Complexity Data Format BPSK Classifiers; 5.1.3 Probability of Misclassification for Coherent BPSK; 5.2 Coherent Classifiers of Data Format for QPSK; 5.2.1 Maximum-Likelihood Coherent Classifier of Data Format for QPSK; 5.2.2 Reduced-Complexity Data Format QPSK Classifiers; 5.2.3 Probability of Misclassification for Coherent QPSK; 5.3 Noncoherent Classification of Data Format for BPSK; 5.3.1 Maximum-Likelihood Noncoherent Classifier of Data Format for BPSK 327 $a5.3.2 Probability of Misclassification for Noncoherent BPSK 330 $aThis book introduces the reader to the concept of an autonomous software-defined radio (SDR) receiver. Each distinct aspect of the design of the receiver is treated in a separate chapter written by one or more leading innovators in the field. Chapters begin with a problem statement and then offer a full mathematical derivation of an appropriate solution, a decision metric or loop-structure as appropriate, and performance results. 410 0$aDeep-space communications and navigation series. 606 $aAstronautics$xCommunication systems 606 $aSoftware radio 608 $aElectronic books. 615 0$aAstronautics$xCommunication systems. 615 0$aSoftware radio. 676 $a621.384197 676 $a629.4743 701 $aHamkins$b Jon$f1968-$0921824 701 $aSimon$b Marvin Kenneth$f1939-$0285778 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910143688103321 996 $aAutonomous software-defined radio receivers for deep space applications$92068283 997 $aUNINA LEADER 02268nam0 22004573i 450 001 UFI0255710 005 20251003044428.0 010 $a0133737624 010 $a0133942899$bPrentice-Hall International 100 $a20100111d1996 ||||0itac50 ba 101 | $aeng 102 $aus 181 1$6z01$ai $bxxxe 182 1$6z01$an 200 1 $aDigital signal processing$eprinciples, algorithms, and applications$fJohn G. Proakis, Dimitris G. Manolakis 205 $a3. ed 210 $aUpper Saddle River$cPrentice-Hall$dc1996 215 $aXV, 968, [48] p.$cill.$d24 cm. 225 | $aPrentice-Hall international editions 410 0$1001RMS0019150$12001 $aPrentice-Hall international editions 606 $aSegnali elettrici$xElaborazione elettronica$2FIR$3CFIC023942$9I 676 $a621.382$9INGEGNERIA DELLE COMUNICAZIONI$v14 676 $a621.3822$9INGEGNERIA DELLE COMUNICAZIONI. 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(2. copia)$fY $h20000719$i20000719 977 $a 01 996 $aDigital signal processing$9112771 997 $aUNISANNIO