DocumentCode :
389985
Title :
Low power method for demodulation of continuous phase modulated (CPM) waveforms
Author :
Norris, James A.
Author_Institution :
RIF Commun. Div., Harris Corp., Rochester, NY, USA
Volume :
2
fYear :
2002
fDate :
7-10 Oct. 2002
Firstpage :
1007
Abstract :
CPM waveforms, which are documented in MIL-STD-188-181B, are typically demodulated in superheterodyne receivers. This paper provides an outline for an alternate method of demodulation. The pulse count demodulation scheme is typically used as a method for demodulation of FM voice signals. The pulse count demodulator does not require fast A/D converters or automatic gain control anywhere in the receive path of the radio. Thus, the receive radio architecture can be designed without these components, decreasing the power requirements and size of the RF portion of the receiver. This paper investigates the performance characteristics of the CPM signal as demodulated through the pulse count demodulator. Some analysis is performed on the extent of the limitations in amplitude and phase accuracy and resolution. The design of the PCD is discussed and this paper provides the simulated results that represent the ultimate performance of the CPM waveform as demodulated through the pulse count demodulator.
Keywords :
continuous phase modulation; demodulation; digital radio; frequency modulation; military communication; military standards; mobile radio; pulse modulation; radio receivers; CPM; FM voice signals; MIL-STD-188-181B; amplitude accuracy; continuous phase modulated waveforms; low power demodulation; performance; phase accuracy; power requirements; pulse count demodulation; receive radio architecture; resolution; Bit error rate; Demodulation; Frequency shift keying; Gain control; High power amplifiers; Phase modulation; Pulse amplifiers; Radio frequency; Receivers; Viterbi algorithm;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
MILCOM 2002. Proceedings
Print_ISBN :
0-7803-7625-0
Type :
conf
DOI :
10.1109/MILCOM.2002.1179613
Filename :
1179613
Link To Document :
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