DocumentCode
1238780
Title
The Effect of Tandem Band and Amplitude Limiting on the Eb /No Performance of Minimum (Frequency) Shift Keying (MSK)
Author
Mathwich, H. Robert ; Balcewicz, Joseph F. ; Hecht, Martin
Author_Institution
Astro-Electronics Div., RCA Corp., Princeton, NJ, USA
Volume
22
Issue
10
fYear
1974
fDate
10/1/1974 12:00:00 AM
Firstpage
1525
Lastpage
1540
Abstract
Minimum (frequency) shift keying (MSK) is a digital modulation technique which can be viewed either as frequency-shift keying (FSK) with peak frequency deviation precisely equal to
where RL is the link bit rate or as an offset-keyed quaternary phase-shift-keyed modulation. In the absence of bandwidth or amplitude limiting between the modulator and the demodulator, the
performance of MSK is identical to that of coherently detected binary phase-shift keying (PSK). This paper briefly reviews and defines MSK. It then presents a system model in which a tandem assembly of a transmit band-limiting filter, a hard limiter, and a receive band-limiting filter are interposed between an ideal modulator and demodulator. This model is aimed at simulating actual links (such as spacecraft-to-ground links) in which channel bandwidth
constraints are important, postmodulation filtering at RF is objectionable, and transmission through efficient transmitters which operate as amplitude limiters is a requirement. An analysis then derives the
degradation due to both bandwidth and amplitude limiting. Band limiting alone causes intersymbol interference on the data carried by each of the quadrature phasors but no interphasor crosstalk under the set of assumptions used. With amplitude limiting also present, an interphasor crosstalk mechanism exists. The average symbol distortion, symbol energy reduction, and noise reduction are derived for several periodic waveforms. For composite systems with 3-dB bandwidth
-to-RL ratios of at least 0.6, the theoretical
degradation is less than 1 dB. Parametric experimental data are then reported on the postmodulation spectrum of a transmitter with band limiting plus subsequent hard amplitude limiting. Data are also presented on the
degradation measured using tandem assemblies of a bandlimiting filter, an amplitude limiter, and a second band-limiting filter. The amplitude limiter substantially increases the level of the spectral side lobes beyond the main lobe. It was found that for all significant values of transmit bandpass filtering plus subsequent amplitude limiting, 99 percent of the tra- nsmitted energy is contained within Bc = 1.1 RL . Further, little
degradation (tenths of a decibel) was measured if BL was greater than 0.65 RL . A rapid degradation of
occurred when
. These data apply for the band-band-amplitude-band limited system model. The amplitude limiter placed between the transmit and receive filters caused interphasor crosstalk and distortion of the data symbol shapes as predicted; however,
degradation caused by the amplitude-limiting effects by themselves (which are a function of BL ) never exceeded 0.3 to 0.5 dB for the cases studied.
where R
performance of MSK is identical to that of coherently detected binary phase-shift keying (PSK). This paper briefly reviews and defines MSK. It then presents a system model in which a tandem assembly of a transmit band-limiting filter, a hard limiter, and a receive band-limiting filter are interposed between an ideal modulator and demodulator. This model is aimed at simulating actual links (such as spacecraft-to-ground links) in which channel bandwidth
constraints are important, postmodulation filtering at RF is objectionable, and transmission through efficient transmitters which operate as amplitude limiters is a requirement. An analysis then derives the
degradation due to both bandwidth and amplitude limiting. Band limiting alone causes intersymbol interference on the data carried by each of the quadrature phasors but no interphasor crosstalk under the set of assumptions used. With amplitude limiting also present, an interphasor crosstalk mechanism exists. The average symbol distortion, symbol energy reduction, and noise reduction are derived for several periodic waveforms. For composite systems with 3-dB bandwidth
-to-R
degradation is less than 1 dB. Parametric experimental data are then reported on the postmodulation spectrum of a transmitter with band limiting plus subsequent hard amplitude limiting. Data are also presented on the
degradation measured using tandem assemblies of a bandlimiting filter, an amplitude limiter, and a second band-limiting filter. The amplitude limiter substantially increases the level of the spectral side lobes beyond the main lobe. It was found that for all significant values of transmit bandpass filtering plus subsequent amplitude limiting, 99 percent of the tra- nsmitted energy is contained within B
degradation (tenths of a decibel) was measured if B
occurred when
. These data apply for the band-band-amplitude-band limited system model. The amplitude limiter placed between the transmit and receive filters caused interphasor crosstalk and distortion of the data symbol shapes as predicted; however,
degradation caused by the amplitude-limiting effects by themselves (which are a function of BKeywords
Band-limited systems; Limiting; MSK systems; Band pass filters; Bandwidth; Crosstalk; Degradation; Demodulation; Digital modulation; Filtering; Frequency shift keying; Phase modulation; Phase shift keying;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/TCOM.1974.1092108
Filename
1092108
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