DocumentCode
1224688
Title
Asynchronous Transmission Schemes for Digital Information
Author
Mine, Hisashi ; Hasegawa, Toshiharu ; Koga, Yoshiaki
Author_Institution
Kyoto University, Japan
Volume
18
Issue
5
fYear
1970
fDate
10/1/1970 12:00:00 AM
Firstpage
562
Lastpage
568
Abstract
Some coding schemes of binary signals into ternary signals for asynchronous transmission of digital information are presented. First, an application of differentiated ternary return to zero signals, where every signal is associated with a particular separation signal, to asynchronous transmission is introduced and discussed. Second, coding schemes where successive signals are alike are introduced and also discussed. In these schemes signals may have large intersymbol interferences. Third, in order to minimize intersymbol interference a coding scheme where no two successive pulses may have the same polarity is introduced. The number of code points Nm of length
is given by,
, where Fm is in a Fibonacci series
starting with
and
. Thus we call this Fibonacci coding. If the Fibonacci coding is performed on a bit-by-bit basis, the code words derived do not generally have equal length. To avoid this, word-by-word coding is proposed. The power spectrum of the Fibonacci coded signals is calculated theoretically. In all cases, any single error may cause a succession of errors. In order to prevent these errors caused by an error, it is required to achieve stable block or frame synchronization.
is given by,
, where F
starting with
and
. Thus we call this Fibonacci coding. If the Fibonacci coding is performed on a bit-by-bit basis, the code words derived do not generally have equal length. To avoid this, word-by-word coding is proposed. The power spectrum of the Fibonacci coded signals is calculated theoretically. In all cases, any single error may cause a succession of errors. In order to prevent these errors caused by an error, it is required to achieve stable block or frame synchronization.Keywords
Communications technology; Delay; Differential quadrature phase shift keying; Error probability; Frequency shift keying; Mathematics; Physics; Pulse modulation; Timing; Wideband;
fLanguage
English
Journal_Title
Communication Technology, IEEE Transactions on
Publisher
ieee
ISSN
0018-9332
Type
jour
DOI
10.1109/TCOM.1970.1090393
Filename
1090393
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