Conflict Set and Waveform Modelling for Power Amplifier Design

Various classes of nonnegative waveforms containing dc component, fundamental and k th harmonic k ≥ 2 , which proved to be of interest in waveform modelling for power amplifier (PA) design, are considered in this paper. In optimization of PA efficiency, nonnegative waveforms with maximal amplitude o...

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Published inMathematical problems in engineering Vol. 2015; no. 2015; pp. 1 - 29
Main Authors Juhas, Anamarija, Novak, Ladislav A.
Format Journal Article
LanguageEnglish
Published Cairo, Egypt Hindawi Publishing Corporation 01.01.2015
Hindawi Limited
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Abstract Various classes of nonnegative waveforms containing dc component, fundamental and k th harmonic k ≥ 2 , which proved to be of interest in waveform modelling for power amplifier (PA) design, are considered in this paper. In optimization of PA efficiency, nonnegative waveforms with maximal amplitude of fundamental harmonic and those with maximal coefficient of cosine term of fundamental harmonic (optimal waveforms) play an important role. Optimal waveforms have multiple global minima and this fact closely relates the problem of optimization of PA efficiency to the concept of conflict set. There is also keen interest in finding descriptions for various classes of suboptimal waveforms, such as nonnegative waveforms with at least one zero, nonnegative waveforms with maximal amplitude of fundamental harmonic for prescribed amplitude of k th harmonic, nonnegative waveforms with maximal coefficient of cosine part of fundamental harmonic for prescribed coefficients of k th harmonic, and nonnegative cosine waveforms with at least one zero. Closed form descriptions for all these suboptimal types of waveforms are provided in this paper. Suboptimal waveforms may also have multiple global minima and therefore be related to the concept of conflict set. Four case studies of usage of closed form descriptions of nonnegative waveforms in PA modelling are also provided.
AbstractList Various classes of nonnegative waveforms containing dc component, fundamental and kth harmonic k> or =2 , which proved to be of interest in waveform modelling for power amplifier (PA) design, are considered in this paper. In optimization of PA efficiency, nonnegative waveforms with maximal amplitude of fundamental harmonic and those with maximal coefficient of cosine term of fundamental harmonic (optimal waveforms) play an important role. Optimal waveforms have multiple global minima and this fact closely relates the problem of optimization of PA efficiency to the concept of conflict set. There is also keen interest in finding descriptions for various classes of suboptimal waveforms, such as nonnegative waveforms with at least one zero, nonnegative waveforms with maximal amplitude of fundamental harmonic for prescribed amplitude of kth harmonic, nonnegative waveforms with maximal coefficient of cosine part of fundamental harmonic for prescribed coefficients of kth harmonic, and nonnegative cosine waveforms with at least one zero. Closed form descriptions for all these suboptimal types of waveforms are provided in this paper. Suboptimal waveforms may also have multiple global minima and therefore be related to the concept of conflict set. Four case studies of usage of closed form descriptions of nonnegative waveforms in PA modelling are also provided.
Various classes of nonnegative waveforms containing dc component, fundamental and k th harmonic ( k ≥ 2 ) , which proved to be of interest in waveform modelling for power amplifier (PA) design, are considered in this paper. In optimization of PA efficiency, nonnegative waveforms with maximal amplitude of fundamental harmonic and those with maximal coefficient of cosine term of fundamental harmonic (optimal waveforms) play an important role. Optimal waveforms have multiple global minima and this fact closely relates the problem of optimization of PA efficiency to the concept of conflict set. There is also keen interest in finding descriptions for various classes of suboptimal waveforms, such as nonnegative waveforms with at least one zero, nonnegative waveforms with maximal amplitude of fundamental harmonic for prescribed amplitude of k th harmonic, nonnegative waveforms with maximal coefficient of cosine part of fundamental harmonic for prescribed coefficients of k th harmonic, and nonnegative cosine waveforms with at least one zero. Closed form descriptions for all these suboptimal types of waveforms are provided in this paper. Suboptimal waveforms may also have multiple global minima and therefore be related to the concept of conflict set. Four case studies of usage of closed form descriptions of nonnegative waveforms in PA modelling are also provided.
Various classes of nonnegative waveforms containing dc component, fundamental and k th harmonic k ≥ 2 , which proved to be of interest in waveform modelling for power amplifier (PA) design, are considered in this paper. In optimization of PA efficiency, nonnegative waveforms with maximal amplitude of fundamental harmonic and those with maximal coefficient of cosine term of fundamental harmonic (optimal waveforms) play an important role. Optimal waveforms have multiple global minima and this fact closely relates the problem of optimization of PA efficiency to the concept of conflict set. There is also keen interest in finding descriptions for various classes of suboptimal waveforms, such as nonnegative waveforms with at least one zero, nonnegative waveforms with maximal amplitude of fundamental harmonic for prescribed amplitude of k th harmonic, nonnegative waveforms with maximal coefficient of cosine part of fundamental harmonic for prescribed coefficients of k th harmonic, and nonnegative cosine waveforms with at least one zero. Closed form descriptions for all these suboptimal types of waveforms are provided in this paper. Suboptimal waveforms may also have multiple global minima and therefore be related to the concept of conflict set. Four case studies of usage of closed form descriptions of nonnegative waveforms in PA modelling are also provided.
Author Novak, Ladislav A.
Juhas, Anamarija
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Copyright Copyright © 2015 Anamarija Juhas and Ladislav A. Novak.
Copyright © 2015 Anamarija Juhas and Ladislav A. Novak. Anamarija Juhas et al. This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright_xml – notice: Copyright © 2015 Anamarija Juhas and Ladislav A. Novak.
– notice: Copyright © 2015 Anamarija Juhas and Ladislav A. Novak. Anamarija Juhas et al. This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
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Snippet Various classes of nonnegative waveforms containing dc component, fundamental and k th harmonic k ≥ 2 , which proved to be of interest in waveform modelling...
Various classes of nonnegative waveforms containing dc component, fundamental and k th harmonic k ≥ 2 , which proved to be of interest in waveform modelling...
Various classes of nonnegative waveforms containing dc component, fundamental and k th harmonic ( k ≥ 2 ) , which proved to be of interest in waveform...
Various classes of nonnegative waveforms containing dc component, fundamental and kth harmonic k> or =2 , which proved to be of interest in waveform modelling...
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SubjectTerms Amplifier design
Amplitudes
Case studies
Closed form solutions
Coefficients
Descriptions
Design optimization
Efficiency
Exact solutions
Harmonics
Mathematical analysis
Mathematical problems
Minima
Modelling
Optimization
Power amplifiers
Waveforms
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Title Conflict Set and Waveform Modelling for Power Amplifier Design
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