Digital Compensation in IQ Modulator Using <inline-formula<<graphic file="1687-6180-2005-727038-i1.gif"/<</inline-formula< Optimization—A State-Space Approach
<p/< <p<In DSP-based IQ modulators generating CPFSK signals, shortcomings in the implementation of the analog reconstruction filters result in the loss of the constant envelope property of the output CPFSK signal. These ripples cause undesirable spreading of the transmitted signal spectr...
Ausführliche Beschreibung
Autor*in: |
Lim AGKC [verfasserIn] Sreeram V [verfasserIn] Wang G [verfasserIn] |
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E-Artikel |
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Sprache: |
Englisch |
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2005 |
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Übergeordnetes Werk: |
In: EURASIP Journal on Advances in Signal Processing - SpringerOpen, 2008, (2005), 4, p 727038 |
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Übergeordnetes Werk: |
year:2005 ; number:4, p 727038 |
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Katalog-ID: |
DOAJ040484637 |
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(DE-627)DOAJ040484637 (DE-599)DOAJ0765e28cdfe343ceab9c79262f3d6178 DE-627 ger DE-627 rakwb eng TK5101-6720 TK7800-8360 Lim AGKC verfasserin aut Digital Compensation in IQ Modulator Using <inline-formula<<graphic file="1687-6180-2005-727038-i1.gif"/<</inline-formula< Optimization—A State-Space Approach 2005 Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier <p/< <p<In DSP-based IQ modulators generating CPFSK signals, shortcomings in the implementation of the analog reconstruction filters result in the loss of the constant envelope property of the output CPFSK signal. These ripples cause undesirable spreading of the transmitted signal spectrum into adjacent channels when the signal passes through nonlinear elements in the transmission path and the consequent failure of the transmitted signal in meeting transmission standards requirements. Therefore, digital techniques compensating for these shortcomings play an important role in enhancing the performance of the IQ modulation system. Recently, several methods have been proposed in the literature to digitally compensate for the imperfections in the transfer characteristics of the analog reconstruction filters. Although these methods have been shown to be effective in removing the output envelope ripples, they result in filters of high orders and are therefore computationally demanding to implement on the DSP. Furthermore, previous techniques suffer from numerical instabilities as a result of matrix inversion in the process of calculating the solution vector. In this paper, we present two new techniques for designing the digital compensation filters by means of <inline-formula<<graphic file="1687-6180-2005-727038-i2.gif"/<</inline-formula< optimization to address the limitations of previous solutions. Design of control systems by <inline-formula<<graphic file="1687-6180-2005-727038-i3.gif"/<</inline-formula< optimization is now a standard technique. Simulation examples show that these techniques are effective and lead to substantial improvement of the output envelope ripples.</p< <it<H</it<-infinity optimization digital compensation IQ modulators Telecommunication Electronics Sreeram V verfasserin aut Wang G verfasserin aut In EURASIP Journal on Advances in Signal Processing SpringerOpen, 2008 (2005), 4, p 727038 (DE-627)534054277 (DE-600)2364203-8 16876180 nnns year:2005 number:4, p 727038 https://doaj.org/article/0765e28cdfe343ceab9c79262f3d6178 kostenfrei http://dx.doi.org/10.1155/ASP.2005.541 kostenfrei https://doaj.org/toc/1687-6172 Journal toc kostenfrei https://doaj.org/toc/1687-6180 Journal toc kostenfrei GBV_USEFLAG_A SYSFLAG_A GBV_DOAJ GBV_ILN_20 GBV_ILN_22 GBV_ILN_23 GBV_ILN_24 GBV_ILN_31 GBV_ILN_40 GBV_ILN_60 GBV_ILN_62 GBV_ILN_65 GBV_ILN_69 GBV_ILN_70 GBV_ILN_73 GBV_ILN_95 GBV_ILN_110 GBV_ILN_161 GBV_ILN_170 GBV_ILN_285 GBV_ILN_293 GBV_ILN_370 GBV_ILN_602 GBV_ILN_2522 AR 2005 4, p 727038 |
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<p/< <p<In DSP-based IQ modulators generating CPFSK signals, shortcomings in the implementation of the analog reconstruction filters result in the loss of the constant envelope property of the output CPFSK signal. These ripples cause undesirable spreading of the transmitted signal spectrum into adjacent channels when the signal passes through nonlinear elements in the transmission path and the consequent failure of the transmitted signal in meeting transmission standards requirements. Therefore, digital techniques compensating for these shortcomings play an important role in enhancing the performance of the IQ modulation system. Recently, several methods have been proposed in the literature to digitally compensate for the imperfections in the transfer characteristics of the analog reconstruction filters. Although these methods have been shown to be effective in removing the output envelope ripples, they result in filters of high orders and are therefore computationally demanding to implement on the DSP. Furthermore, previous techniques suffer from numerical instabilities as a result of matrix inversion in the process of calculating the solution vector. In this paper, we present two new techniques for designing the digital compensation filters by means of <inline-formula<<graphic file="1687-6180-2005-727038-i2.gif"/<</inline-formula< optimization to address the limitations of previous solutions. Design of control systems by <inline-formula<<graphic file="1687-6180-2005-727038-i3.gif"/<</inline-formula< optimization is now a standard technique. Simulation examples show that these techniques are effective and lead to substantial improvement of the output envelope ripples.</p< |
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<p/< <p<In DSP-based IQ modulators generating CPFSK signals, shortcomings in the implementation of the analog reconstruction filters result in the loss of the constant envelope property of the output CPFSK signal. These ripples cause undesirable spreading of the transmitted signal spectrum into adjacent channels when the signal passes through nonlinear elements in the transmission path and the consequent failure of the transmitted signal in meeting transmission standards requirements. Therefore, digital techniques compensating for these shortcomings play an important role in enhancing the performance of the IQ modulation system. Recently, several methods have been proposed in the literature to digitally compensate for the imperfections in the transfer characteristics of the analog reconstruction filters. Although these methods have been shown to be effective in removing the output envelope ripples, they result in filters of high orders and are therefore computationally demanding to implement on the DSP. Furthermore, previous techniques suffer from numerical instabilities as a result of matrix inversion in the process of calculating the solution vector. In this paper, we present two new techniques for designing the digital compensation filters by means of <inline-formula<<graphic file="1687-6180-2005-727038-i2.gif"/<</inline-formula< optimization to address the limitations of previous solutions. Design of control systems by <inline-formula<<graphic file="1687-6180-2005-727038-i3.gif"/<</inline-formula< optimization is now a standard technique. Simulation examples show that these techniques are effective and lead to substantial improvement of the output envelope ripples.</p< |
abstract_unstemmed |
<p/< <p<In DSP-based IQ modulators generating CPFSK signals, shortcomings in the implementation of the analog reconstruction filters result in the loss of the constant envelope property of the output CPFSK signal. These ripples cause undesirable spreading of the transmitted signal spectrum into adjacent channels when the signal passes through nonlinear elements in the transmission path and the consequent failure of the transmitted signal in meeting transmission standards requirements. Therefore, digital techniques compensating for these shortcomings play an important role in enhancing the performance of the IQ modulation system. Recently, several methods have been proposed in the literature to digitally compensate for the imperfections in the transfer characteristics of the analog reconstruction filters. Although these methods have been shown to be effective in removing the output envelope ripples, they result in filters of high orders and are therefore computationally demanding to implement on the DSP. Furthermore, previous techniques suffer from numerical instabilities as a result of matrix inversion in the process of calculating the solution vector. In this paper, we present two new techniques for designing the digital compensation filters by means of <inline-formula<<graphic file="1687-6180-2005-727038-i2.gif"/<</inline-formula< optimization to address the limitations of previous solutions. Design of control systems by <inline-formula<<graphic file="1687-6180-2005-727038-i3.gif"/<</inline-formula< optimization is now a standard technique. Simulation examples show that these techniques are effective and lead to substantial improvement of the output envelope ripples.</p< |
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