Design And Implementation Of Low Passband Ripple Digital Down Converter Filter For Software Defined Radio Transceiver
The main aim of this research is the design and implementation of the Digital Down Converter (DDC) filter with low passband ripple and high attenuation in the adjacent rejection and blocker requirements in the filter response for Software Defined Radio (SDR) transceiver to decrease the power consum...
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2011
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my-usm-ep.433912019-04-12T05:26:26Z Design And Implementation Of Low Passband Ripple Digital Down Converter Filter For Software Defined Radio Transceiver 2011-12 Naghmash, Majid Salal TK1-9971 Electrical engineering. Electronics. Nuclear engineering The main aim of this research is the design and implementation of the Digital Down Converter (DDC) filter with low passband ripple and high attenuation in the adjacent rejection and blocker requirements in the filter response for Software Defined Radio (SDR) transceiver to decrease the power consumption and avoid the interference in the channel. The proposed DDC filters incorporate of Remez algorithm and Mini-max algorithm to reduce the error rate in the filter response. The DDC filter is acombination of 5-stages Cascaded Integrated Comb (CIC) filter and two linear phase Equiripple FIR filter (CFIR and PFIR). The passband ripple, adjacent rejection and blocker band is developed by controlling the transition width, filter order and weight function of the FIR filter using MATLAB and Xilinx System Generator environment. 2011-12 Thesis http://eprints.usm.my/43391/ http://eprints.usm.my/43391/1/MAJID%20SALAL%20NAGHMASH.pdf application/pdf en public phd doctoral Universiti Sains Malaysia Pusat Pengajian Kejuteraan Elektrik & Elektronik |
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English |
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TK1-9971 Electrical engineering Electronics Nuclear engineering |
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TK1-9971 Electrical engineering Electronics Nuclear engineering Naghmash, Majid Salal Design And Implementation Of Low Passband Ripple Digital Down Converter Filter For Software Defined Radio Transceiver |
description |
The main aim of this research is the design and implementation of the Digital Down Converter (DDC) filter with low passband ripple and high attenuation in the
adjacent rejection and blocker requirements in the filter response for Software Defined Radio (SDR) transceiver to decrease the power consumption and avoid the interference in the channel. The proposed DDC filters incorporate of Remez algorithm and Mini-max algorithm to reduce the error rate in the filter response. The DDC filter is acombination of 5-stages Cascaded Integrated Comb (CIC) filter and two linear phase Equiripple FIR filter (CFIR and PFIR). The passband ripple, adjacent rejection and blocker band is developed by controlling the transition width, filter order and weight function of the FIR filter using MATLAB and Xilinx System Generator environment. |
format |
Thesis |
qualification_name |
Doctor of Philosophy (PhD.) |
qualification_level |
Doctorate |
author |
Naghmash, Majid Salal |
author_facet |
Naghmash, Majid Salal |
author_sort |
Naghmash, Majid Salal |
title |
Design And Implementation Of Low Passband Ripple Digital Down Converter Filter For Software Defined Radio Transceiver |
title_short |
Design And Implementation Of Low Passband Ripple Digital Down Converter Filter For Software Defined Radio Transceiver |
title_full |
Design And Implementation Of Low Passband Ripple Digital Down Converter Filter For Software Defined Radio Transceiver |
title_fullStr |
Design And Implementation Of Low Passband Ripple Digital Down Converter Filter For Software Defined Radio Transceiver |
title_full_unstemmed |
Design And Implementation Of Low Passband Ripple Digital Down Converter Filter For Software Defined Radio Transceiver |
title_sort |
design and implementation of low passband ripple digital down converter filter for software defined radio transceiver |
granting_institution |
Universiti Sains Malaysia |
granting_department |
Pusat Pengajian Kejuteraan Elektrik & Elektronik |
publishDate |
2011 |
url |
http://eprints.usm.my/43391/1/MAJID%20SALAL%20NAGHMASH.pdf |
_version_ |
1747821205629435904 |