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Digital Filter Architecture Based on Modified Winograd Method F(2× 2, 5× 5) and Residue Number System

Improving the characteristics of digital signal processing devices is an important task in many practical problems. The paper proposes the architecture of a two-dimensional digital filter with a 5×5 mask, in which calculations are performed according to the Winograd method in the Residue Number Sy...

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Главные авторы: Valuev, G. V., Валуев, Г. В., Valueva, M. V., Валуева, М. В., Babenko, M. G., Бабенко, М. Г.
Формат: Статья
Язык:English
Опубликовано: 2023
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Online-ссылка:https://dspace.ncfu.ru/handle/20.500.12258/23763
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spelling ir-20.500.12258-237632025-02-11T09:48:08Z Digital Filter Architecture Based on Modified Winograd Method F(2× 2, 5× 5) and Residue Number System Valuev, G. V. Валуев, Г. В. Valueva, M. V. Валуева, М. В. Babenko, M. G. Бабенко, М. Г. Residue number system (RNS) Digital signal processing Digital filter Field-programmable gate array Winograd method Improving the characteristics of digital signal processing devices is an important task in many practical problems. The paper proposes the architecture of a two-dimensional digital filter with a 5×5 mask, in which calculations are performed according to the Winograd method in the Residue Number System (RNS) with moduli of a special type. Theoretical analysis and hardware Field-Programmable Gate Array simulation are presented. The results show that the fragment throughput fr/s (number of fragments per second) of the device is 29.6% – 724.7% higher than state-of-the-art solutions. This is achieved by the combination of the Winograd method, which reduces the number of multiplications, with the RNS arithmetic, which performs addition and multiplication under smaller operands in parallel. However, our experiments showed that the proposed method requires up to 2.54% – 11.01% more Look-Up Tables and 3.58% – 19.83% higher power consumption compared to known analogues. 2023-06-29T07:57:50Z 2023-06-29T07:57:50Z 2023 Статья Valuev, G., Valueva, M., Babenko, M., Tchernykh, A. Digital Filter Architecture Based on Modified Winograd Method F(2× 2, 5× 5) and Residue Number System // IEEE Access. - 2023. - 11, pp. 26807-26819. - DOI: 10.1109/ACCESS.2023.3258689 http://hdl.handle.net/20.500.12258/23763 en IEEE Access application/pdf application/pdf
institution СКФУ
collection Репозиторий
language English
topic Residue number system (RNS)
Digital signal processing
Digital filter
Field-programmable gate array
Winograd method
spellingShingle Residue number system (RNS)
Digital signal processing
Digital filter
Field-programmable gate array
Winograd method
Valuev, G. V.
Валуев, Г. В.
Valueva, M. V.
Валуева, М. В.
Babenko, M. G.
Бабенко, М. Г.
Digital Filter Architecture Based on Modified Winograd Method F(2× 2, 5× 5) and Residue Number System
description Improving the characteristics of digital signal processing devices is an important task in many practical problems. The paper proposes the architecture of a two-dimensional digital filter with a 5×5 mask, in which calculations are performed according to the Winograd method in the Residue Number System (RNS) with moduli of a special type. Theoretical analysis and hardware Field-Programmable Gate Array simulation are presented. The results show that the fragment throughput fr/s (number of fragments per second) of the device is 29.6% – 724.7% higher than state-of-the-art solutions. This is achieved by the combination of the Winograd method, which reduces the number of multiplications, with the RNS arithmetic, which performs addition and multiplication under smaller operands in parallel. However, our experiments showed that the proposed method requires up to 2.54% – 11.01% more Look-Up Tables and 3.58% – 19.83% higher power consumption compared to known analogues.
format Статья
author Valuev, G. V.
Валуев, Г. В.
Valueva, M. V.
Валуева, М. В.
Babenko, M. G.
Бабенко, М. Г.
author_facet Valuev, G. V.
Валуев, Г. В.
Valueva, M. V.
Валуева, М. В.
Babenko, M. G.
Бабенко, М. Г.
author_sort Valuev, G. V.
title Digital Filter Architecture Based on Modified Winograd Method F(2× 2, 5× 5) and Residue Number System
title_short Digital Filter Architecture Based on Modified Winograd Method F(2× 2, 5× 5) and Residue Number System
title_full Digital Filter Architecture Based on Modified Winograd Method F(2× 2, 5× 5) and Residue Number System
title_fullStr Digital Filter Architecture Based on Modified Winograd Method F(2× 2, 5× 5) and Residue Number System
title_full_unstemmed Digital Filter Architecture Based on Modified Winograd Method F(2× 2, 5× 5) and Residue Number System
title_sort digital filter architecture based on modified winograd method f(2× 2, 5× 5) and residue number system
publishDate 2023
url https://dspace.ncfu.ru/handle/20.500.12258/23763
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