Efficiënt Computing System for Satellite Image Processing Processor

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Udgivet i:Informatica vol. 49, no. 15 (Mar 2025), p. 55
Hovedforfatter: Pazhani, A Azhagu Jaisudhan
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Slovenian Society Informatika / Slovensko drustvo Informatika
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022 |a 0350-5596 
022 |a 1854-3871 
024 7 |a 10.31449/inf.v49il5.5989  |2 doi 
035 |a 3188880703 
045 2 |b d20250301  |b d20250331 
084 |a 179436  |2 nlm 
100 1 |a Pazhani, A Azhagu Jaisudhan  |u Department of ECE, Ramco Institute of Technology, Rajapalayam, India 
245 1 |a Efficiënt Computing System for Satellite Image Processing Processor 
260 |b Slovenian Society Informatika / Slovensko drustvo Informatika  |c Mar 2025 
513 |a Journal Article 
520 3 |a Approximate computing plays a significant role in signal processing and image processing applications. Radix-8 approximate novel booth multiplier (R8ANBM) based on approximate novel booth encoder (ANBE) is proposed in this paper to validate approximate computing. The proposed design is synthesized and simulated in Xilinx ISE 13.2. The experimental results show that the proposed multiplier performs better in terms area, speed and energy consumption. The proposed R8ANBE reduced the number of 4 input LUTs by 23.07%, 17.94%, 19.87%, 16.66%, 13.46%, 8.33%, 12.82%, 9.61%, 12.17% and number of occupied slices by 22.33%, 30.09%, 25.24%, 29.12%, 14.56%, 17.47%, 13.59%, 12.62%, 17.47% when compared with the existing techniques such as conventional booth multiplier, R4ABM1, RAD64, ABM1, HLR-BM1, HLR-BM2, R8ABM1, R8ABM2, R8ABM3 respectively. It achieved the accuracy as 67.3% which is higher than exisitng approximate booth multipliers. The proposed R8ANBM is applied to image sharpening applications and the performances are analyzed in terms oferror metrics such as ralative mean error distance, normalized mean error distance and peak signal to noise ratio. The above proposed system was implemented using 45nanometer technology library. With applications in low-power CMOS design, quantum computing, optical information processing, DNA computing, bioinformatics, and nanotechnology, there is an increasing interest in power minimization. 
610 4 |a Xilinx Inc 
653 |a Machine learning 
653 |a Accuracy 
653 |a Quantum computing 
653 |a Data processing 
653 |a Signal processing 
653 |a Fourier transforms 
653 |a Error correction & detection 
653 |a Multipliers 
653 |a Microprocessors 
653 |a Satellite imagery 
653 |a Multiplication & division 
653 |a Power management 
653 |a Approximation 
653 |a Design 
653 |a Energy consumption 
653 |a Performance evaluation 
653 |a Image processing 
653 |a Bioinformatics 
653 |a Signal to noise ratio 
653 |a Nanotechnology 
653 |a Satellites 
653 |a Image processing systems 
773 0 |t Informatica  |g vol. 49, no. 15 (Mar 2025), p. 55 
786 0 |d ProQuest  |t Advanced Technologies & Aerospace Database 
856 4 1 |3 Citation/Abstract  |u https://www.proquest.com/docview/3188880703/abstract/embedded/L8HZQI7Z43R0LA5T?source=fedsrch 
856 4 0 |3 Full Text  |u https://www.proquest.com/docview/3188880703/fulltext/embedded/L8HZQI7Z43R0LA5T?source=fedsrch 
856 4 0 |3 Full Text - PDF  |u https://www.proquest.com/docview/3188880703/fulltextPDF/embedded/L8HZQI7Z43R0LA5T?source=fedsrch