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International Journal of Science, Strategic Management and Technology

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ISSN: 3108-1762 (Online)
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ADAPTIVE PARALLEL ARITHMETIC ENGINE: A HIGH-SPEED AND POWER-EFFICIENT ARITHMETIC UNIT ARCHITECTURE FOR NEXT-GENERATION DIGITAL SYSTEMS

AUTHORS:
Metupalli Saipriya
Chetti Avinash
Mentor
Dr T Anvesh
Affiliation
Department Of ECE, SVS Group of Institutions, Hanmakonda, Telangana
CC BY 4.0 License:
This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Abstract
Arithmetic units constitute the computational backbone of modern digital systems, including microprocessors, digital signal processors, graphics processing units, artificial intelligence accelerators, and communication devices. As computational demands continue to increase, the need for high-speed arithmetic operations with minimal latency and power consumption has become a critical design challenge. Conventional arithmetic units often suffer from propagation delays, excessive switching activity, and inefficient resource utilization, limiting overall system performance. This paper presents an optimized high-speed arithmetic unit architecture that integrates parallel processing techniques, adaptive carry prediction mechanisms, hybrid adder structures, and pipelined computation stages to enhance computational efficiency. The proposed architecture, referred to as the Adaptive Parallel Arithmetic Engine (APAE), combines the advantages of Carry Look-Ahead Adders, Carry Select Adders, and dynamic carry prediction logic to achieve reduced critical path delays while maintaining hardware efficiency. Furthermore, power optimization techniques including clock gating and operand isolation are incorporated to minimize energy consumption. Experimental evaluation demonstrates significant improvements in processing speed, area-delay product, and power efficiency compared to conventional arithmetic architectures. The proposed framework provides a scalable and efficient solution for next-generation high-performance computing and embedded systems.
Keywords
Arithmetic Unit High-Speed Computing VLSI Design Carry Look-Ahead Adder Carry Prediction FPGA Digital Signal Processing Processor Architecture.
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Saipriya, M. & Avinash, C. (2026). Adaptive Parallel Arithmetic Engine: A High-Speed and Power-Efficient Arithmetic Unit Architecture for Next-Generation Digital Systems. International Journal of Science, Strategic Management and Technology, 02(7). https://doi.org/10.55041/ijsmt.v2i7.026

Saipriya, Metupalli, and Chetti Avinash. "Adaptive Parallel Arithmetic Engine: A High-Speed and Power-Efficient Arithmetic Unit Architecture for Next-Generation Digital Systems." International Journal of Science, Strategic Management and Technology, vol. 02, no. 7, 2026, pp. . doi:https://doi.org/10.55041/ijsmt.v2i7.026.

Saipriya, Metupalli, and Chetti Avinash. "Adaptive Parallel Arithmetic Engine: A High-Speed and Power-Efficient Arithmetic Unit Architecture for Next-Generation Digital Systems." International Journal of Science, Strategic Management and Technology 02, no. 7 (2026). https://doi.org/https://doi.org/10.55041/ijsmt.v2i7.026.

References
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[4] P. M. Kogge and H. S. Stone, “A Parallel Algorithm for the Efficient Solution of a General Class of Recurrence Equations,” IEEE Transactions on Computers, vol. C-22, no. 8, pp. 786–793, 1973.

[5] S. Knowles, “A Family of Adders,” Proceedings of the IEEE Symposium on Computer Arithmetic, pp. 277–281, 1999.

[6] A. P. Chandrakasan and R. W. Brodersen, Low Power Digital CMOS Design, Springer, 1995.

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[8] B. Parhami, Computer Arithmetic: Algorithms and Hardware Designs, Oxford University Press, 2010.

[9] M. Alioto, “Energy-Efficient Arithmetic Circuits for VLSI Signal Processing Applications,” IEEE Transactions on Circuits and Systems, vol. 66, no. 4, pp. 1241–1254.

[10] S. Gupta and N. Gupta, “High-Speed Low-Power Adder Architectures for Modern Processor Design,” International Journal of VLSI Design and Communication Systems, vol. 12, no. 3, pp. 15–27.
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This article has undergone plagiarism screening and double-blind peer review. Editorial policies have been followed. Authors retain copyright under CC BY-NC 4.0 license. The research complies with ethical standards and institutional guidelines.
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