1984IEEE Journal of Solid-State CircuitsRequires access

A CMOS floating point multiplier

M. Uya, Kenji KANEKO, J. Yasui

Open publisher page 52 citations

Abstract

A 32-bit CMOS floating-point multiplier is described. The chip can perform 32-bit floating-point multiplication (based on the proposed IEEE Standard format) and 24-bit fixed-point multiplication (two's complement format) in less than 78.7 and 71.1 ns, respectively; the typical power dissipation is 195 mW at 10,000,000 operations per second. High-speed multiplication techniques, a modified Booth's algorithm, a carry save adder scheme, a high-speed CMOS full adder, and a modified carry select adder are used to achieve the above high performance. The chip is designed for compatibility with 16-bit microcomputer systems, and is fabricated in 2-/spl mu/m n-well CMOS technology; it contains about 23000 transistors 5.75/spl times/5.67 mm/SUP 2/ in size.

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What this paper is about

A 32-bit CMOS floating-point multiplier is described. The chip can perform 32-bit floating-point multiplication (based on the proposed IEEE Standard format) and 24-bit fixed-point multiplication (two's complement format) in less than 78.7 and 71.1 ns, respectively; the typical power dissipation is 195 mW at 10,000,000 operations per second. High-speed multiplication techniques, a modified Booth's algorithm, a carry save adder scheme, a high-speed CMOS full adder, and a modified carry select adder are used to achieve the above high performance. The chip is designed for compatibility with 16-bit microcomputer systems, and is fabricated in 2-/spl mu/m n-well CMOS technology; it contains about 23000 transistors 5.75/spl times/5.67 mm/SUP 2/ in size.

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Available abstract

A 32-bit CMOS floating-point multiplier is described. The chip can perform 32-bit floating-point multiplication (based on the proposed IEEE Standard format) and 24-bit fixed-point multiplication (two's complement format) in less than 78.7 and 71.1 ns, respectively; the typical power dissipation is 195 mW at 10,000,000 operations per second. High-speed multiplication techniques, a modified Booth's algorithm, a carry save adder scheme, a high-speed CMOS full adder, and a modified carry select adder are used to achieve the above high performance. The chip is designed for compatibility with 16-bit microcomputer systems, and is fabricated in 2-/spl mu/m n-well CMOS technology; it contains about 23000 transistors 5.75/spl times/5.67 mm/SUP 2/ in size.

Key concepts: Adder, CMOS, 16-bit, Multiplier (economics), 8-bit, Computer science, 32-bit, Dissipation

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