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A Reformed PSO-Based High Linear Optimized Up-Conversion Mixer for Radar Application.

Authors :
Delwar, Tahesin Samira
Aras, Unal
Siddique, Abrar
Lee, Yangwon
Ryu, Jee-Youl
Source :
Sensors (14248220); Feb2024, Vol. 24 Issue 3, p879, 19p
Publication Year :
2024

Abstract

A reformed particle swarm optimization (R<subscript>PSO</subscript>)-based up-conversion mixer circuit is proposed for radar application in this paper. In practice, a non-optimized up-conversion mixer suffers from high power consumption, poor linearity, and conversion gain. Therefore, the R<subscript>PSO</subscript> algorithm is proposed to optimize the up-conversion mixer. The novelty of the proposed R<subscript>PSO</subscript> algorithm is it helps to solve the problem of local optima and premature convergence in traditional particle swarm optimization (T<subscript>PSO</subscript>). Furthermore, in the R<subscript>PSO</subscript>, a velocity position-based convergence (VP<subscript>C</subscript>) and wavelet mutation (W<subscript>M</subscript>) strategy are used to enhance R<subscript>PSO</subscript>'s swarm diversity. Moreover, this work also features novel circuit configurations based on the two-fold transconductance path (T<subscript>TP</subscript>), a technique used to improve linearity. A differential common source (D<subscript>CS</subscript>) amplifier is included in the primary transconductance path (P<subscript>TP</subscript>) of the T<subscript>TP</subscript>. As for the subsidiary transconductance path (S<subscript>TP</subscript>), the enhanced cross-quad transconductor (E<subscript>CQT</subscript>) is implemented within the T<subscript>TP</subscript>. A benchmark function verification is conducted to demonstrate the effectiveness of the R<subscript>PSO</subscript> algorithm. The proposed R<subscript>PSO</subscript> has also been compared with other optimization algorithms such as the genetic algorithm (GA) and the non-dominated sorting genetic algorithm II (NSGA-II). By using R<subscript>PSO</subscript>, the proposed optimized mixer achieves a conversion gain (CG) of 2.5 dB (measured). In this study, the proposed mixer achieves a 1 dB compression point (OP<subscript>1</subscript>dB) of 4.2 dBm with a high linearity. In the proposed mixer, the noise figure (NF) is approximately 3.1 dB. While the power dissipation of the optimized mixer is 3.24 mW. Additionally, the average time for R<subscript>PSO</subscript> to design an up-conversion mixer is 4.535 s. Simulation and measured results demonstrate the excellent performance of the R<subscript>PSO</subscript> optimized up-conversion mixer. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14248220
Volume :
24
Issue :
3
Database :
Complementary Index
Journal :
Sensors (14248220)
Publication Type :
Academic Journal
Accession number :
175390581
Full Text :
https://doi.org/10.3390/s24030879