Research on parameter extraction of thin‐film transistors based on swarm intelligence

Author:

Liu Peng1ORCID,Liu Bailing2,Feng Jing1,Wang Zhichong1,Zhang Qian1,Tang Xiaojun3,Li Yang1,Yuan Guangcai1,Dong Xue1

Affiliation:

1. Display Device Research Institute BOE Technology Group Co., Ltd. Beijing China

2. Module Platform Development Department BOE Technology Group Co., Ltd. Beijing China

3. Artificial Intelligence and Big Data Centers BOE Technology Group Co., Ltd. Beijing China

Abstract

AbstractThe development of integrated circuits for displays and other applications requires semiconductor device models and appropriate parameter extraction techniques to predict and understand the circuit behavior. These techniques are paramount in reducing design errors and shortening the product development cycle. This paper presents an algorithm that employed swarm intelligence in exploring an automated and accurate parameter extraction technology. First, an automatic parameter extraction of Rensselaer Polytechnic Institute (RPI) Model for polysilicon thin‐film transistor (Poly‐Si TFT) is achieved by genetic algorithm (GA) and particle swarm optimization (PSO) algorithm. Compared with the best solution of the GA algorithm for automatic parameter extraction, the PSO outperformed the GA. However, it still prematurely converges to the suboptimal solution henceforth cannot obtain the expected solution accuracy. Second, the mutual learning particle swarm optimization (MLPSO) algorithm is proposed that introduces the concept of “mutual learning.” The new algorithm aims to find the global optimum in getting suitable trade‐off between exploration and exploitation. In addition, the MLPSO algorithm implemented the novel random initialization and fitness function in simplifying the complex manual processes and the empirical calibration, and it led to achieving automatic and accurate parameters extraction.

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

Reference19 articles.

1. MearesL G HymowitzC E.Simulating with SPICE (Simulation Program with Integrated Circuit Emphasis).1988.

2. A short-channel DC SPICE model for polysilicon thin-film transistors including temperature effects

3. KennedyJ EberhartR.Particle swarm optimization[A]. Proceedings of IEEE ‐ International Conference on Neural Networks[C]. Perth 1995.

4. Ant system: optimization by a colony of cooperating agents

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