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将鲸鱼算法集成到PID控制系统中对有机发光二极管温度控制的改进分析

Improvement analysis of organic light emitting diode temperature control by integrating whale algorithm in PID control system.

作者信息

Zhang Dayu, Guan Cong

机构信息

School of Intelligent Manufacturing and Elevator, Huzhou Vocational and Technical College, Huzhou, China.

Faculty of Robot Science and Engineering, Northeastern University, Shenyang, China.

出版信息

PLoS One. 2025 Jul 22;20(7):e0327851. doi: 10.1371/journal.pone.0327851. eCollection 2025.

Abstract

Organic Light-Emitting Diode (OLED) is a high-performance display technology. Its performance and lifespan are extremely sensitive to the operating temperature. The existing temperature control methods, such as the traditional Proportional-Integral-Derivative (PID) controller, are difficult to meet the requirements of OLED for precise temperature control, especially in systems with significant nonlinear and time-varying characteristics. To solve this problem, the study proposes an improved PID controller based on the Long Short-Term Memory (LSTM) optimized by the Whale Optimization Algorithm (WOA). This method combines the global optimization ability of WOA and the timing analysis ability of LSTM. By optimizing the parameters of the PID controller, the accuracy and adaptability of temperature control are improved. Meanwhile, the effectiveness of the proposed controller is verified by constructing a thermodynamic model and combining experimental data. In the experimental results, compared with the traditional PID controller, the overshoot of the WOA-LSTM-PID controller was reduced from 8.5°C to 0.3°C, the steady-state error was reduced from 1.2°C to 0.2°C, the regulation time was shortened from 42.5 seconds to 20.2 seconds, and the response time was shortened from 70.5 seconds to 21.9 seconds. Furthermore, the root mean square error has been reduced from 5.23°C of the traditional PID to 0.78°C. The research results show that the WOA-LSTM-PID controller can significantly improve the accuracy and stability of OLED temperature control, while reducing the regulation time and response time. This controller effectively addresses the nonlinear and time-varying characteristics in OLED temperature control by optimizing the PID parameters. The innovation of the research lies in the combination of the WOA and the LSTM network. By optimizing the parameters of the PID controller, high-precision control of the OLED temperature has been achieved. This study not only proposes a new theoretical optimization method but also verifies its significant performance improvement in experiments. Furthermore, this method has strong universality and can be applied to other temperature-sensitive systems.

摘要

有机发光二极管(OLED)是一种高性能显示技术。其性能和寿命对工作温度极为敏感。现有的温度控制方法,如传统的比例积分微分(PID)控制器,难以满足OLED对精确温度控制的要求,尤其是在具有显著非线性和时变特性的系统中。为解决这一问题,该研究提出了一种基于鲸鱼优化算法(WOA)优化的长短期记忆(LSTM)的改进PID控制器。该方法结合了WOA的全局优化能力和LSTM的时序分析能力。通过优化PID控制器的参数,提高了温度控制的精度和适应性。同时,通过构建热力学模型并结合实验数据,验证了所提出控制器的有效性。在实验结果中,与传统PID控制器相比,WOA-LSTM-PID控制器的超调量从8.5°C降至0.3°C,稳态误差从1.2°C降至0.2°C,调节时间从42.5秒缩短至20.2秒,响应时间从70.5秒缩短至21.9秒。此外,均方根误差已从传统PID的5.23°C降至0.78°C。研究结果表明,WOA-LSTM-PID控制器可以显著提高OLED温度控制的精度和稳定性,同时缩短调节时间和响应时间。该控制器通过优化PID参数有效地解决了OLED温度控制中的非线性和时变特性。该研究的创新之处在于将WOA与LSTM网络相结合。通过优化PID控制器的参数,实现了对OLED温度的高精度控制。本研究不仅提出了一种新的理论优化方法,还在实验中验证了其显著的性能提升。此外,该方法具有很强的通用性,可应用于其他对温度敏感的系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbf6/12282920/1d5ee38cbe26/pone.0327851.g001.jpg

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