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A Combined Method of Temporal Convolutional Mechanism and Wavelet Decomposition for State Estimation of Photovoltaic Power Plants
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作者 Shaoxiong Wu Ruoxin Li +6 位作者 Xiaofeng Tao Hailong Wu Ping Miao Yang Lu Yanyan Lu Qi Liu Li Pan 《Computers, Materials & Continua》 SCIE EI 2024年第11期3063-3077,共15页
Time series prediction has always been an important problem in the field of machine learning.Among them,power load forecasting plays a crucial role in identifying the behavior of photovoltaic power plants and regulati... Time series prediction has always been an important problem in the field of machine learning.Among them,power load forecasting plays a crucial role in identifying the behavior of photovoltaic power plants and regulating their control strategies.Traditional power load forecasting often has poor feature extraction performance for long time series.In this paper,a new deep learning framework Residual Stacked Temporal Long Short-Term Memory(RST-LSTM)is proposed,which combines wavelet decomposition and time convolutional memory network to solve the problem of feature extraction for long sequences.The network framework of RST-LSTM consists of two parts:one is a stacked time convolutional memory unit module for global and local feature extraction,and the other is a residual combination optimization module to reduce model redundancy.Finally,this paper demonstrates through various experimental indicators that RST-LSTM achieves significant performance improvements in both overall and local prediction accuracy compared to some state-of-the-art baseline methods. 展开更多
关键词 times series forecasting long short term memory network(LSTM) time convolutional network(TCN) wavelet decomposition
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优化空时格码的性能准则及串联级联卷积编码空时格码
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作者 程健 陈明 程时昕 《应用科学学报》 CAS CSCD 2002年第2期129-134,共6页
讨论一种优化的空时格码的性能准则 ;再应用串联级联卷积编码加格雷映射实现一种新的空时格码 .通过仿真可见 ,这种新空时格码比经典空时格码和编码增益优化了的空时格码在性能上都要好 ,具有性能好、容易构造等优点 .
关键词 性能准则 空时码 空时格码 串联级联卷积编码 瑞利衰落 无线通信 分集
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