Ensembles of Type 2 Fuzzy Neural Models and Their Optimization with Bio-Inspired Algorithms for Time Series Prediction (SpringerBriefs in Applied Sciences and Technology)
Jesus Soto
- 出版商: Springer
- 出版日期: 2017-11-28
- 售價: $2,370
- 貴賓價: 9.5 折 $2,252
- 語言: 英文
- 頁數: 108
- 裝訂: Paperback
- ISBN: 3319712632
- ISBN-13: 9783319712635
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相關分類:
Algorithms-data-structures
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商品描述
This book focuses on the fields of hybrid intelligent systems based on fuzzy systems, neural networks, bio-inspired algorithms and time series. This book describes the construction of ensembles of Interval Type-2 Fuzzy Neural Networks models and the optimization of their fuzzy integrators with bio-inspired algorithms for time series prediction. Interval type-2 and type-1 fuzzy systems are used to integrate the outputs of the Ensemble of Interval Type-2 Fuzzy Neural Network models. Genetic Algorithms and Particle Swarm Optimization are the Bio-Inspired algorithms used for the optimization of the fuzzy response integrators. The Mackey-Glass, Mexican Stock Exchange, Dow Jones and NASDAQ time series are used to test of performance of the proposed method. Prediction errors are evaluated by the following metrics: Mean Absolute Error, Mean Square Error, Root Mean Square Error, Mean Percentage Error and Mean Absolute Percentage Error. The proposed prediction model outperforms state of the art methods in predicting the particular time series considered in this work.
商品描述(中文翻譯)
本書專注於基於模糊系統、神經網絡、生物啟發算法和時間序列的混合智能系統領域。本書描述了區間型2模糊神經網絡模型的集成構建以及利用生物啟發算法對其模糊積分器進行優化以進行時間序列預測。區間型2和型1模糊系統用於整合區間型2模糊神經網絡模型的輸出。遺傳算法和粒子群優化是用於優化模糊響應積分器的生物啟發算法。Mackey-Glass、墨西哥證券交易所、道瓊斯和NASDAQ時間序列用於測試所提方法的性能。預測誤差通過以下指標進行評估:平均絕對誤差、均方誤差、均方根誤差、平均百分比誤差和平均絕對百分比誤差。所提出的預測模型在預測本研究中考慮的特定時間序列方面超越了當前最先進的方法。