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Titlebook: Engineering Applications of Neural Networks; 20th International C John Macintyre,Lazaros Iliadis,Chrisina Jayne Conference proceedings 2019

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書(shū)目名稱(chēng)Engineering Applications of Neural Networks
副標(biāo)題20th International C
編輯John Macintyre,Lazaros Iliadis,Chrisina Jayne
視頻videohttp://file.papertrans.cn/311/310709/310709.mp4
叢書(shū)名稱(chēng)Communications in Computer and Information Science
圖書(shū)封面Titlebook: Engineering Applications of Neural Networks; 20th International C John Macintyre,Lazaros Iliadis,Chrisina Jayne Conference proceedings 2019
描述.This book constitutes the refereed proceedings of the 19th International Conference on Engineering Applications of Neural Networks, EANN 2019, held in ?Xersonisos, Crete, Greece, in May 2019..The 35 revised full papers and 5 revised short papers presented were carefully reviewed and selected from 72 submissions. The papers are organized in topical sections on AI in energy management - industrial applications; biomedical - bioinformatics modeling; classification - learning; deep learning; deep learning - convolutional ANN; fuzzy - vulnerability - navigation modeling; machine learning modeling - optimization; ML - DL financial modeling; security - anomaly detection; 1st PEINT workshop..
出版日期Conference proceedings 2019
關(guān)鍵詞artificial intelligence; artificial neural network; genetic algorithms; image coding; image processing; i
版次1
doihttps://doi.org/10.1007/978-3-030-20257-6
isbn_softcover978-3-030-20256-9
isbn_ebook978-3-030-20257-6Series ISSN 1865-0929 Series E-ISSN 1865-0937
issn_series 1865-0929
copyrightSpringer Nature Switzerland AG 2019
The information of publication is updating

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Application of Deep Learning Long Short-Term Memory in Energy Demand Forecastinglected by smart meter per day provides a huge potential for analytics to support the operation of a smart grid, an example of which is energy demand forecasting. Short term energy forecasting can be used by utilities to assess if any forecasted peak energy demand would have an adverse effect on the
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Modelling of Compressors in an Industrial CO,-Based Operational Cooling System Using ANN for Energy tion and power requirements through intelligent energy and power management, such as utilizing excess heat, thermal energy storage and local renewable energy sources. Intelligent energy and power management in an operational setting is only possible if the time-varying performance of the individual
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Outlier Detection in Temporal Spatial Log Data Using Autoencoder for Industry 4.0ny relationships and dependencies in the data. Outlier detection and problem solving is difficult in such an environment. We present an unsupervised outlier detection method to find outliers in temporal spatial log data without domain-specific knowledge. Our method is evaluated with real-world unlab
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Reservoir Computing Approaches Applied to Energy Management in Industryithful reproduction of the behavior of the system to model with a usually limited computational burden for a training phase. This aspect favors the deployment of Echo-State Neural networks in the industrial field. In this paper, a novel application of such approach is proposed for the modelling of i
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Classification of Sounds Indicative of Respiratory Diseasesas asthma, COPD, and pneumonia. We designed a feature set based on wavelet packet analysis characterizing data coming from four sound classes, i.e. ., ., ., .. Subsequently, the captured temporal patterns are learned by hidden Markov models (HMMs). Finally, classification is achieved via a directed
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Eye Disease Prediction from Optical Coherence Tomography Images with Transfer Learningl Neovascularization, Drusen (CNV), Diabetic Macular Odeama (DME), Drusen. Detecting these diseases are quite challenging and requires hours of analysis by experts, as their symptoms are somewhat similar. We have used transfer learning with VGG16 and Inception V3 models which are state of the art CN
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