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Titlebook: Artificial Intelligence and Soft Computing; 15th International C Leszek Rutkowski,Marcin Korytkowski,Jacek M. Zurad Conference proceedings

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發(fā)表于 2025-3-21 18:01:19 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
期刊全稱Artificial Intelligence and Soft Computing
期刊簡稱15th International C
影響因子2023Leszek Rutkowski,Marcin Korytkowski,Jacek M. Zurad
視頻videohttp://file.papertrans.cn/163/162296/162296.mp4
發(fā)行地址Includes supplementary material:
學(xué)科分類Lecture Notes in Computer Science
圖書封面Titlebook: Artificial Intelligence and Soft Computing; 15th International C Leszek Rutkowski,Marcin Korytkowski,Jacek M. Zurad Conference proceedings
影響因子The two-volume set LNAI 9692 and LNAI 9693 constitutes the refereed?proceedings of the 15th International Conference on Artificial?Intelligence and Soft Computing, ICAISC 2016, held in Zakopane, Poland?in June 2016..The 134 revised full papers presented were?carefully reviewed and selected from 343 submissions.?The papers included in the first volume are organized in the following topical sections: neural networks and their applications; fuzzy systems and their applications; evolutionary algorithms and their applications; agent systems, robotics and control; and pattern classification. The second volume is divided in the following parts: bioinformatics, biometrics and medical applications; data mining; artificial intelligence in modeling and simulation; visual information coding meets machine learning; and various problems of artificial intelligence.?
Pindex Conference proceedings 2016
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Visualizing and Understanding Nonnegativity Constrained Sparse Autoencoder in?Deep?Learningt use the architecture of Nonnegativity Constrained Autoencoder (NCAE). We show that by constraining most of the weights in the network to be nonnegative using both . and . nonnegativity penalization, a more understandable structure can result with minute deterioration in classification accuracy. Al
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Experimental Analysis of Forecasting Solar Irradiance with Echo State Networks and?Simulating Anneal High forecast accuracy can help in the management of industrial strategies. We present an approach that combines the potential of a Neural Network named . and a well-known optimisation technique named .. We use the SA technique for selecting the meteorological variables relevant in the forecasting
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Neural System for Power Load Prediction in a Week Time Horizoner neural networks that have common input. Each network is dedicated to predict the total load in one of the seven successive days. Various form of input vectors as well as various ways of encoding them were tested. Verification which type of input data are crucial as well as which periodic aspects
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Parallel Learning of Feedforward Neural Networks Without Error Backpropagationd on a new idea of learning neural networks without error backpropagation. The proposed solution is based on completely new parallel structures to effectively reduce high computational load of this algorithm. Detailed parallel 2D and 3D neural network learning structures are explicitely discussed.
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Ensemble ANN Classifier for Structural Health Monitoring often perform differently due to the random distribution of initial weights. These issues cause the practical use of ANNs a challenging task. Some of the mentioned drawbacks can be eliminated using ensembles of ANNs. However, relevance of a single ensemble member might be different in different cla
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