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  • Search: subject:"neural computing"
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Year of publication
Subject
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Neural Computing 2 Corporate Governance 1 Corporate governance 1 Financial Services Industry 1 Financial services 1 Finanzdienstleistung 1 G400 Computer Science 1 G700 Artificial Intelligence 1 G730 Neural Computing 1 G750 Cognitive Modelling 1 Governance Logics 1 Model misspecification 1 Neural networks 1 Neuronale Netze 1 Self-Organizing Maps 1 Theorie 1 Theory 1 financial prediction 1 neural computing 1 nonlinear forecasting 1 nonlinear time series 1 smooth transition autoregression 1 sunspot series 1 threshold autoregression 1
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Online availability
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Free 2 Undetermined 1
Type of publication
All
Article 3 Book / Working Paper 1
Type of publication (narrower categories)
All
Article in journal 1 Aufsatz in Zeitschrift 1 Congress Report 1
Language
All
English 3 Undetermined 1
Author
All
Appiah, Kofi 1 Casal, Jose 1 Hobden, Mervyn 1 Hobden, Peter 1 Hunter, Andrew 1 Medeiros, Marcelo C. 1 Meng, Hongying 1 Nabney, Ian T. 1 Nguyen, Hang T. 1 Pettit, Cy 1 Priestley, Nigel 1 Rech, Gianluigi 1 Somers, Mark John 1 Teräsvirta, Timo 1 Yue, Shigang 1
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Institution
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Economics Institute for Research (SIR), Handelshögskolan i Stockholm 1
Published in...
All
Corporate governance : an international review 1 SSE/EFI Working Paper Series in Economics and Finance 1
Source
All
BASE 2 ECONIS (ZBW) 1 RePEc 1
Showing 1 - 4 of 4
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Introducing neural computing in governance research : applying self-organizing maps to configurational studies
Somers, Mark John; Casal, Jose - In: Corporate governance : an international review 25 (2017) 6, pp. 440-453
Persistent link: https://www.econbiz.de/10011848263
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Short-term electricity demand and gas price forecasts using wavelet transforms and adaptive models
Nguyen, Hang T.; Nabney, Ian T. - 2010
This paper presents some forecasting techniques for energy demand and price prediction, one day ahead. These techniques combine wavelet transform (WT) with fixed and adaptive machine learning/time series models (multi-layer perceptron (MLP), radial basis functions, linear regression, or GARCH)....
Persistent link: https://www.econbiz.de/10009485495
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Building neural network models for time series: A statistical approach
Medeiros, Marcelo C.; Teräsvirta, Timo; Rech, Gianluigi - Economics Institute for Research (SIR), … - 2002
This paper is concerned with modelling time series by single hidden-layer feedforward neural network models. A coherent modelling strategy based on statistical inference is presented. Variable selection is carried out using existing techniques. The problem of selecting the number of hidden units...
Persistent link: https://www.econbiz.de/10005649189
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A modified sparse distributed memory model for extracting clean patterns from noisy inputs
Meng, Hongying; Appiah, Kofi; Hunter, Andrew; Yue, Shigang - 2009
Abstract—The Sparse Distributed Memory (SDM) proposed by Kanerva provides a simple model for human long-term memory, with a strong underlying mathematical theory. However, there are problematic features in the original SDM model that affect its efficiency and performance in real world...
Persistent link: https://www.econbiz.de/10009429103
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