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                                       Details van artikel 10 van 87 gevonden artikelen
 
 
  A Survey on Potential of the Support Vector Machines in Solving Classification and Regression Problems
 
 
Titel: A Survey on Potential of the Support Vector Machines in Solving Classification and Regression Problems
Auteur: Luminita STATE
Catalina COCIANU
Doina FUSARU
Verschenen in: Informatica economica
Paginering: Jaargang 14 (2010) nr. 3 pagina's 128-139
Jaar: 2010
Inhoud: Kernel methods and support vector machines have become the most popular learning from examples paradigms. Several areas of application research make use of SVM approaches as for instance hand written character recognition, text categorization, face detection, pharmaceutical data analysis and drug design. Also, adapted SVM’s have been proposed for time series forecasting and in computational neuroscience as a tool for detection of symmetry when eye movement is connected with attention and visual perception. The aim of the paper is to investigate the potential of SVM’s in solving classification and regression tasks as well as to analyze the computational complexity corresponding to different methodologies aiming to solve a series of afferent arising sub-problems.
Uitgever: Inforec Association (provided by DOAJ)
Bronbestand: Elektronische Wetenschappelijke Tijdschriften
 
 

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