Literature DB >> 20083455

A very fast neural learning for classification using only new incoming datum.

Saichon Jaiyen1, Chidchanok Lursinsap, Suphakant Phimoltares.   

Abstract

This paper proposes a very fast 1-pass-throw-away learning algorithm based on a hyperellipsoidal function that can be translated and rotated to cover the data set during learning process. The translation and rotation of hyperellipsoidal function depends upon the distribution of the data set. In addition, we present versatile elliptic basis function (VEBF) neural network with one hidden layer. The hidden layer is adaptively divided into subhidden layers according to the number of classes of the training data set. Each subhidden layer can be scaled by incrementing a new node to learn new samples during training process. The learning time is O(n), where n is the number of data. The network can independently learn any new incoming datum without involving the previously learned data. There is no need to store all the data in order to mix with the new incoming data during the learning process.

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Year:  2010        PMID: 20083455     DOI: 10.1109/TNN.2009.2037148

Source DB:  PubMed          Journal:  IEEE Trans Neural Netw        ISSN: 1045-9227


  3 in total

1.  One-pass-throw-away learning for cybersecurity in streaming non-stationary environments by dynamic stratum network.

Authors:  Mongkhon Thakong; Suphakant Phimoltares; Saichon Jaiyen; Chidchanok Lursinsap
Journal:  PLoS One       Date:  2018-09-06       Impact factor: 3.240

2.  EMG-based facial gesture recognition through versatile elliptic basis function neural network.

Authors:  Mahyar Hamedi; Sh-Hussain Salleh; Mehdi Astaraki; Alias Mohd Noor
Journal:  Biomed Eng Online       Date:  2013-07-17       Impact factor: 2.819

3.  Streaming chunk incremental learning for class-wise data stream classification with fast learning speed and low structural complexity.

Authors:  Prem Junsawang; Suphakant Phimoltares; Chidchanok Lursinsap
Journal:  PLoS One       Date:  2019-09-09       Impact factor: 3.240

  3 in total

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