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Title Equally - weighted compositions of gaussian - noised - data – trained two - layer perceptrons in boosting ensembles for high - accurate discontinuous tracking of wear states regarding statistical data inaccuracies and shifts
 
Names Romanuke, V.V.
Романюк, В.В.
Date Issued 2015 (iso8601)
Abstract Equally - weighted compositions of Gaussian - noised-data - trained two - layer perceptrons are studied in order to
track metal wear states more accurately at the highest level of statistical data inaccuracies and shifts (noise). The noise range
is modeled through four magnitudes characterizing ultimate jitters and shifts in wear influencing factors. Accuracy and variance
gains of equally - weighted compositions seem to be increasing when noise intensities become lower. When boosting
ensembles are composed from ordinary classifiers, high-accurate tracking fails. Only composing ensembles from a lot of the
best optimized perceptrons, the accuracy improves by 1,5 % for the averaged tracking error rate and by 7,7 % for the tracking
error rate at noise maximum. Here, the boosting appears to have its limit. But ensembles of equally-weighted compositions of
perceptrons perform even better than ensembles of perceptrons weighted after training. And for ensuring high-accurate discontinuous
tracking of wear states, we just need perceptrons trained by quite different backpropagation methods.
Genre Стаття
Topic wear state tracking
Identifier Romanuke V. V. Equally - weighted compositions of gaussian - noised - data – trained two - layer perceptrons in boosting ensembles for high - accurate discontinuous tracking of wear states regarding statistical data inaccuracies and shifts / V. V. Romanuke // Problems of Tribology. – 2015. – № 2. – P. 53-56.