نتایج جستجو برای: rough extreme learning machine

تعداد نتایج: 842991  

Journal: :Mathematical Problems in Engineering 2015

Journal: :ECTI Transactions on Computer and Information Technology (ECTI-CIT) 2017

Journal: :Neural Processing Letters 2021

Ensemble approaches introduced in the Extreme Learning Machine literature mainly come from methods that rely on data sampling procedures, under assumption training are heterogeneously enough to set up diverse base learners. To overcome this assumption, it was proposed an ELM ensemble method based Negative Correlation framework, called (NCELM). This model works two stages: (i) different ELMs gen...

Journal: :Nano Biomedicine and Engineering 2022

The detection of stress is important because it contributes to diverse pathophysiological changes including sudden death. Various techniques have been used evaluate in terms questionnaire or by quantifying the physiological signals. Electroencephalogram signals are highly useful measuring human stress. Therefore, solve and detect problem, this work had extracted electroencephalogram features th...

In this paper a new efficient method for detecting the impulse noise from the corrupted image using extreme learning machine (ELM) is proposed. An improved version of the standard median filter is suggested to remove the detected noisy pixel. The performance of proposed detector is evaluated using classification accuracy. The results show that our detector is robust even at higher noise density...

2015
A. S. Salama

Data granulation is considered a good tool of decision making in various types of real life applications. The basic ideas of data granulation have appeared in many fields, such as interval analysis, quantization, rough set theory, Dempster-Shafer theory of belief functions, divide and conquer, cluster analysis, machine learning, databases, information retrieval, and many others. Some new topolo...

2017
Weide Li Jinran Wu

Electric load forecasting plays an important role in electricity markets and power systems. Because electric load time series are complicated and nonlinear, it is very difficult to achieve a satisfactory forecasting accuracy. In this paper, a hybrid model, Wavelet Denoising-Extreme Learning Machine optimized by k-Nearest Neighbor Regression (EWKM), which combines k-Nearest Neighbor (KNN) and Ex...

2007
José R. Dorronsoro Alberto Suárez

A common feature in many hard pattern recognition problems is the fact that the object of interest is statistically overwhelmed by others. The overall aim of the “Learning, Evolution and Extreme Statistics” (AE3 being its Spanish acronym) project is to study those problems in the following concrete areas: 1. Natural image statistics and applications. 2. New classification techniques in extreme ...

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