“…To assess the performance of the overall three algorithms, several experiments have been conducted using real world financial time series. According to our comparative study we could clearly conclude that the support vector regression is the best prediction algorithm that can be execute to provide the financial time series forecasting [24,28]. The architecture of our proposed framework is shown in Fig.…”
Section: Methodsmentioning
confidence: 84%
“…There are different families of regression algorithms and different ways of measuring the error [23,24].…”
“…Constructing a decision tree is all about finding attribute that returns the highest standard deviation reduction (i.e., the most homogeneous branches) [24,25].…”
“…16 can be written as where β is the vector of regression coefficients and X is the model matrix. The model matrix has columns corresponding to the regressor variables x 1 , x 2 , …, x m , columns for interaction terms of any order, and a column of one's defining the intercept [24,26].…”
Section: Multiple Linear Regressionmentioning
confidence: 99%
“…The selection of kernel function is important to the effectiveness of Support Vector Regression. However, there is no mature theory in the selection of kernel function of SVR [24,27].…”
“…To assess the performance of the overall three algorithms, several experiments have been conducted using real world financial time series. According to our comparative study we could clearly conclude that the support vector regression is the best prediction algorithm that can be execute to provide the financial time series forecasting [24,28]. The architecture of our proposed framework is shown in Fig.…”
Section: Methodsmentioning
confidence: 84%
“…There are different families of regression algorithms and different ways of measuring the error [23,24].…”
“…Constructing a decision tree is all about finding attribute that returns the highest standard deviation reduction (i.e., the most homogeneous branches) [24,25].…”
“…16 can be written as where β is the vector of regression coefficients and X is the model matrix. The model matrix has columns corresponding to the regressor variables x 1 , x 2 , …, x m , columns for interaction terms of any order, and a column of one's defining the intercept [24,26].…”
Section: Multiple Linear Regressionmentioning
confidence: 99%
“…The selection of kernel function is important to the effectiveness of Support Vector Regression. However, there is no mature theory in the selection of kernel function of SVR [24,27].…”
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