2022
DOI: 10.30693/smj.2022.11.5.38
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A Comparative Study Between Linear Regression and Support Vector Regression Model Based on Environmental Factors of a Smart Bee Farm

Abstract: Honey is one of the most significant ingredients in conventional food production in different regions of the world. Honey is commonly used as an ingredient in ethnic food. Beekeeping is performed in various locations as part of the local food culture and an occupation related to pollinator production. It is important to conduct beekeeping so that it generates food culture and helps regulate the regional environment in an integrated manner in preserving and improving local food culture. This study analyzes diff… Show more

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Cited by 5 publications
(2 citation statements)
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“…e equation defines an LC line: Y � a + b X, the independent variable is X, while the dependent variable is Y. e "b" is the slope of the line and the "a" is the intercept (the value of y when x � 0). Its least square errors are widely used to determine the closest suited line, which is achieved by deducing the addition of squares of each point's vertical deviation from the line or the addition of squares of the residuals [30].…”
Section: Linear Classificationmentioning
confidence: 99%
“…e equation defines an LC line: Y � a + b X, the independent variable is X, while the dependent variable is Y. e "b" is the slope of the line and the "a" is the intercept (the value of y when x � 0). Its least square errors are widely used to determine the closest suited line, which is achieved by deducing the addition of squares of each point's vertical deviation from the line or the addition of squares of the residuals [30].…”
Section: Linear Classificationmentioning
confidence: 99%
“…Similarly, some researchers (Rahman et al, 2022) employed statistical models to forecast the production of winter wheat depending on environmental conditions. They compared the performance of three statistical models, including multiple linear regression, support vector regression, and random forest models, in predicting crop yield.…”
Section: Introductionmentioning
confidence: 99%