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A Note on Enhancement-Synergism
Contributor(s): Kumar Bhadra, Kausik (Author)
ISBN: 3639281918     ISBN-13: 9783639281910
Publisher: VDM Verlag
OUR PRICE:   $50.27  
Product Type: Paperback
Published: July 2010
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BISAC Categories:
- Social Science | Research
Physical Information: 0.14" H x 6" W x 9" (0.22 lbs) 60 pages
 
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This paper focuses on the surprising reverse inequality (enhancement-synergism) between coefficient of determination and the sum of two squared simple correlation coefficients in a two variable regression model. This condition significantly reduces the model's effectiveness and can direct misleading results. It has been observed that enhancement-synergism is more likely than non enhancement-synergism which is presented by a unifying box (Box 3.A). If the joint contribution of two explanatory variables is incremental over simple correlation then we encounter the condition of enhancement-synergism and in normal case where coefficient of determination is less than the sum of squared correlation coefficients, then the joint correlation is incremental over incremental correlation, which is presented by two mathematical examples. When the partial r-square value is greater than its simple r-square value of a variable then the enhancement-synergism condition occurs. A concise and easily understandable graphical and mathematical example provided to show the direct dependency of enhancement-synergism on the extent of the problem of multicollinearity.