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A County Real Estate Appraiser Wants to Develop a Statistical E(y)=β0+β1xE ( y ) = \beta _ { 0 } + \beta 1 ^ { x }

Question 26

Multiple Choice

A county real estate appraiser wants to develop a statistical model to predict the appraised value of houses in a section of the county called East Meadow. One of the many variables thought to be
An important predictor of appraised value is the number of rooms in the house. Consequently, the
Appraiser decided to fit the simple linear regression model: E(y) =β0+β1xE ( y ) = \beta _ { 0 } + \beta 1 ^ { x }
where y=y = appraised value of the house (in thousands of dollars) and x=x = number of rooms. Using data collected for a sample of n=74n = 74 houses in East Meadow, the following results were obtained:
y^=74.80+19.72x\hat { y } = 74.80 + 19.72 x
Give a practical interpretation of the estimate of the yy -intercept of the least squares line.


A) For each additional room in the house, we estimate the appraised value to increase $19,720\$ 19,720 .
B) There is no practical interpretation, since a house with 0 rooms is nonsensical.
C) We estimate the base appraised value for any house to be $74,800\$ 74,800 .
D) For each additional room in the house, we estimate the appraised value to increase $74,800\$ 74,800 .

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