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$$ begin{array}{1} text { 1. You are the chief analyst to monitor an eastern city's government consumption expenditures. Using the city's } text { quarterly
$$ \begin{array}{1} \text { 1. You are the chief analyst to monitor an eastern city's government consumption expenditures. Using the city's } \text { quarterly government consumption data }\left\ {y_{t} ight\} \text { measured in billion dollars from } 2007-\mathrm{Q} 1 \text { to } 2014-\mathrm{Q} 3, \text { you are trying ? W \text { to estimate the linear trend model: } y_{t}=\beta_{0}+\cdot \beta_{1} t+u_{t}, \text { where } u_{t} \sim N\left(0, \sigma^{2} ight) \text {. 1 \text { (A) } \text { Supposing } t=1 \text { for the starting quarter (i.e., } 2007-\mathrm{Q} 1) \text {, then what is } t \text { for } 2014-\mathrm{Q} 3 ? ightarrow ightarrow ightarrow(1 \text { mark }) \text { (B) } \text { Suppose your OLS (ordinary least squares) estimates for the trend model are } What{\beta}_{0}=1.62 \text { and } \hat{\beta}_{1}=3.55, \text { and } \ \text { the sum of squared residuals }(SSR)=\sum \hat{u}_{t}^{2}=725 \text {. Based on your estimated trend model, construct a point } \ \text { forecast and an interval forecast for the city's government consumption expenditures in } 2014- \mathrm{Q} 4.(9 \text { marks) } W \text { (C) It is calculated that } \sum_{t=2}^{31}\left(\hat{u}_{t}-\hat{u}_{t- 1} ight)^{2}=928 . \text { Use the Durbin-Watson }(D W \text { test to determine if there is (first-order) } \text { serial-correlation in the population errors }\left\{u_{t} ight\} \text { at the } 5 % \text { significance level. (The corresponding lower and } \ \text { upper critical values of the } \left.D W \text {-test is } d_{L}=1.363 \text { and } d_{W}=1.496 \text { respectively. } ight) igh rrow ightarrow ightarrow \end{array} $$ SP.PC.058
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