Instruction 12-12
The manager of the purchasing department of a large savings and loan organization would like to develop a model to predict the amount of time (measured in hours)it takes to record a loan application.Data are collected from a sample of 30 days,and the number of applications recorded and completion time in hours is recorded.Below is the regression output:
\[\begin{array}{l}
\begin{array} { l r }
\hline { \text { Regression Statistics } } \
\hline \text { Multiple R } & 0.9447 \
\text { R Square } & 0.8924 \
\text { Adjusted R } & 0.8886 \
\text { Square } & \
\text { Standard } & 0.3342 \
\text { Error } & 30 \
\text { Observations } & \
\hline
\end{array}\
\text { ANOVA }\
\begin{array} { l r r r r r }
\hline & d f & { \text { SS } } & { \text { MS } } & F & { \begin{array} { c }
\text { Significance } \
F
\end{array} } \
\hline \text { Regression } & 1 & 25.9438 & 25.9438 & 232.2200 & 4.3946 \mathrm { E } - 15 \
\text { Residual } & 28 & 3.1282 & 0.1117 & & \
\text { Total } & 29 & 29.072 & & & \
\hline
\end{array}\
\begin{array} { l r r r r r r }
\hline & \text { Coefficients } & \begin{array} { c }
\text { Standard } \
\text { Error }
\end{array} & t \text { Stat } & P \text {-value } & \text { Lower 95\% } & \text { Upper 95\% } \
\text { Intercept } & 0.4024 & 0.1236 & 3.2559 & 0.0030 & 0.1492 & 0.6555 \
\text { Applications RECORD } & 0.0126 & 0.0008 & 15.2388 & 4.3946 \mathrm{E}-15 & 0.0109 & 0.0143\
\hline
\end{array}
\end{array}\] Note: 4.3946E-15 is 4.3946 x 10 -15 .

-Referring to Instruction 12-12,you can be 95% confident that the mean amount of time needed to record one additional loan application is somewhere between 0.0109 and 0.0143 hours.

Question

Instruction 12-12
The manager of the purchasing department of a large savings and loan organization would like to develop a model to predict the amount of time (measured in hours)it takes to record a loan application.Data are collected from a sample of 30 days,and the number of applications recorded and completion time in hours is recorded.Below is the regression output:
 \[\begin{array}{l}
\begin{array} { l r } 
\hline { \text { Regression Statistics } } \
\hline \text { Multiple R } & 0.9447 \
\text { R Square } & 0.8924 \
\text { Adjusted R } & 0.8886 \
\text { Square } & \
\text { Standard } & 0.3342 \
\text { Error } & 30 \
\text { Observations } & \
\hline
\end{array}\
\text { ANOVA }\
\begin{array} { l r r r r r } 
\hline & d f &  { \text { SS } } & { \text { MS } } & F &  { \begin{array} { c } 
\text { Significance } \
F
\end{array} } \
\hline \text { Regression } & 1 & 25.9438 & 25.9438 & 232.2200 & 4.3946 \mathrm { E } - 15 \
\text { Residual } & 28 & 3.1282 & 0.1117 & & \
\text { Total } & 29 & 29.072 & & & \
\hline
\end{array}\
\begin{array} { l r r r r r r } 
\hline & \text { Coefficients } & \begin{array} { c } 
\text { Standard } \
\text { Error }
\end{array} & t \text { Stat } & P \text {-value } & \text { Lower 95\% } & \text { Upper 95\% } \
\text { Intercept } & 0.4024 & 0.1236 & 3.2559 & 0.0030 & 0.1492 & 0.6555 \
\text { Applications RECORD } & 0.0126 & 0.0008 & 15.2388 & 4.3946 \mathrm{E}-15 & 0.0109 & 0.0143\
\hline
\end{array}
\end{array}\] Note: 4.3946E-15 is 4.3946 x 10 -15 .
  
-Referring to Instruction 12-12,you can be 95% confident that the mean amount of time needed to record one additional loan application is somewhere between 0.0109 and 0.0143 hours.

Quizplus · Accepted Answer

The statement describes a confidence interval, which is a range of values that is likely to contain the population mean with a specified level of confidence, in this case, 95%.

Instruction 12-12 the Manager of the Purchasing Department of a Large

Instruction 12-12
the Manager of the Purchasing Department of a Large