Loose Leaf Version For Elementary Statistics
Loose Leaf Version For Elementary Statistics
3rd Edition
ISBN: 9781260373523
Author: William Navidi Prof., Barry Monk Professor
Publisher: McGraw-Hill Education
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Chapter 13, Problem 10CQ
To determine

To construct:a 95% prediction intervalfor anindividual response when x=20

Expert Solution & Answer
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Answer to Problem 10CQ

  34.199±tα/26.07823093467

Explanation of Solution

Given information: x=20 and 95% prediction interval

    x2513161929191630y4020333050373437

Formula Used:the formula to be usedwhen constructing a prediction interval for an individual response.

Let x* be a value of the explanatory variable x , let y=b0+b1x* be the predicted value corresponding to x* and let n be the sample size .A level 100(1α)% prediction interval for an individual response is

  y±tα/2.se1+1n+ ( x * x ¯ )2 (x x ¯ ) 2

Here, the critical value tα/2 is based on n2 degrees of freedom.

  se - Residual standard deviation = (y y ) 2 n2

Test statistic t=(x1¯x2¯)(μ1μ2) s 1 2 n 1 + s 2 2 n 2

Calculation:sample means and the sample variances can be calculated as shown.

  xyx¯y¯xx¯yy¯ ( x x ¯ )2 ( y y ¯ )2254020.87535.1254.1254.87517.01562523.76562513207.87515.12562.015625228.7656316334.8752.12523.7656254.51562519301.8755.1253.51562526.26562529508.12514.87566.015625221.2656319371.8751.8753.5156253.51562516344.8751.12523.7656251.26562530379.1251.87583.2656253.515625

Sample means;

  x¯=xnx¯=(35+13+16+19+29+19+16+30)8x¯=1678x¯=20.875

  y¯=yny¯=(40+20+33+30+50+37+34+37)8y¯=2818y¯=35.125

Sample variances;

  sx2= (x x ¯ ) 2 n1sx2= (2520.875)2+ (1320.875)2+...........+ (3020.875)281sx2=282.8757sx2=40.4107143sx=6.35694221

  sy2= (y y ¯ ) 2 n1sy2= (4035.125)2+ (2035.125)2+...........+ (3735.125)281sy2=512.8757sy2=73.267857sy=8.5596645

The correlation coefficient is calculated as shown.

  r=1(n1) (x x ¯ )(y y ¯ )sxsyr=1(81)(4.125)(4.875)+........+(9.125)(1.875)(6.35694221)(8.5596645)r=1(81)299.125(6.35694221)(8.5596645)r=0.785325

Also, the least square regression line can be calculated as shown.

  y=b0+b1x

Here;

  b1=rsysxb1=0.785325( 6.35694221 8.5596645)b1=1.0574

Here;

  b0=y¯b1x¯b0=35.125(1.0574)(20.875)b0=13.051

Therefore,

  y=b0+b1xy=13.051+1.0574x

Now we need to calculate the residuals to find the se - Residual standard deviation.

  xyy=13.051+1.0574xyy ( y y )2254039.4860.5140.264196132026.79726.797246.20193163329.96943.03069.184536193033.14163.14169.869651295043.71566.284439.49368193733.14163.858414.88725163429.96944.030616.24574303744.7737.77360.41953

  se= (y y ) 2 n2se= 0.264196+........+60.41953 82se= 196.56656se=32.76109se=5.72373

Finally we can now calculate the prediction interval for an individual response.

  y±tα/2.se1+1n+ ( x * x ¯ )2 (x x ¯ ) 2

Here; when x=20 ;

  y=13.051+1.057xy=13.051+1.057(20)y=34.199

And;

   ( x * x ¯ ) 2 = (2020.875) 2 =0.765625

And;

   (x x ¯ )2=282.875

Therefore;

  y±tα/2.se1+1n+ ( x * x ¯ ) 2 (x x ¯ ) 2 34.199±tα/2(5.72373)1+18+ 0.765625 282.87534.199±tα/2(5.72373)(1.0619353)34.199±tα/26.07823093467

Please note there wasn’t a table given in the book to find corresponding t-value for the given confidence interval 95% and degrees of freedom 6 as shown below.

  Loose Leaf Version For Elementary Statistics, Chapter 13, Problem 10CQ , additional homework tip  1

The t table below statescorresponding t-value for the given confidence interval 95% and degrees of freedom 6 can be read as 1.94 .

  Loose Leaf Version For Elementary Statistics, Chapter 13, Problem 10CQ , additional homework tip  2

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Chapter 13 Solutions

Loose Leaf Version For Elementary Statistics

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