The following sample of lengths was taken from 9 rods off the assembly line. Construct the 99% confidence interval for the population standard deviation for all rods that come o…

Question

asked Sep 11, 2021 120k views

1 Answer

Suttie · Answer 1 · 2021-09-15T23:38:17+0000

Answer:

99% confidence interval for the population standard deviation = (0.17 , 0.75).

Explanation:

We are given that the following sample of lengths was taken from 9 rods off the assembly line;

13.6, 13.8, 14.1, 13.6, 13.3, 13.5, 13.9, 13.3, 14.1

So, firstly the pivotal quantity for 99% confidence interval for the population standard deviation is given by;

P.Q. =
$((n-1)s^(2) )/(\sigma^(2) )$ ~
$\chi^(2) __n_-_1$

where, s = sample standard deviation

$\sigma$ = population standard deviation

n = sample of rods = 9

Also,
$s^(2) = (\sum (X-\bar X)^(2) )/(n-1)$ , where X = individual data value

$\bar X$ = mean of data values = 13.7

s^(2) = 0.094

So, 99% confidence interval for population standard deviation, is;

P(1.344 <
$\chi^(2) __8$ < 21.95) = 0.99 {As the table of
$\chi^(2)$ at 8 degree of freedom

gives critical values of 1.344 & 21.95}

P(1.344 <
$((n-1)s^(2) )/(\sigma^(2) )$ < 21.95) = 0.99

P(
( 1.344)/((n-1)s^(2) ) <
$(1 )/(\sigma^(2) )$ <
( 21.95)/((n-1)s^(2) ) ) = 0.99

P(
( (n-1)s^(2))/(21.95 ) <
$\sigma^(2)$ <
( (n-1)s^(2))/(1.344 ) ) = 0.99

99% confidence interval for
$\sigma^(2)$ = (
( (n-1)s^(2))/(21.95 ) ,
( (n-1)s^(2))/(1.344 ) )

= (
( (9-1)* 0.094)/(21.95 ) ,
( (9-1)* 0.094)/(1.344 ) )

= (0.03 , 0.56)

99% confidence interval for
$\sigma$ = (
√(0.03) ,
√(0.56) )

= (0.17 , 0.75)

Therefore, 99% confidence interval for the population standard deviation for all rods that come off the assembly line is (0.17 , 0.75).