8.5.49-1T Question Help * Suppose a hospital would like to estimate the proporti

Question

8.5.49-1T Question Help * Suppose a hospital would like to estimate the proportion of patients who feel that physicians who care for them always communicated effectively when discussing their medical care A pilot sample of 50 patients found that 38 reported that their physician communicated effectively. Determine the additional number of patients that need to be sampled to construct a 95% confidence interval with a margin of error equal to 7% to estimate this proportion The additional number of patients that need to be sampled is (Round up to the nearest integer.)

Explanation / Answer

8.5.49-T.

TRADITIONAL METHOD

given that,

possibile chances (x)=38

sample size(n)=50

success rate ( p )= x/n = 0.76

I.

sample proportion = 0.76

standard error = Sqrt ( (0.76*0.24) /50) )

= 0.06

II.B9

margin of error = Z a/2 * (stanadard error)

where,

Za/2 = Z-table value

level of significance, = 0.05

from standard normal table, two tailed z /2 =1.96

margin of error = 1.96 * 0.06

= 0.118

III.

CI = [ p ± margin of error ]

confidence interval = [0.76 ± 0.118]

= [ 0.642 , 0.878]

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DIRECT METHOD

given that,

possibile chances (x)=38

sample size(n)=50

success rate ( p )= x/n = 0.76

CI = confidence interval

confidence interval = [ 0.76 ± 1.96 * Sqrt ( (0.76*0.24) /50) ) ]

= [0.76 - 1.96 * Sqrt ( (0.76*0.24) /50) , 0.76 + 1.96 * Sqrt ( (0.76*0.24) /50) ]

= [0.642 , 0.878]

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interpretations:

1. We are 95% sure that the interval [ 0.642 , 0.878] contains the true population proportion

2. If a large number of samples are collected, and a confidence interval is created

for each sample, 95% of these intervals will contains the true population proportion

Compute Sample Size ( n ) = n=(Z/E)^2*p*(1-p)

Z a/2 at 0.05 is = 1.96

Sample Proportion = 0.76

ME = 0.07

n = ( 1.96 / 0.07 )^2 * 0.76*0.24

= 143.002 ~ 144

additional no.of patients are needed its sample size is 144

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