Harry_the_cat
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Continued from Post#20
Simplifying the LHS gives:
\(\displaystyle w = 2z\sqrt{\frac{p(1-p)}{n}}\)
\(\displaystyle w = 2z*\frac{\sqrt{p(1-p)}}{\sqrt{n}}\)
When n=100:
\(\displaystyle w = 2z*\frac{\sqrt{p(1-p)}}{\sqrt{100}}\)
\(\displaystyle w = 2z*\frac{\sqrt{p(1-p)}}{10}\)
Now, if the new \(\displaystyle w\) is to be double this, we need the denominator to be 5 not 10, ie the new \(\displaystyle n\) must be 25.
Simplifying the LHS gives:
\(\displaystyle w = 2z\sqrt{\frac{p(1-p)}{n}}\)
\(\displaystyle w = 2z*\frac{\sqrt{p(1-p)}}{\sqrt{n}}\)
When n=100:
\(\displaystyle w = 2z*\frac{\sqrt{p(1-p)}}{\sqrt{100}}\)
\(\displaystyle w = 2z*\frac{\sqrt{p(1-p)}}{10}\)
Now, if the new \(\displaystyle w\) is to be double this, we need the denominator to be 5 not 10, ie the new \(\displaystyle n\) must be 25.
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