Difference between revisions of "005 Sample Final A, Question 14"

Revision as of 13:14, 20 May 2015

Question Prove the following identity,

{\frac {1-\sin(\theta )}{\cos(\theta )}}={\frac {\cos(\theta )}{1+\sin(\theta )}}

Step 1:
We start with the left hand side. We have ${\frac {1-\sin(\theta )}{\cos(\theta )}}={\frac {1-\sin(\theta )}{\cos(\theta )}}{\Bigg (}{\frac {1+\sin(\theta )}{1+\sin(\theta )}}{\Bigg )}$ .

Step 2:
Simplifying, we get ${\frac {1-\sin(\theta )}{\cos(\theta )}}={\frac {1-\sin ^{2}(\theta )}{\cos(\theta )(1+\sin(\theta ))}}$ .

Step 3:
Since $1-\sin ^{2}(\theta )=\cos ^{2}(\theta )$ , we have
${\frac {1-\sin(\theta )}{\cos(\theta )}}={\frac {\cos ^{2}(\theta )}{\cos(\theta )(1+\sin(\theta ))}}={\frac {\cos(\theta )}{1+\sin(\theta )}}$

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 ! Step 1:
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+|We start with the left hand side. We have <math>\frac{1-\sin(\theta)}{\cos(\theta)}=\frac{1-\sin(\theta)}{\cos(\theta)}\Bigg(\frac{1+\sin(\theta)}{1+\sin(\theta)}\Bigg)</math>.
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 ! Step 2:
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+| Simplifying, we get <math>\frac{1-\sin(\theta)}{\cos(\theta)}=\frac{1-\sin^2(\theta)}{\cos(\theta)(1+\sin(\theta))}</math>.
 |}
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 ! Step 3:
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+| Since <math>1-\sin^2(\theta)=\cos^2(\theta)</math>, we have
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+|<math>\frac{1-\sin(\theta)}{\cos(\theta)}=\frac{\cos^2(\theta)}{\cos(\theta)(1+\sin(\theta))}=\frac{\cos(\theta)}{1+\sin(\theta)}</math>
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-{| class="mw-collapsible mw-collapsed" style = "text-align:left;"
-! Final Answer:
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