chelser13 said:1. (cos x/1+sin x) + (1+sin x/ cos x) <<< I think you mean cos x/(1+sin x) + (1+sin x)/cos x. Do it the same way you would do a/b + b/a...\(\displaystyle \frac{a}{b}+\frac{b}{a}=\frac{a^2}{ab}+\frac{b^2}{ab}=\frac{a^2+b^2}{ab}\)
2. 6 sin^2 x - 7 six x + 2= 0 <<< I guess you are solving for x. If it read 6a^2 - 7a + 2 = 0, could you solve for a? If so, solve your original equation for "sin x". Just like solving for a, you will get two possibilities, i.e., sin x = something or sin x = something else. Then solve for x for each of those. Gotta go to supper.
\(\displaystyle 3)\;\;6\sin^2\!x \;=\; 7- 5\cos x\)
chelser13 said:I am a little confused on the complex trig problems and am at a dead end on some of them. Please explain the steps on how I get to the answer!
1. (cos x/1+sin x) + (1+sin x/ cos x)
as written - this means:
\(\displaystyle \frac{\cos(x)}{1} + \sin(x) +1 + \frac{\sin(x)}{\cos(x)}\)
I think you meant:
\(\displaystyle \frac{\cos(x)}{1+\sin(x)} = \frac{1+\sin(x)}{\cos(x)}\)
\(\displaystyle \cos^2(x) = [1+\sin(x)]^2\)
Now contonue.....
2. 6 sin^2 x - 7 six x + 2= 0
3. 6 sin ^2 x= 7- 5 cos x
Thank you!