Okay guys. Go learn your unit circles, it'll make trig much much easier.
The answer for this question is wrong though.
What qnz is saying is...these types of problems are more or less a "guess and check" kind of thing.
First you need to simplify everything, to make guess and check easier.
So what he did was....
sin(2x)cosx = (2sinxcosx)*cosx = 2sin(x)*cos^2(x)
He also knew that sin(pi) = 0 and cos(3pi/2) = 0, (this is where you need to memorize your unit circles), which makes choice A and choice E both 0.
So you have choice d and choice b. Let's look at the simplified equation again:
2*sin(x)*cos^2(x)
So as long as sin(x) isn't negative, the whole expression will be positive because cos^2 will always be positive.
But choice b is in the 4th quadrant where sin(x) is negative, and choice d is in the 3rd quadrant where sin(x) is still negative.
So unless it's a tie between choice A and choice E where the answer is 0, the answer has to be choice C .... but:
3pi/4 (choice c) lies in the 2nd quadrant...it can't even be right because it's not between pi and 2pi as the given condition in the problem. If the condition is changed to between 0 and 2pi or something, then 3pi/4 would be the right answer where sin(x) would be positive.
Where the hell did you get this problem from? -_-
