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kayladawn · Apr 28, 2009, 12:51 PM

I am having trouble with the following trigonometry problem:

cos2x= -1/2

I tried to turn cos2x into 2cos^2x-1 according to the double angle identity, but then I was unable to factor the problem. Where have I gone wrong, or where do I go from here?

Perito · Apr 28, 2009, 02:13 PM

I'm not sure why you need the identity. Can't you solve it like this or isn't it allowed?

$cos(2x) = -\frac 12$

$2x = cos^{-1}(-\frac 12) = \pm\,120 \, degrees$

$x = \pm\, 60 \, degrees$

I guess you could do it this way:

$cos(2x) = 2cos^2(x) - 1 = -\frac 12$

$cos^2(x) = 0.25$

$cos(x) = \sqrt{0.25} = \pm \frac 12$

And now you have two roots and you still have to take the ArcCos, so you haven't gained much.

Unknown008 · Apr 29, 2009, 08:16 AM

My math tell me that

$cos(2x) = -\frac{1}{2}$

x= 60 and 120 degrees... for 0 < x < 360

BUT if you do through identity, x = 30, 60, 120 and 150 for 0 < x < 360

Perito · Apr 29, 2009, 08:24 AM

Originally Posted by Unknown008

My math tell me that

$cos(2x) = -\frac{1}{2}$

x= 60 and 120 degrees... for 0 < x < 360

and if you do through identity, x = 30, 60, 120 and 150 for 0 < x < 360

I'm confused. Cos(60) = 0.5, not -0.5. You need to be in the 2nd or 3rd quadrant for it to be -0.5. So 2x = ±120 (or 240), x=±60 on 0 < x < 360. Oh. I guess that does give x=120 also. My bad. 30 degrees and 150 degrees certainly don't fit the original problem, however.

kayladawn · Apr 29, 2009, 09:31 AM

Perito, when I turned in my homework, I found cos x= 1/2 without the identity as you worked it and then I found my solution set, but I got it wrong.

Perito · Apr 29, 2009, 10:05 AM

Hmmm. :mad: What answer was said to be the correct one?

Unknown008 · Apr 29, 2009, 10:13 AM

Originally Posted by Perito

I'm confused. cos(60) = 0.5, not -0.5. You need to be in the 2nd or 3rd quadrant for it to be -0.5. So 2x = ±120 (or 240), x=±60 on 0 < x < 360. Oh. I guess that does give x=120 also. My bad. 30 degrees and 150 degrees certainly don't fit the original problem, however.

Yes,

cos(60)=0.5

but

cos(2x60)=-0.5

From cos(2x)=-0.5

And the plus/minus sign for cos(2x)=±0.5 (for the cos^2(x) = 0.25)

will give the roots in all four quadrants, so

2x = 60, 120, 240, 300
x = 30, 60, 120, 150

:confused:

Perito · Apr 29, 2009, 10:17 AM

Originally Posted by Unknown008

And the plus/minus sign for cos(2x)=±0.5 (for the cos^2(x) = 0.25)

will give the roots in all four quadrants, so

2x = 60, 120, 240, 300
x = 30, 60, 120, 150

I'm having a tough time with the ±0.5. The original problem only said -0.5. If you go through the trig identity, you get ±0.5, but +5 doesn't fit the original problem so you have to discard it. Let me know where I'm going wrong. :(

Unknown008 · Apr 29, 2009, 10:40 AM

Yeah, I know that those do not fit in the original question... :o was just posting just in case there was a need for passing through trig identity.

Ok, edited my first post in the thread...

Unknown008 · Apr 29, 2009, 11:28 AM

Perito agrees: Good. I wonder why they marked her wrong.

Or was it in rads? Then the answers would be

$\frac{\pi}{3}, \frac{2\pi}{3}$

or

1.05 , 2.09