Please Solve this Tignometry Question.
Answers
Answer:
sin4(x) – cos4(x) = (sin2(x) + cos2(x))(sin2(x) – cos2(x))
The first factor, sin2(x) + cos2(x), is always equal to 1, so I can ignore it. This leaves me with:
sin2(x) – cos2(x)
Hmm... I'm not seeing much of anything here. But I do know, glancing back at the RHS of the identity, that I need more sines and fewer cosines. I think I'll try using the Pythagorean identity that simplified that first factor, but in a slightly different form. If sin2(x) + cos2(x) = 1, then cos2(x) = 1 – sin2(x), and:
sin2(x) – cos2(x) = sin2(x) – (1 – sin2(x)) = sin2(x) – 1 + sin2(x) = 2sin2(x) – 1
And that's what I needed. For my hand-in work, I'll put it all together:
sin4(x) – cos4(x) = (sin2(x) + cos2(x))(sin2(x) – cos2(x))
= 1(sin2(x) – cos2(x)) = sin2(x) – cos2(x) = sin2(x) – (1 – sin2(x))
= sin2(x) – 1 + sin2(x) = sin2(x) + sin2(x) – 1 = 2sin2(x) – 1
Prove the identity (1 – cos2(α))(1 + cos2(α)) = 2sin2(α) – sin4(α)
I think I'll start by multiplying out the LHS:
1 – cos2(α) + cos2(α) – cos4(α) = 1 – cos4(α)
That doesn't seem to have gotten me anywhere. What if I apply the Pythagorean identity to that first factor? Then I'll get:
(1 – cos2(α))(1 + cos2(α)) = sin2(α)[1 + cos2(α)]
Hmm... That doesn't seem to have helped, either. Okay, what happens if I work on the other side? I can factor a squared sine out of the two terms:
sin2(α)[2 – sin2(α)] Copyright © Elizabeth Stapel 2010-2011 All Rights Reserved
If I break off a 1 from the 2, I can use that same Pythagorean identity again. (I think I'm detecting a theme....)
sin2(α)[1 – sin2(α) + 1] = sin2(α)[1 – sin2(α) + sin2(α) + cos2(α)]
= sin2(α)[1 + cos2(α)]
Wait a minute! That's the same thing I ended up with on the LHS! Aha!
While what I've done so far is not a proof, I have managed to get the two sides to meet in the middle. And sometimes that seems to be the only way to do a proof: work on the two sides until they meet in the middle, and then write something that looks like magic. I'm going to start with the LHS, work down to where the two sides meet, and then work up the RHS until I get back to the original identity:
(1 – cos2(α))(1 + cos2(α)) = sin2(α)[1 + cos2(α)]
= sin2(α)[1 + cos2(α) – sin2(α) + sin2(α)]
= sin2(α)[1 – sin2(α) + sin2(α) + cos2(α)]
= sin2(α)[1 – sin2(α) + 1]
= sin2(α)[2 – sin2(α)]
= 2sin2(α) – sin4(α)
Answer:
⇒sin²∅ +sin²(90-∅)=cos²∅+cos²(90-∅)
⇒sin²∅ +cos²∅=cos²∅+sin²∅ ········complementary angles sin²(90-∅)=cos²∅
⇒1=1, hence proved