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Trigonometry Question: (2 Viewers)

Divinity_

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Solve:

3cos theta - 4sin theta = 5 for -pi <= theta <= pi
 

tommykins

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use the auxillary angle method, ie. change to Rcos(a+b)
 

gurmies

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Or t-method, where t = tan(x/2). If this means nothing to you, I can post solution.
 

Official

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Equating coefficients





Substituting values back in







Then you solve this simplified equation for answer.
 

Drongoski

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or you can do it this way:



Is this answer right ??

edit

2nd answer -126. ... deg should be excluded. Thks Timothy for alerting me.
 
Last edited:

Aquawhite

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Whatever you can do to make it simplier... by squaring it makes things so much more simple. I really like that squaring method (very simple and just obvious).
 
K

khorne

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x = 5
x^2 = 25
sqrt both sides
therefore
x = +/- 5

You get two solutions when you originally had one.
 

untouchablecuz

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consider

sin x + cos x = 1, 0<=x<=2pi

squaring both sides

sin^2x +2sinxcosx + cos^2x = 1

1 + sin2x = 1

sin2x = 0, 0<=2x<=2pi

solutions: x = 0, pi/2, pi, 3pi/2, 2pi

sub in x = 0, pi/2, 2pi into sin x + cos x = 1 and the equation is satisified

sub in x = pi, 3pi/2 into sin x + cos x and we get -1 =/= 1

hence pi and 3pi/2 are not solutions and were included when squaring
 

gurmies

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consider

sin x + cos x = 1, 0<=x<=2pi

squaring both sides

sin^2x +2sinxcosx + cos^2x = 1

1 + sin2x = 1

sin2x = 0, 0<=2x<=2pi

solutions: x = 0, pi/2, pi, 3pi/2, 2pi

sub in x = 0, pi/2, 2pi into sin x + cos x = 1 and the equation is satisified

sub in x = pi, 3pi/2 into sin x + cos x and we get -1 =/= 1

hence pi and 3pi/2 are not solutions and were included when squaring
Exactly. Test when squaring.
 

Drongoski

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Ah, noted ^^
Caution using the quadratic eqn method

I was going to post a cautionary note about the method I used:

1) don't use it if reqd to do using auxillary angle or t-formula method

2) when you square: LHS = RHS you get new eqn: LHS2 = RHS2
The solutions to this new eqn include those for LHS = -RHS.
So you have to test for and to exclude these.

I think it is still a lot shorter and easier in general.
 

Timothy.Siu

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Solve:

3cos theta - 4sin theta = 5 for -pi <= theta <= pi
5cos(@+tan-1(4/3))=5

cos(@+tan-1(4/3))=1
@+tan-1(4/3)=0
@=-tan-1(4/3)

drongonski, ur other solution is wrong (i think)
because 3cos -126 would be negative (not in the positive quadrants), and 4sin (anything) can't be greater than 4
 
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Dumbledore

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just wondering when using the acos(x)+bsin(x)=Rsin(x+@)
can u just say R=sqrt(a^2+b^2) and @=arctan(b/a)
or do u have to expand Rsin(x+@) and equate co efficients?
 

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