Math Is Fun Forum

affirmation

Guest

sin18

Hi Everyone. Can anyone here help me with the trigs. Here is what I have to prove:

sin18 = (√5 - 1)/4 .

Many Thanks

John E. Franklin

Member

Registered: 2005-08-29

Posts: 3,588

Re: sin18

half-way down this webpage is the answer, but I find it a bit hard in spots.

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igloo myrtilles fourmis

mikau

Member

Registered: 2005-08-22

Posts: 1,504

Re: sin18

That is confusing! Its hard to tell where some of the substitutions came from....

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A logarithm is just a misspelled algorithm.

RauLiTo

Member

From: Bahrain

Registered: 2006-01-11

Posts: 142

Re: sin18

thats understandable man ... what is the confusing in that ?

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ImPo$$!BLe = NoTH!nG
Go DowN DeeP iNTo aNyTHinG U WiLL FinD MaTHeMaTiCs ...

John E. Franklin

Member

Registered: 2005-08-29

Posts: 3,588

Re: sin18

The confusion is that the sin of 18 could also be a half, and then they say no its not,
and use the other factor and use -b +- sqrt(b^2 - 4ac)/2a.

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igloo myrtilles fourmis

serhat38

Member

Registered: 2007-03-30

Posts: 6

Re: sin18

dear affirmation;

if you look carefully you will see this

if x=18 so cos3x=sin2x

=cos2x.cosx-sin2x.sinx=2sinx.cosx

=cos2x.cosx-2sin^2.cosx=2sinx.cosx

=cos2x-2sin^2=2sinx
=1-2sin^2-2sin^2=2sinx

=4sin^2+2sinx-1=0
so Δ=2√5
then sinx=(√5-1)\4  sinx=(√5+1)\4   second value doesn't provide the equation

so true value is sin18=(√5-1)\4

prabhat

Guest

Re: sin18

The confusion is that the sin of 18 could also be a half, and then they say no its not,
and use the other factor and use -b +- sqrt(b^2 - 4ac)/2a.

yes because its trigonometric function which is being converted in algebraic form so it involves the mischievious root means exetra roots which must be varified with logical treatment so x=1/2 is neglected because its already known that sin30 is 1/2 so sin18 will have some other value which u get from the quadraitic expression.

msreddy

Guest

Re: sin18

Hi Everyone. Can anyone here help me with the trigs. Here is what I have to prove:

sin18 = (√5 - 1)/4 .

Many Thanks

trimm

Guest

Re: sin18

sin 72° = 2 sin 36° cos 36°                                 by the double angle relationship.
  sin 72° = 4 sin 18° cos 18° (1 - 2sin2 18°)         by the double angle relationship, again.
  cos 18° = 4 sin 18° cos 18° (1 - 2sin2 18°)         by the cofunction properties: sin 72° = cos 18°.
            1 = 4 sin 18° (1 - 2sin2 18°)                       Let x = sin 18°, this is known as
            1 = 4x(1-2x2)                                             substitution, a useful technique in calculus.
8x3-4x+1 = 0                                                         A product is zero only when one of its factors is zero.
8x3-4x+1 = (2x-1)(4x2+2x-1)=0                           (2x-1)=0 implies x= ½=sin 30° > sin 18° ;
                                                                              Since we know sin is increasing on [0°,90°].
            x = (-2 ±  (4 + 4•4•1))/8                       So we must solve the other factor,
                = (-2 ±  20)/8                                     using the quadratic formula.
                = (-2 ±  4 5)/8
                = (-1 ±  5)/4                                       But the sin 18° > 0, so it cannot be negative.
  sin 18°   = ( (5)-1)/4