Difference between revisions of "Proofs of trig identities"

(Triple angles and more)
(Sum to Product to Sum)
 
(21 intermediate revisions by the same user not shown)
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{{shortcut|[[Trig identity proof]]}}
 
=Introduction=
 
=Introduction=
 
<math>\sin</math> and <math>\cos</math> are easy to define. I prefer the unit circle definition as it makes these proofs easier to understand.
 
<math>\sin</math> and <math>\cos</math> are easy to define. I prefer the unit circle definition as it makes these proofs easier to understand.
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draw(shift(dir(degrees(d)+90)/4)*F--shift(dir(degrees(d)+90)/24)*F);
 
draw(shift(dir(degrees(d)+90)/4)*F--shift(dir(degrees(d)+90)/24)*F);
 
</asy>
 
</asy>
 +
 +
It has three main triangles: cos-sin-1, 1-tan-sec, and cot-1-csc.
  
 
We can note that the functions are correct by similar triangles.
 
We can note that the functions are correct by similar triangles.
 +
<center>[[#toc|Back to Top]]</center>
  
 
=Symmetric identities=
 
=Symmetric identities=
Line 68: Line 72:
 
If we draw a few copies of the triangle, we get:
 
If we draw a few copies of the triangle, we get:
  
<math>\sin()=\cos(90-)=-\cos(90+)=\sin(180-)=-\sin(180+)=\cos(270-)=-\cos(270+)=-\sin(-)</math>
+
<math>\sin(x)=\cos(90-x)=-\cos(90+x)=\sin(180-x)=-\sin(180+x)=\cos(270-x)=-\cos(270+x)=-\sin(-x)</math>
  
<math>\cos()=\sin(90-)=\sin(90+)=-\cos(180-)=-\cos(180+)=\sin(270-)=-\sin(270+)=\cos(-)</math>
+
<math>\cos(x)=\sin(90-x)=\sin(90+x)=-\cos(180-x)=-\cos(180+x)=\sin(270-x)=-\sin(270+x)=\cos(-x)</math>
  
<math>\tan()=\cot(90-)=-\cot(90+)=-\tan(180-)=\tan(180+)=\cot(270-)=-\cot(270+)=-\tan(-)</math>
+
<math>\tan(x)=\cot(90-x)=-\cot(90+x)=-\tan(180-x)=\tan(180+x)=\cot(270-x)=-\cot(270+x)=-\tan(-x)</math>
  
 
The other three can be derived by taking the reciprocals of these three.
 
The other three can be derived by taking the reciprocals of these three.
 +
 +
x is easier to type than theta
 +
<center>[[#toc|Back to Top]]</center>
  
 
=Pythagorean identities=
 
=Pythagorean identities=
Line 95: Line 102:
  
 
Even though with the first one and the definitions, we can make the rest from algebra, having a geometric meaning is nice when we want to know what it actually means.
 
Even though with the first one and the definitions, we can make the rest from algebra, having a geometric meaning is nice when we want to know what it actually means.
 +
<center>[[#toc|Back to Top]]</center>
  
 
=Angle addition and subtraction=
 
=Angle addition and subtraction=
 +
 +
==<math>\sin(\alpha + \beta)</math>==
 +
 +
When does sin appear? When does sin appear? In the first triangle, of course. Let's make a diagram!
 +
 
<asy>
 
<asy>
 
unitsize(216);
 
unitsize(216);
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label("C",C,NE,green);
 
label("C",C,NE,green);
 
label("D",D,dir(122.5),blue);
 
label("D",D,dir(122.5),blue);
label("$\cos \alpha$",O--A,S);
+
label("$\cos \alpha \cos \beta$",O--A,S);
label("$\sin \alpha$",A--B,E);
+
label("$\sin \alpha \cos \beta$",A--B,E);
label("1",O--B,dir(302.5));
+
label("$\cos \beta$",O--B,dir(302.5));
label("$\frac{\cos \alpha \sin \beta}{\cos \beta}$",B--C,E);
+
label("$\cos \alpha \sin \beta$",B--C,E);
label("$\frac{\sin \alpha \sin \beta}{\cos \beta}$",C--D,N);
+
label("$\sin \alpha \sin \beta$",C--D,N);
label("$\frac{\sin \beta}{\cos \beta}$",B--D,dir(200));
+
label("$\sin \beta$",B--D,dir(200));
label("$\frac{1}{\cos \beta}$",D--O,dir(325));
+
label("1",D--O,dir(325));
 
</asy>
 
</asy>
  
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The diagram illustrates the identities nicely.
 
The diagram illustrates the identities nicely.
 
==<math>\sin(\alpha + \beta)</math>==
 
  
 
The diagram shows the height of point <math>D</math> is <math>\sin(\alpha)+\frac{\cos \alpha \sin \beta}{\cos \beta}</math>.
 
The diagram shows the height of point <math>D</math> is <math>\sin(\alpha)+\frac{\cos \alpha \sin \beta}{\cos \beta}</math>.
Line 144: Line 155:
 
==<math>\tan(\alpha + \beta)</math>==
 
==<math>\tan(\alpha + \beta)</math>==
  
This time we can't get it from our diagram. We need to go back to the original definition of tangent. This is the summary of my algebra: <math>\tan (\alpha + \beta ) = \frac{\sin (\alpha + \beta )}{\cos (\alpha + \beta )} = \frac{\sin \alpha \cos \beta + \cos \alpha \sin \beta}{\cos \alpha \cos \beta - \sin \alpha \sin \beta} = \frac{\frac{\sin \alpha \cos \beta + \cos \alpha \sin \beta}{\cos \alpha \cos \beta}}{\frac{\cos \alpha \cos \beta - \sin \alpha \sin \beta}{\cos \alpha \cos \beta}} = \frac{\frac{\sin \alpha}{\cos \alpha} + \frac{\sin \beta}{\cos \beta}}{1 - \frac{\sin \alpha \sin \beta}{\cos \alpha \cos \beta}} = \frac{\tan \alpha + \tan \beta}{1 - \tan \alpha \tan \beta}</math>
+
This time, let's use the tan-1-sec triangle.
=Double angle formulas=
 
This is a breeze. Just sub in for sum:
 
  
<math>\sin(2)=2\sin\cos</math>
+
<asy>
 +
unitsize(216);
 +
real d = 1/cos(radians(35));
 +
real d1 = d * cos(radians(55));
 +
real d2 = d * sin(radians(55));
 +
pair O = (0,0);
 +
pair A = (cos(radians(20)),0);
 +
pair B = (cos(radians(20)),sin(radians(20)));
 +
pair C = (cos(radians(20)),d2);
 +
pair D = (d1,d2);
 +
draw(O--A--B--O--D--B--O--D--C--B);
 +
dot(O);
 +
dot(B);
 +
dot(A,red);
 +
dot(C,green);
 +
dot(D,blue);
 +
label("O",O,SW);
 +
label("$\alpha$",shift(dir(10)/5)*O);
 +
label("$\beta$",shift(dir(37.5)/5)*O);
 +
label("A",A,SE,red);
 +
label("B",B,E);
 +
label("C",C,NE,green);
 +
label("D",D,dir(122.5),blue);
 +
label("1",O--A,S);
 +
label("$\tan \alpha$",A--B,E);
 +
label("$\sec \alpha$",O--B,dir(302.5));
 +
label("$\tan \beta$",B--C,E);
 +
label(scale(0.75)*"$\tan \alpha \tan \beta$",C--D,N);
 +
label(scale(0.75)*"$\sec \alpha \tan \beta$",B--D,dir(200));
 +
label(scale(0.75)*"$\sec \alpha \sec \beta$",D--O,dir(325));
 +
</asy>
  
<math>\cos(2)=\cos^2-\sin^2</math>
+
Wait, is that just the same diagram? No! the labels have changed!
  
<math>\tan(2)=\frac{2\tan}{1-\tan^2}</math>
+
Note: I did some algebra when noting that sin * sec = tan and cos * sec = 1
  
==Variations==
+
Looking at the diagram, the height of the new triangle is <math>\tan \alpha + \tan \beta</math>, but the width is only <math>1-\tan\alpha\tan\beta</math>, so we arrive at <math>\frac{\tan\alpha+\tan\beta}{1-\tan\alpha\tan\beta}</math>
Since <math>\sin^2+\cos^2=1</math>, we can edit the double angle cosine formula a bit. Here are the three most helpful variants:
 
  
<math>\cos(2)=2\cos^2-1</math>
+
==<math>\sec(\alpha + \beta)</math>==
  
<math>\cos(2)=\cos^2-\sin^2</math>
+
I dunno why most people never use this, but it's right up there in the diagram. <math>\frac{\sec\alpha\sec\beta}{1-\tan\alpha\tan\beta}</math>
  
<math>\cos(2)=1-2\sin^2</math>
+
==<math>\csc(\alpha + \beta)</math>==
  
We can also solve for other expressions:
+
Hey, if you don't need this, stop reading.
  
<math>\sin^2=\frac{1-\cos(2)}{2}</math>
+
We need the third triangle here. I'm going to do something weird, you'll see why when I complete the diagram (I=[[User:Afly | afly]]. This page was all made by afly)
 +
<asy>
 +
unitsize(216);
 +
real d = 1/cos(radians(35));
 +
real d1 = d * cos(radians(55));
 +
real d2 = d * sin(radians(55));
 +
pair O = (0,0);
 +
pair A = (cos(radians(20)),0);
 +
pair B = (cos(radians(20)),sin(radians(20)));
 +
pair C = (cos(radians(20)),d2);
 +
pair D = (d1,d2);
 +
draw(O--A--B--O--D--B--O--D--C--B);
 +
dot(O);
 +
dot(B);
 +
dot(A,red);
 +
dot(C,green);
 +
dot(D,blue);
 +
label("O",O,SW);
 +
label("$\alpha$",shift(dir(10)/5)*O);
 +
label("$\beta$",shift(dir(37.5)/5)*O);
 +
label("A",A,SE,red);
 +
label("B",B,E);
 +
label("C",C,NE,green);
 +
label("D",D,dir(122.5),blue);
 +
label(scale(0.75)*"$\cot \alpha \cot \beta$",O--A,S);
 +
label("$\cot \beta$",A--B,E);
 +
label(scale(0.75)*"$\csc \alpha \cot \beta$",O--B,dir(302.5));
 +
label("$\cot \alpha$",B--C,E);
 +
label("1",C--D,N);
 +
label(scale(0.75)*"$\csc \alpha$",B--D,dir(200));
 +
label(scale(0.75)*"$\csc \alpha \csc \beta$",D--O,dir(325));
 +
</asy>
  
<math>\cos^2=\frac{\cos(2)+1}{2}</math>
+
Can you look at the diagram? what do you have? <math>\csc(\alpha+\beta)=\frac{\csc\alpha\csc\beta}{\cot\alpha\cot\beta-1}</math>
  
=Sum to Product to Sum=
+
==<math>\cot(\alpha + \beta)</math>==
Our angle addition formulas look nasty. Let's try to cancel something.
 
==Chapter 1==
 
Let's start with the formula <math>\sin(\alpha + \beta)=\sin\alpha\cos\beta+\sin\beta\cos\alpha</math>.
 
Both terms are symmetrical, let's try to cancel out the first one.
 
  
<math>\sin()=-\sin(-)</math> and <math>\cos() = \cos(-)</math> might give us an idea. <math>\sin(\beta -\alpha)=-\sin\alpha\cos\beta+\sin\beta\cos\alpha</math>
+
Easy Peasy Lemon Squeezy. <math>\frac{\cot\alpha+\cot\beta}{\cot\alpha\cot\beta-1}</math>
  
Therefore, <math>\sin(\beta +\alpha)+\sin(\beta -\alpha)=\sin\alpha\cos\beta+\sin\beta\cos\alpha-\sin\alpha\cos\beta+\sin\beta\cos\alpha=2\sin\beta\cos\alpha</math>.
+
=Double angle formulas=
 +
This is a breeze. Just sub in for sum:
  
To put this in a nicer form, <math>2\sin\alpha\cos\beta\iff\sin\theta+\sin\phi</math> where:
+
<math>\sin(2\theta)=2\sin\cos</math>
  
<math>\theta =\alpha +\beta</math>
+
<math>\cos(2\theta)=\cos^2-\sin^2</math>
  
<math>\phi =\alpha -\beta</math>
+
<math>\tan(2\theta)=\frac{2\tan}{1-\tan^2}</math>
  
<math>\alpha =\frac{\theta +\phi}{2}</math>
+
==Variations==
 +
Since <math>\sin^2+\cos^2=1</math>, we can edit the double angle cosine formula a bit. Here are the three most helpful variants:
  
<math>\beta =\frac{\theta -\phi}{2}</math>
+
<math>\cos(2\theta)=2\cos^2-1</math>
  
==Chapter 2==
+
<math>\cos(2\theta)=\cos^2-\sin^2</math>
We did all we could. Now let's try doing something to the other formula: <math>\cos(\alpha + \beta)=\cos\alpha\cos\beta-\sin\alpha\sin\beta</math>. Let's try to cancel the first one first.
 
<math>\sin</math> is a lot easier to cancel than <math>\cos</math> so we have to subtract.
 
  
<math>-\cos(\alpha -\beta)=-\cos\alpha\cos\beta-\sin\alpha\sin\beta</math>
+
<math>\cos(2\theta)=1-2\sin^2</math>
  
So <math>\cos(\alpha+\beta)-\cos(\alpha-\beta)=-2\sin\alpha\sin\beta</math>
+
We can also solve for other expressions:
  
Or, <math>2\sin\alpha\sin\beta\iff\cos\phi-\cos\theta</math> (same conversions of <math>\alpha,\beta\iff\theta,\phi</math>)
+
<math>\sin^2=\frac{1-\cos(2\theta)}{2}</math>
  
==Chapter 3==
+
<math>\cos^2=\frac{\cos(2\theta)+1}{2}</math>
Next: <math>\cos(\alpha + \beta)=\cos\alpha\cos\beta-\sin\alpha\sin\beta</math>. Now let's cancel the second one.
+
<center>[[#toc|Back to Top]]</center>
  
<math>\cos(\alpha -\beta)=\cos\alpha\cos\beta+\sin\alpha\sin\beta</math>
+
=Sum to Product to Sum=
 +
These are the silliest identities I've ever seen. Do people really want to be surprised that much?
 +
<asy>
 +
unitsize(216);
 +
real d = 1/cos(radians(35));
 +
real d1 = d * cos(radians(55));
 +
real d2 = d * sin(radians(55));
 +
pair O = (0,0);
 +
pair A = (cos(radians(20)),0);
 +
pair B = (cos(radians(20)),sin(radians(20)));
 +
pair C = (cos(radians(20)),d2);
 +
pair D = (d1,d2);
 +
pair F = B+B-D;
 +
draw(O--A--B--O--D--B--O--D--C--B--F--O);
 +
dot(O);
 +
dot(B);
 +
dot(A,red);
 +
dot(C,green);
 +
dot(D,blue);
 +
dot(F,blue);
 +
label("O",O,SW);
 +
label("$\alpha$",shift(dir(10)/5)*O);
 +
label("$\beta$",shift(dir(37.5)/5)*O);
 +
label("A",A,SE,red);
 +
label("B",B,E);
 +
label("C",C,NE,green);
 +
label("D",D,dir(122.5),blue);
 +
label("D'",F,dir(302.5),blue);
 +
label("$\cos \alpha \cos \beta$",O--A,S);
 +
label("$\sin \alpha \cos \beta$",A--B,E);
 +
label("$\cos \beta$",O--B,dir(302.5));
 +
label("$\cos \alpha \sin \beta$",B--C,E);
 +
label("$\sin \alpha \sin \beta$",C--D,N);
 +
label("$\sin \beta$",B--D,dir(200));
 +
label("1",D--O,dir(325));
 +
</asy>
 +
Note: D' is the reflection of D about line OB.
 +
So, we have the angles <math>\alpha+\beta</math> and <math>\alpha-\beta</math> illustrated nicely in here. B is the midpoint of DD'. It is half the sum of D and D'. Calculate the coordinates of B two ways: One by the labels on triangle AOB, and one by finding the coordinates of D and D' by the sine and cosine of <math>\alpha+\beta</math> and <math>\alpha-\beta</math>, then averaging them.
  
So <math>\cos(\alpha+\beta)+\cos(\alpha-\beta)=2\cos\alpha\cos\beta</math>
+
Since half the difference of D to D' is the difference of B and one of them, it has the x coordinate equal to exactly the product of the sines, as illustrated above.
  
Or, <math>2\cos\alpha\cos\beta\iff\cos\theta+\cos\phi</math> (same conversions of <math>\alpha,\beta\iff\theta,\phi</math>)
+
<math>\cos\alpha\cos\beta=\frac12(\cos(\alpha-\beta)+\cos(\alpha+\beta))</math>
 +
<math>\sin\alpha\cos\beta=\frac12(\sin(\alpha-\beta)+\sin(\alpha+\beta))</math>
 +
<math>\sin\alpha\sin\beta=\frac12(\cos(\alpha-\beta)-\cos(\alpha+\beta))</math> I almost thought I got this last one wrong, but no, it's right.
 +
<center>[[#toc|Back to Top]]</center>
  
 
=Bonus: Product identity=
 
=Bonus: Product identity=
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<math>\cos(2\alpha+k\pi)=\sin^2\alpha\cos^2\alpha</math>
 
<math>\cos(2\alpha+k\pi)=\sin^2\alpha\cos^2\alpha</math>
 +
<center>[[#toc|Back to Top]]</center>
  
 
=Halved angles=
 
=Halved angles=
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There are two nice variations to know.  
 
There are two nice variations to know.  
  
<math>\pm\sqrt{\frac{1-\cos(2)}{1+\cos(2)}}\times\sqrt{\frac{1-\cos(2)}{1-\cos(2)}}=\pm\frac{1-\cos(2)}{\sin}</math>
+
<math>\pm\sqrt{\frac{1-\cos(2)}{1+\cos(2)}}\times\sqrt{\frac{1-\cos(2)}{1-\cos(2)}}=\pm\frac{1-\cos(2)}{\sin(2)}</math>
  
<math>\pm\sqrt{\frac{1-\cos(2)}{1+\cos(2)}}\times\sqrt{\frac{1+\cos(2)}{1+\cos(2)}}=\pm\frac{\sin}{1+\cos(2)}</math>
+
<math>\pm\sqrt{\frac{1-\cos(2)}{1+\cos(2)}}\times\sqrt{\frac{1+\cos(2)}{1+\cos(2)}}=\pm\frac{\sin(2)}{1+\cos(2)}</math>
 +
<center>[[#toc|Back to Top]]</center>
  
 
=Triple angles and more=
 
=Triple angles and more=
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Then, <math>u=\frac{-4y\pm\sqrt{16y^2-1}}{8}</math>
 
Then, <math>u=\frac{-4y\pm\sqrt{16y^2-1}}{8}</math>
  
The solutions are <math>\sqrt[3]{4y+\sqrt{16y^2-1}}</math>, <math>\frac{\sqrt[3]{4y+\sqrt{16y^2-1}}+\sqrt[3]{4y-\sqrt{16y^2-1}}}{2}</math>, and <math>\sqrt[3]{4y-\sqrt{16y^2-1}}</math>.
+
The solutions are <math>\sqrt[3]{-4y+\sqrt{16y^2-1}}</math>, <math>\frac{\sqrt[3]{-4y+\sqrt{16y^2-1}}+\sqrt[3]{4y-\sqrt{16y^2-1}}}{2}</math>, and <math>\sqrt[3]{-4y-\sqrt{16y^2-1}}</math>.
  
 
A tiny adjustment gives us the cosine third-angle formulas:
 
A tiny adjustment gives us the cosine third-angle formulas:
Line 297: Line 404:
  
 
<math>\frac{\sqrt[3]{-4y+\sqrt{16y^2-1}}}{\sqrt[3]{4y+\sqrt{16y^2-1}}}</math>, <math>\frac{\sqrt[3]{-4y+\sqrt{16y^2-1}}+\sqrt[3]{-4y-\sqrt{16y^2-1}}}{\sqrt[3]{4y+\sqrt{16y^2-1}}+\sqrt[3]{4y-\sqrt{16y^2-1}}}</math>, and <math>\frac{\sqrt[3]{-4y-\sqrt{16y^2-1}}}{\sqrt[3]{4y-\sqrt{16y^2-1}}}</math>
 
<math>\frac{\sqrt[3]{-4y+\sqrt{16y^2-1}}}{\sqrt[3]{4y+\sqrt{16y^2-1}}}</math>, <math>\frac{\sqrt[3]{-4y+\sqrt{16y^2-1}}+\sqrt[3]{-4y-\sqrt{16y^2-1}}}{\sqrt[3]{4y+\sqrt{16y^2-1}}+\sqrt[3]{4y-\sqrt{16y^2-1}}}</math>, and <math>\frac{\sqrt[3]{-4y-\sqrt{16y^2-1}}}{\sqrt[3]{4y-\sqrt{16y^2-1}}}</math>
 +
 +
<center>[[#toc|Back to Top]]</center>
 +
=All identities=
 +
==Definition==
 +
<math>\tan = \frac{\sin}{\cos}</math>
 +
 +
<math>\cot = \frac{\cos}{\sin}</math>
 +
 +
<math>\sec = \frac{1}{\cos}</math>
 +
 +
<math>\csc = \frac{1}{\sin}</math>
 +
==Symmetric==
 +
<math>\sin(x)=\cos(90-x)=-\cos(90+x)=\sin(180-x)=-\sin(180+x)=\cos(270-x)=-\cos(270+x)=-\sin(-x)</math>
 +
 +
<math>\cos(x)=\sin(90-x)=\sin(90+x)=-\cos(180-x)=-\cos(180+x)=\sin(270-x)=-\sin(270+x)=\cos(-x)</math>
 +
 +
<math>\tan(x)=\cot(90-x)=-\cot(90+x)=-\tan(180-x)=\tan(180+x)=\cot(270-x)=-\cot(270+x)=-\tan(-x)</math>
 +
==Pythagorean==
 +
<math>\cos^2+\sin^2=1</math>
 +
 +
<math>\tan^2+1=\sec^2</math>
 +
 +
<math>1+\cot^2=\csc^2</math>
 +
==Sum==
 +
==Sum==
 +
<math>\sin(\alpha+\beta)=\sin\alpha\cos\beta+\sin\beta\cos\alpha</math>
 +
 +
<math>\cos(\alpha+\beta)=\cos\alpha\cos\beta-\sin\alpha\sin\beta</math>
 +
 +
<math>\tan(\alpha + \beta)=\frac{\tan \alpha + \tan \beta}{1 - \tan \alpha \tan \beta}</math>
 +
 +
<math>\sec(\alpha + \beta)=\frac{\sec \alpha \sec \beta}{1 - \tan \alpha \tan \beta}</math>
 +
 +
<math>\csc(\alpha + \beta)=\frac{\csc \alpha \csc \beta}{\cot \alpha + \cot \beta}</math>
 +
 +
<math>\cot(\alpha + \beta)=\frac{\cot \alpha \cot \beta - 1}{\cot \alpha + \cot \beta}</math>
 +
 +
Memory aids: sin is different, cos is same, tan is sum over one minus product, cot is product minus one over sum, sec is like tan but with product of sec on top, csc is like cot but with product of csc on top.
 +
==Double==
 +
<math>\sin(2n)=2\sin n\cos n</math>
 +
 +
<math>\cos(2n)=\cos^2 n-\sin^2 n</math>
 +
 +
<math>\tan(2n)=\frac{2\tan n}{1-\tan^2 n}</math>
 +
 +
<math>\cos(2n)=2\cos^2 n-1</math>
 +
 +
<math>\cos(2n)=\cos^2 n-\sin^2 n</math>
 +
 +
<math>\cos(2n)=1-2\sin^2 n</math>
 +
==Sum <math>\iff</math> Product==
 +
<math>\theta =\alpha +\beta</math>
 +
 +
<math>\phi =\alpha -\beta</math>
 +
 +
<math>\alpha =\frac{\theta +\phi}{2}</math>
 +
 +
<math>\beta =\frac{\theta -\phi}{2}</math>
 +
 +
<math>2\sin\alpha\cos\beta\iff\sin\theta+\sin\phi</math>
 +
 +
<math>2\sin\alpha\sin\beta\iff\cos\phi-\cos\theta</math>
 +
 +
<math>2\cos\alpha\cos\beta\iff\cos\theta+\cos\phi</math>
 +
==Product==
 +
<math>\cos(2\alpha+k\pi)=\sin^2\alpha\cos^2\alpha</math>
 +
==Halves==
 +
<math>\sin\theta=\pm\sqrt{\frac{1-\cos(2\theta)}{2}}</math>
 +
 +
<math>\cos\theta=\pm\sqrt{\frac{1+\cos(2\theta)}{2}}</math>
 +
 +
<math>\tan\theta=\pm\sqrt{\frac{1-\cos(2\theta)}{1+\cos(2\theta)}}</math>
 +
 +
<math>\tan\theta=\pm\frac{1-\cos(2\theta)}{\sin 2\theta}</math>
 +
 +
<math>\tan\theta=\pm\frac{\sin 2\theta}{1+\cos(2\theta)}</math>
 +
==3 Sums==
 +
<math>\sin(\alpha+\beta+\gamma)=\sin\alpha\cos\beta\cos\gamma+\cos\alpha\sin\beta\cos\gamma+\cos\alpha\cos\beta\sin\gamma-\sin\alpha\sin\beta\sin\gamma</math>
 +
 +
<math>\cos(\alpha+\beta+\gamma)=\cos\alpha\cos\beta\cos\gamma-\cos\alpha\sin\beta\sin\gamma-\sin\alpha\cos\beta\sin\gamma-\sin\alpha\sin\beta\cos\gamma</math>
 +
 +
<math>\tan(\alpha+\beta+\gamma)=\frac{\tan\alpha+\tan\beta+\tan\gamma-\tan\alpha\tan\beta\tan\gamma}{1-\tan\beta\tan\gamma-\tan\alpha\tan\gamma-\tan\alpha\tan\beta}</math>
 +
==Triple==
 +
<math>\sin 3\theta=3\sin\theta-4\sin^3\theta</math>
 +
 +
<math>\cos 3\theta=4\cos^3\theta-3\cos\theta</math>
 +
 +
<math>\tan 3\theta=\frac{3\tan\theta-\tan^3\theta}{1-3\tan^2\theta}</math>
 +
==Thirds==
 +
<math>\sin\theta=\sqrt[3]{-4\sin 3\theta+\sqrt{16\sin^2(3\theta)-1}},\frac{\sqrt[3]{-4\sin 3\theta+\sqrt{16\sin^2(3\theta)-1}}+\sqrt[3]{-4\sin 3\theta-\sqrt{16\sin^2(3\theta)-1}}}{2}, \\ \text{or }\sqrt[3]{4\sin 3\theta-\sqrt{16\sin^2 3\theta-1}}</math>
 +
 +
<math>\cos\theta=\sqrt[3]{4\cos 3\theta+\sqrt{16\cos^2(3\theta)-1}},\frac{\sqrt[3]{4\cos 3\theta+\sqrt{16\cos^2(3\theta)-1}}+\sqrt[3]{4\cos 3\theta-\sqrt{16\cos^2(3\theta)-1}}}{2}, \\ \text{or }\sqrt[3]{4\cos 3\theta-\sqrt{16\cos^2 3\theta-1}}</math>
 +
 +
<math>\tan\theta=\frac{\sqrt[3]{-4\sin 3\theta+\sqrt{16\sin^2(3\theta)-1}}}{\sqrt[3]{4\cos 3\theta+\sqrt{16\cos^2(3\theta)-1}}},\frac{\sqrt[3]{-4\sin 3\theta+\sqrt{16\sin^2(3\theta)-1}}+\sqrt[3]{-4\sin 3\theta-\sqrt{16\sin^2(3\theta)-1}}}{\sqrt[3]{4\cos 3\theta+\sqrt{16\cos^2(3\theta)-1}}+\sqrt[3]{4\cos 3\theta-\sqrt{16\cos^2(3\theta)-1}}}, \\ \text{or }\frac{\sqrt[3]{-4\sin 3\theta-\sqrt{16\sin(3\theta)^2-1}}}{\sqrt[3]{4\cos 3\theta-\sqrt{16\cos^2(3\theta)-1}}}</math>
 +
=See also=
 +
[[Trigonometric identities]]
 +
[[Category:Trigonometry]]
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 +
Created by [[User:Afly|Afly]] ([[User talk:Afly|talk]])
 +
<center>[[#toc|Back to Top]]</center>

Latest revision as of 22:28, 29 August 2024

Shortcut:

Introduction

$\sin$ and $\cos$ are easy to define. I prefer the unit circle definition as it makes these proofs easier to understand. Next, we define some other functions:

$\tan = \frac{\sin}{\cos}$

$\cot = \frac{\cos}{\sin}$

$\sec = \frac{1}{\cos}$

$\csc = \frac{1}{\sin}$

Note: I've omitted $\theta$ because it's unnecessary and might clog things up a little.

With a bit of ingenuity, we can create the following diagram:

[asy] import olympiad; markscalefactor = 1/96; real d = radians(40); unitsize(72); pair O = (0,0); draw(circle(O,1)); dot(O); label("O",O,dir(180+degrees(d)/2)); label("$\theta$",shift(dir(degrees(d)/2)/5)*O,dir(degrees(d)/2)); pair G = (0,1); label("G",G,N); pair A = (cos(d),0); label("A",A,S); pair B = (cos(d),sin(d)); label("B",B,dir(135+degrees(d))); pair C = (1,0); label("C",C,SE); pair D = (1,tan(d)); label("D",D,N); pair E = (1/tan(d),0); label("E",E,SE); pair F = (1/tan(d),1); label("F",F,N); pair G = (0,1); label("G",G,N); draw(D--O--C--D--B--A--E--F--G--O--F); draw(rightanglemark(G,O,C)); label("$\cos \theta$",O--A); label("$\sin \theta$",B--A); label("1",B--O); draw(shift(dir(270)/24)*brace(C,O)); label("$\cot \theta$",shift(dir(270)/4)*brace(E,O),S); draw(shift(dir(d+90)/24)*brace(O,D)); label("$\sec \theta$",shift(dir(degrees(d)+90)/24)*brace(O,D),dir(degrees(d)+90)); draw(shift(dir(270)/4)*brace(E,O)); label("1",shift(dir(270)/24)*brace(C,O),S); draw(shift(dir(270)/4)*O--shift(dir(270)/24)*O); draw(shift(dir(270)/4)*E--shift(dir(270)/24)*E); label("1",E--F,SE); label("$\tan \theta$",C--D); draw(shift(dir(degrees(d)+90)/4)*brace(O,F)); label("$\csc \theta$",shift(dir(degrees(d)+90)/4)*brace(O,F),dir(degrees(d)+90)); draw(shift(dir(degrees(d)+90)/4)*O--shift(dir(degrees(d)+90)/24)*O); draw(shift(dir(degrees(d)+90)/4)*F--shift(dir(degrees(d)+90)/24)*F); [/asy]

It has three main triangles: cos-sin-1, 1-tan-sec, and cot-1-csc.

We can note that the functions are correct by similar triangles.

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Symmetric identities

If we draw a few copies of the triangle, we get:

$\sin(x)=\cos(90-x)=-\cos(90+x)=\sin(180-x)=-\sin(180+x)=\cos(270-x)=-\cos(270+x)=-\sin(-x)$

$\cos(x)=\sin(90-x)=\sin(90+x)=-\cos(180-x)=-\cos(180+x)=\sin(270-x)=-\sin(270+x)=\cos(-x)$

$\tan(x)=\cot(90-x)=-\cot(90+x)=-\tan(180-x)=\tan(180+x)=\cot(270-x)=-\cot(270+x)=-\tan(-x)$

The other three can be derived by taking the reciprocals of these three.

x is easier to type than theta

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Pythagorean identities

Pythagorean identities are easy and there's no algebra involved. In fact, the name Pythagorean is a giveaway of what we should do!

$\cos^2+\sin^2=1$

The proof here is very straightforward. We use the pythagorean theorem on $\triangle OAB$ giving us $OA^2+AB^2=OB^2$ or $\sin^2+\cos^2=1^2$.

$\tan^2+1=\sec^2$

Same story here. Applying pythagorean to $\triangle OCD$ gives us $OC^2+CD^2=OD^2$ or $\tan^2+1^2=\sec^2$.

$1+\cot^2=\csc^2$

Same. Pythagorean on $\triangle OEF$ gives $OE^2+EF^2=OF^2$ or $1^2+\cot^2=\csc^2$.

Conclusion

Even though with the first one and the definitions, we can make the rest from algebra, having a geometric meaning is nice when we want to know what it actually means.

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Angle addition and subtraction

$\sin(\alpha + \beta)$

When does sin appear? When does sin appear? In the first triangle, of course. Let's make a diagram!

[asy] unitsize(216); real d = 1/cos(radians(35)); real d1 = d * cos(radians(55)); real d2 = d * sin(radians(55)); pair O = (0,0); pair A = (cos(radians(20)),0); pair B = (cos(radians(20)),sin(radians(20))); pair C = (cos(radians(20)),d2); pair D = (d1,d2); draw(O--A--B--O--D--B--O--D--C--B); dot(O); dot(B); dot(A,red); dot(C,green); dot(D,blue); label("O",O,SW); label("$\alpha$",shift(dir(10)/5)*O); label("$\beta$",shift(dir(37.5)/5)*O); label("A",A,SE,red); label("B",B,E); label("C",C,NE,green); label("D",D,dir(122.5),blue); label("$\cos \alpha \cos \beta$",O--A,S); label("$\sin \alpha \cos \beta$",A--B,E); label("$\cos \beta$",O--B,dir(302.5)); label("$\cos \alpha \sin \beta$",B--C,E); label("$\sin \alpha \sin \beta$",C--D,N); label("$\sin \beta$",B--D,dir(200)); label("1",D--O,dir(325)); [/asy]

where $\triangle OAB \sim \triangle BCD$

The diagram illustrates the identities nicely.

The diagram shows the height of point $D$ is $\sin(\alpha)+\frac{\cos \alpha \sin \beta}{\cos \beta}$. However, the length of $OD$ is $\frac{1}{\cos\beta}$. To compensate, we must divide by $\frac{1}{\cos\beta}$ to make it the sine. After some *easy* algebra, we arrive at $\sin(\alpha+\beta)=\sin\alpha\cos\beta+\sin\beta\cos\alpha$.

$\cos(\alpha + \beta)$

The diagram says that it is $\cos(\alpha)-\frac{\sin \alpha \sin \beta}{\cos \beta}$, but we need to divide by $\frac{1}{\cos\beta}$ again. We arrive at $\cos(\alpha+\beta)=\cos\alpha\cos\beta-\sin\alpha\sin\beta$.

$\tan(\alpha + \beta)$

This time, let's use the tan-1-sec triangle.

[asy] unitsize(216); real d = 1/cos(radians(35)); real d1 = d * cos(radians(55)); real d2 = d * sin(radians(55)); pair O = (0,0); pair A = (cos(radians(20)),0); pair B = (cos(radians(20)),sin(radians(20))); pair C = (cos(radians(20)),d2); pair D = (d1,d2); draw(O--A--B--O--D--B--O--D--C--B); dot(O); dot(B); dot(A,red); dot(C,green); dot(D,blue); label("O",O,SW); label("$\alpha$",shift(dir(10)/5)*O); label("$\beta$",shift(dir(37.5)/5)*O); label("A",A,SE,red); label("B",B,E); label("C",C,NE,green); label("D",D,dir(122.5),blue); label("1",O--A,S); label("$\tan \alpha$",A--B,E); label("$\sec \alpha$",O--B,dir(302.5)); label("$\tan \beta$",B--C,E); label(scale(0.75)*"$\tan \alpha \tan \beta$",C--D,N); label(scale(0.75)*"$\sec \alpha \tan \beta$",B--D,dir(200)); label(scale(0.75)*"$\sec \alpha \sec \beta$",D--O,dir(325)); [/asy]

Wait, is that just the same diagram? No! the labels have changed!

Note: I did some algebra when noting that sin * sec = tan and cos * sec = 1

Looking at the diagram, the height of the new triangle is $\tan \alpha + \tan \beta$, but the width is only $1-\tan\alpha\tan\beta$, so we arrive at $\frac{\tan\alpha+\tan\beta}{1-\tan\alpha\tan\beta}$

$\sec(\alpha + \beta)$

I dunno why most people never use this, but it's right up there in the diagram. $\frac{\sec\alpha\sec\beta}{1-\tan\alpha\tan\beta}$

$\csc(\alpha + \beta)$

Hey, if you don't need this, stop reading.

We need the third triangle here. I'm going to do something weird, you'll see why when I complete the diagram (I= afly. This page was all made by afly) [asy] unitsize(216); real d = 1/cos(radians(35)); real d1 = d * cos(radians(55)); real d2 = d * sin(radians(55)); pair O = (0,0); pair A = (cos(radians(20)),0); pair B = (cos(radians(20)),sin(radians(20))); pair C = (cos(radians(20)),d2); pair D = (d1,d2); draw(O--A--B--O--D--B--O--D--C--B); dot(O); dot(B); dot(A,red); dot(C,green); dot(D,blue); label("O",O,SW); label("$\alpha$",shift(dir(10)/5)*O); label("$\beta$",shift(dir(37.5)/5)*O); label("A",A,SE,red); label("B",B,E); label("C",C,NE,green); label("D",D,dir(122.5),blue); label(scale(0.75)*"$\cot \alpha \cot \beta$",O--A,S); label("$\cot \beta$",A--B,E); label(scale(0.75)*"$\csc \alpha \cot \beta$",O--B,dir(302.5)); label("$\cot \alpha$",B--C,E); label("1",C--D,N); label(scale(0.75)*"$\csc \alpha$",B--D,dir(200)); label(scale(0.75)*"$\csc \alpha \csc \beta$",D--O,dir(325)); [/asy]

Can you look at the diagram? what do you have? $\csc(\alpha+\beta)=\frac{\csc\alpha\csc\beta}{\cot\alpha\cot\beta-1}$

$\cot(\alpha + \beta)$

Easy Peasy Lemon Squeezy. $\frac{\cot\alpha+\cot\beta}{\cot\alpha\cot\beta-1}$

Double angle formulas

This is a breeze. Just sub in for sum:

$\sin(2\theta)=2\sin\cos$

$\cos(2\theta)=\cos^2-\sin^2$

$\tan(2\theta)=\frac{2\tan}{1-\tan^2}$

Variations

Since $\sin^2+\cos^2=1$, we can edit the double angle cosine formula a bit. Here are the three most helpful variants:

$\cos(2\theta)=2\cos^2-1$

$\cos(2\theta)=\cos^2-\sin^2$

$\cos(2\theta)=1-2\sin^2$

We can also solve for other expressions:

$\sin^2=\frac{1-\cos(2\theta)}{2}$

$\cos^2=\frac{\cos(2\theta)+1}{2}$

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Sum to Product to Sum

These are the silliest identities I've ever seen. Do people really want to be surprised that much? [asy] unitsize(216); real d = 1/cos(radians(35)); real d1 = d * cos(radians(55)); real d2 = d * sin(radians(55)); pair O = (0,0); pair A = (cos(radians(20)),0); pair B = (cos(radians(20)),sin(radians(20))); pair C = (cos(radians(20)),d2); pair D = (d1,d2); pair F = B+B-D; draw(O--A--B--O--D--B--O--D--C--B--F--O); dot(O); dot(B); dot(A,red); dot(C,green); dot(D,blue); dot(F,blue); label("O",O,SW); label("$\alpha$",shift(dir(10)/5)*O); label("$\beta$",shift(dir(37.5)/5)*O); label("A",A,SE,red); label("B",B,E); label("C",C,NE,green); label("D",D,dir(122.5),blue); label("D'",F,dir(302.5),blue); label("$\cos \alpha \cos \beta$",O--A,S); label("$\sin \alpha \cos \beta$",A--B,E); label("$\cos \beta$",O--B,dir(302.5)); label("$\cos \alpha \sin \beta$",B--C,E); label("$\sin \alpha \sin \beta$",C--D,N); label("$\sin \beta$",B--D,dir(200)); label("1",D--O,dir(325)); [/asy] Note: D' is the reflection of D about line OB. So, we have the angles $\alpha+\beta$ and $\alpha-\beta$ illustrated nicely in here. B is the midpoint of DD'. It is half the sum of D and D'. Calculate the coordinates of B two ways: One by the labels on triangle AOB, and one by finding the coordinates of D and D' by the sine and cosine of $\alpha+\beta$ and $\alpha-\beta$, then averaging them.

Since half the difference of D to D' is the difference of B and one of them, it has the x coordinate equal to exactly the product of the sines, as illustrated above.

$\cos\alpha\cos\beta=\frac12(\cos(\alpha-\beta)+\cos(\alpha+\beta))$ $\sin\alpha\cos\beta=\frac12(\sin(\alpha-\beta)+\sin(\alpha+\beta))$ $\sin\alpha\sin\beta=\frac12(\cos(\alpha-\beta)-\cos(\alpha+\beta))$ I almost thought I got this last one wrong, but no, it's right.

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Bonus: Product identity

This is a special identity. I hope this helps you. $\sin^2(\alpha+\beta)=(\sin\alpha\cos\beta+\cos\alpha\sin\beta)(\sin\alpha\cos\beta+\cos\alpha\sin\beta)=\sin^2\alpha\cos^2\beta+\cos^2\alpha\sin^2\beta+2\sin\alpha\sin\beta\cos\alpha\cos\beta$

and

$\cos^2(\alpha+\beta)=(\cos\alpha\cos\beta-\sin\alpha\sin\beta)(\cos\alpha\cos\beta-\sin\alpha\sin\beta)=\sin^2\alpha\cos^2\beta+\cos^2\alpha\sin^2\beta+(\sin\alpha\cos\alpha)^2+(\sin\beta\cos\beta)^2$

There's something we can cancel.

$\cos(2\alpha+2\beta)=\cos^2(\alpha+\beta)-\sin^2(\alpha+\beta)$

$=(\sin\alpha\cos\alpha)^2+(\sin\beta\cos\beta)^2-2\sin\alpha\cos\alpha\sin\beta\cos\beta$

If $f()=\sin\cos$, then it simplifies to

$(f(\alpha)-f(\beta))^2$

Notice $f\left(\frac{k\pi}{2}\right)=0$. If we let $\beta=0$:

$\cos(2\alpha+k\pi)=\sin^2\alpha\cos^2\alpha$

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Halved angles

Starting with the identities from the double section:

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

$\cos^2=\frac{1+\cos(2)}{2}$

We take the square root to obtain:

$\sin=\pm\sqrt{\frac{1-\cos(2)}{2}}$

$\cos=\pm\sqrt{\frac{1+\cos(2)}{2}}$

For tangent:

$\tan=\frac{\sin}{\cos}=\frac{\pm\sqrt{\frac{1-\cos(2)}{2}}}{\pm\sqrt{\frac{1+\cos(2)}{2}}}=\pm\sqrt{\frac{1-\cos(2)}{1+\cos(2)}}$

There are two nice variations to know.

$\pm\sqrt{\frac{1-\cos(2)}{1+\cos(2)}}\times\sqrt{\frac{1-\cos(2)}{1-\cos(2)}}=\pm\frac{1-\cos(2)}{\sin(2)}$

$\pm\sqrt{\frac{1-\cos(2)}{1+\cos(2)}}\times\sqrt{\frac{1+\cos(2)}{1+\cos(2)}}=\pm\frac{\sin(2)}{1+\cos(2)}$

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Triple angles and more

Triple sums

$\sin(\alpha+\beta+\gamma)=\sin(\alpha+(\beta+\gamma))$ $=\sin\alpha\cos(\beta+\gamma)+\cos\alpha\sin(\beta+\gamma)$ $=\sin\alpha(\cos\beta\cos\gamma-\sin\beta\sin\gamma)+\cos\alpha(\sin\beta\cos\gamma+\cos\beta\sin\gamma)$ $=\sin\alpha\cos\beta\cos\gamma+\cos\alpha\sin\beta\cos\gamma+\cos\alpha\cos\beta\sin\gamma-\sin\alpha\sin\beta\sin\gamma$

$\cos(\alpha+\beta+\gamma)=\cos(\alpha+(\beta+\gamma))$ $=\cos\alpha\cos(\beta+\gamma)-\sin\alpha\sin(\beta+\gamma)$ $=\cos\alpha(\cos\beta\cos\gamma-\sin\beta\sin\gamma)-\sin\alpha(\sin\beta\cos\gamma+\cos\beta\sin\gamma)$ $=\cos\alpha\cos\beta\cos\gamma-\cos\alpha\sin\beta\sin\gamma-\sin\alpha\cos\beta\sin\gamma-\sin\alpha\sin\beta\cos\gamma$

$\tan(\alpha+\beta+\gamma)=\tan(\alpha+(\beta+\gamma))$ $=\frac{\tan\alpha+\tan(\beta+\gamma)}{1-\tan\alpha\tan(\beta+\gamma)}$ $=\frac{\tan\alpha+\frac{\tan\beta+\tan\gamma}{1-\tan\beta\tan\gamma}}{1-\tan\alpha\frac{\tan\beta+\tan\gamma}{1-\tan\beta\tan\gamma}}$ $=\frac{\frac{\tan\alpha+\tan\beta+\tan\gamma-\tan\alpha\tan\beta\tan\gamma}{1-\tan\beta\tan\gamma}}{\frac{1-\tan\beta\tan\gamma-\tan\alpha\tan\beta-\tan\alpha\tan\gamma}{1-\tan\beta\tan\gamma}}$ $=\frac{\tan\alpha+\tan\beta+\tan\gamma-\tan\alpha\tan\beta\tan\gamma}{1-\tan\beta\tan\gamma-\tan\alpha\tan\gamma-\tan\alpha\tan\beta}$

Triple angles

$\sin 3\theta=3\cos^2\theta\sin\theta-\sin^3\theta=3\sin\theta-3(1-\cos^2\theta)\sin\theta-\sin^3\theta=3\sin\theta-4\sin^3\theta$

$\cos 3\theta=\cos^3\theta-3\cos\theta\sin^2\theta=\cos^3\theta+3(1-\sin^2\theta)\cos\theta-3\cos\theta=4\cos^3\theta-3\cos\theta$

$\tan 3\theta=\frac{3\tan\theta-\tan^3\theta}{1-3\tan^2\theta}$

Third angles

Let $\sin\theta = x$ and $\sin 3\theta = y$. We get this depressed cubic:

$0=3x-4x^3-y$

First, divide both sides by -4 and rearrange: $x^3-\frac{3}{4}x+y=0$. The discriminant $\Delta = \frac{y^2}{4}-\frac{1}{64}=\frac{16y^2-1}{64}$

Then, $u=\frac{-4y\pm\sqrt{16y^2-1}}{8}$

The solutions are $\sqrt[3]{-4y+\sqrt{16y^2-1}}$, $\frac{\sqrt[3]{-4y+\sqrt{16y^2-1}}+\sqrt[3]{4y-\sqrt{16y^2-1}}}{2}$, and $\sqrt[3]{-4y-\sqrt{16y^2-1}}$.

A tiny adjustment gives us the cosine third-angle formulas:

$\sqrt[3]{4y+\sqrt{16y^2-1}}$, $\frac{\sqrt[3]{4y+\sqrt{16y^2-1}}+\sqrt[3]{4y-\sqrt{16y^2-1}}}{2}$, and $\sqrt[3]{4y-\sqrt{16y^2-1}}$.

For tangent:

$\frac{\sqrt[3]{-4y+\sqrt{16y^2-1}}}{\sqrt[3]{4y+\sqrt{16y^2-1}}}$, $\frac{\sqrt[3]{-4y+\sqrt{16y^2-1}}+\sqrt[3]{-4y-\sqrt{16y^2-1}}}{\sqrt[3]{4y+\sqrt{16y^2-1}}+\sqrt[3]{4y-\sqrt{16y^2-1}}}$, and $\frac{\sqrt[3]{-4y-\sqrt{16y^2-1}}}{\sqrt[3]{4y-\sqrt{16y^2-1}}}$

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All identities

Definition

$\tan = \frac{\sin}{\cos}$

$\cot = \frac{\cos}{\sin}$

$\sec = \frac{1}{\cos}$

$\csc = \frac{1}{\sin}$

Symmetric

$\sin(x)=\cos(90-x)=-\cos(90+x)=\sin(180-x)=-\sin(180+x)=\cos(270-x)=-\cos(270+x)=-\sin(-x)$

$\cos(x)=\sin(90-x)=\sin(90+x)=-\cos(180-x)=-\cos(180+x)=\sin(270-x)=-\sin(270+x)=\cos(-x)$

$\tan(x)=\cot(90-x)=-\cot(90+x)=-\tan(180-x)=\tan(180+x)=\cot(270-x)=-\cot(270+x)=-\tan(-x)$

Pythagorean

$\cos^2+\sin^2=1$

$\tan^2+1=\sec^2$

$1+\cot^2=\csc^2$

Sum

Sum

$\sin(\alpha+\beta)=\sin\alpha\cos\beta+\sin\beta\cos\alpha$

$\cos(\alpha+\beta)=\cos\alpha\cos\beta-\sin\alpha\sin\beta$

$\tan(\alpha + \beta)=\frac{\tan \alpha + \tan \beta}{1 - \tan \alpha \tan \beta}$

$\sec(\alpha + \beta)=\frac{\sec \alpha \sec \beta}{1 - \tan \alpha \tan \beta}$

$\csc(\alpha + \beta)=\frac{\csc \alpha \csc \beta}{\cot \alpha + \cot \beta}$

$\cot(\alpha + \beta)=\frac{\cot \alpha \cot \beta - 1}{\cot \alpha + \cot \beta}$

Memory aids: sin is different, cos is same, tan is sum over one minus product, cot is product minus one over sum, sec is like tan but with product of sec on top, csc is like cot but with product of csc on top.

Double

$\sin(2n)=2\sin n\cos n$

$\cos(2n)=\cos^2 n-\sin^2 n$

$\tan(2n)=\frac{2\tan n}{1-\tan^2 n}$

$\cos(2n)=2\cos^2 n-1$

$\cos(2n)=\cos^2 n-\sin^2 n$

$\cos(2n)=1-2\sin^2 n$

Sum $\iff$ Product

$\theta =\alpha +\beta$

$\phi =\alpha -\beta$

$\alpha =\frac{\theta +\phi}{2}$

$\beta =\frac{\theta -\phi}{2}$

$2\sin\alpha\cos\beta\iff\sin\theta+\sin\phi$

$2\sin\alpha\sin\beta\iff\cos\phi-\cos\theta$

$2\cos\alpha\cos\beta\iff\cos\theta+\cos\phi$

Product

$\cos(2\alpha+k\pi)=\sin^2\alpha\cos^2\alpha$

Halves

$\sin\theta=\pm\sqrt{\frac{1-\cos(2\theta)}{2}}$

$\cos\theta=\pm\sqrt{\frac{1+\cos(2\theta)}{2}}$

$\tan\theta=\pm\sqrt{\frac{1-\cos(2\theta)}{1+\cos(2\theta)}}$

$\tan\theta=\pm\frac{1-\cos(2\theta)}{\sin 2\theta}$

$\tan\theta=\pm\frac{\sin 2\theta}{1+\cos(2\theta)}$

3 Sums

$\sin(\alpha+\beta+\gamma)=\sin\alpha\cos\beta\cos\gamma+\cos\alpha\sin\beta\cos\gamma+\cos\alpha\cos\beta\sin\gamma-\sin\alpha\sin\beta\sin\gamma$

$\cos(\alpha+\beta+\gamma)=\cos\alpha\cos\beta\cos\gamma-\cos\alpha\sin\beta\sin\gamma-\sin\alpha\cos\beta\sin\gamma-\sin\alpha\sin\beta\cos\gamma$

$\tan(\alpha+\beta+\gamma)=\frac{\tan\alpha+\tan\beta+\tan\gamma-\tan\alpha\tan\beta\tan\gamma}{1-\tan\beta\tan\gamma-\tan\alpha\tan\gamma-\tan\alpha\tan\beta}$

Triple

$\sin 3\theta=3\sin\theta-4\sin^3\theta$

$\cos 3\theta=4\cos^3\theta-3\cos\theta$

$\tan 3\theta=\frac{3\tan\theta-\tan^3\theta}{1-3\tan^2\theta}$

Thirds

$\sin\theta=\sqrt[3]{-4\sin 3\theta+\sqrt{16\sin^2(3\theta)-1}},\frac{\sqrt[3]{-4\sin 3\theta+\sqrt{16\sin^2(3\theta)-1}}+\sqrt[3]{-4\sin 3\theta-\sqrt{16\sin^2(3\theta)-1}}}{2}, \\ \text{or }\sqrt[3]{4\sin 3\theta-\sqrt{16\sin^2 3\theta-1}}$

$\cos\theta=\sqrt[3]{4\cos 3\theta+\sqrt{16\cos^2(3\theta)-1}},\frac{\sqrt[3]{4\cos 3\theta+\sqrt{16\cos^2(3\theta)-1}}+\sqrt[3]{4\cos 3\theta-\sqrt{16\cos^2(3\theta)-1}}}{2}, \\ \text{or }\sqrt[3]{4\cos 3\theta-\sqrt{16\cos^2 3\theta-1}}$

$\tan\theta=\frac{\sqrt[3]{-4\sin 3\theta+\sqrt{16\sin^2(3\theta)-1}}}{\sqrt[3]{4\cos 3\theta+\sqrt{16\cos^2(3\theta)-1}}},\frac{\sqrt[3]{-4\sin 3\theta+\sqrt{16\sin^2(3\theta)-1}}+\sqrt[3]{-4\sin 3\theta-\sqrt{16\sin^2(3\theta)-1}}}{\sqrt[3]{4\cos 3\theta+\sqrt{16\cos^2(3\theta)-1}}+\sqrt[3]{4\cos 3\theta-\sqrt{16\cos^2(3\theta)-1}}}, \\ \text{or }\frac{\sqrt[3]{-4\sin 3\theta-\sqrt{16\sin(3\theta)^2-1}}}{\sqrt[3]{4\cos 3\theta-\sqrt{16\cos^2(3\theta)-1}}}$

See also

Trigonometric identities

Created by Afly (talk)

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