For a collision algorithm I am developing, I need to find out how to reflect a line over another.
Line 1:
y=ax+b
Line 2:
y=cx+d
Line 3:
(a result of reflecting line 1 over line 2) y=ex+f
Is there any algebraic way to determine e
and f
in terms of a
, b
, c
, and d
?
I have run over this exact same problem before. Stay with me here...
This problem involves two parts:
to find where two lines intersect, we use the two equations of the lines:
y = M1x + B1
y = M2x + B2
Using substitution:
M1x + B1 = M2x + B2
M1x - M2x = B2 - B1
x(M1 - M2) = B2 - B1
x = (B2 - B1) / (M1 - M2)
To find the y value, just plug it in:
y = M1x + B1
The second is far trickier. Using trigonometry, it is not impossible.
Let L1 be the "base line." (With a slope of M1)
Let L2 be the line that is to be reflected over the "base line." (With a slope of M2)
Let L3 be our resulting line. (With a slope of M3)
The equation I used is as follows:
double M3 = ((2 * M1) + (M2 * pow(M1, 2)) - M2) / (2 * M1 * M2 - pow(M1, 2) + 1);
Straight from my C code. It is important to note that both slopes should be defined. You can use L'Hopital's rule to get an equation when one of the slopes is approaching infinity.
ONWARD WITH THE EXPLANATION!
Here is a crude drawing of three lines. L2 is reflected over L1, resulting in L3. Drawing is not exact. The angle between L1 and L2, as well as L2 and L3, is labelled as R.\ Here are the facts:
M1 = tan(A1)
M2 = tan(A2)
M3 = tan(A3)
This comes from the definition of tangent.
A3 = R + A1
This is a little trickier to see, but if you draw a horizontal line at the point of intersection it becomes obvious.
Thus, our goal is to find tan(A3). To accomplish this, we need to find R. As we can see, R can be found in a triangle with A2 and the supplement of A1 as the other angles. Thus, we know:
R + (180 - A1) + A2 = 180
R - A1 + A2 = 0
R = A1 - A2
Let's take the tangent of both sides:
tan(R) = tan(A1 - A2)
From trigonometry, we know:
tan(R) = (tan(A1) - tan(A2)) / (1 + tan(A1)tan(A2))
R = arctan((tan(A1) - tan(A2) / (1 + tan(A1)tan(A2))
Arctan being inverse tangent. From our earlier formula, A3 = R + A1, we get:
A3 = arctan((tan(A1) - tan(A2) / (1 + tan(A1)tan(A2)) + A1
A3 = arctan((M1 - M2) / (1 + M1*M2)) + A1
But we don't want A3. We want tan(A3). So again, we take the tangent of both sides.
tan(A3) = M3 = tan(arctan((M1 - M2) / (1 + M1*M2)) + A1)
M3 = tan(arctan((M1 - M2) / (1 + M1*M2))) + tan(A1) / (1 - tan(arctan((M1 - M2) / (1 + M1*M2))) * tan(A1))
Unfortunately, that's disgustingly hideous. Replacing tangents with slopes and simplifying, we get
M3 = ((M1 - M2) / (1 + M1*M2)) + M1 / (1 - ((M1 - M2)/(1 + M1*M2)) * M1)
M3 = (M1 - M2 + M1*(1 + M1*M2)) / (1 + M1*M2 - M1*M1 + M1*M2)
M3 = (M1^2 * M2 + 2*M1 - M2) / (1 + 2*M1*M2 - M1^2)
Which is the exact same as the formula above. Sorry about all the ugly math. When M2 is completely vertical, you can use L'Hopital's rule to get
M3 = (M1^2 - 1) / 2*M1
If anyone is so inclined, check my math. But I'm tired right about now.