I need to convert a plane's equation from Cartesian form to Parametric form. For example:
2x-y+6z=0to: the vectors
(a, b, c) + s(e, f, g) + t(h, i, j)So basically, my question is: how do I find the $a,b,c,s,e,f,g,t,h,i,j$ and what's the logic behind the conversion.
I found a solution from and attached the screen shot of it as an image. I'm wondering if their conversion formula is correct.
$\endgroup$2 Answers
$\begingroup$Your choices for $a,b,c,d,e,f,g,h,i$ are fairly wide open.
You need to find a point on your plane. Any point will do, there are infintely many of them.
That point will define $(a,b,c)$ Now, you need to find any two independent (non-parallel) vectors that lie in the plane. They might be perpendicular, but they don't have to be.
In the example above. $2x - y + 6z = 0$
$(0,0,0)$ is a point in the plane.
$2\cdot 0 - 1 \cdot 0 + 6\cdot 0 = 0$
$(1,2,0)$ is a vector in the plane.
That is, from any point in the plane, if we increase $x$ by $1$ and $y$ by $2$, we are still in the plane.
$(0,6,1)$ is also a vector in the plane.
And they are independent. There is no way to combine the two vectors such that
$(1,2,0)s + (0,6,1)t = \mathbf 0$ unless $s = t = 0$
$s$ and $t$ are your parameters and they stay $s$ and $t$
$(x,y,z) = (0,0,0) + (1,2,0)s + (0,6,1)t$ would be one representation.
As I said above, this is not unique. we could choose a different point in the plane, and we could choose different vectors.
$\endgroup$ $\begingroup$The short answer is to find three points on the plane, select one as a "source" and have the other two as vectors.
For $2x - y + 6z = 0$, three easy points to select are $(0, 0, 0), (3, -6, 0),$ and $(0, 6, 1)$. Call these, respectively, $P, \ Q,$ and $R$. Form vectors $\vec{PQ}$ and $\vec{PR}$ which are, respectively, $(3, -6, 0)$ and $(0, 6, 1)$. These form the directions for parameters $s$ and $t$. We can thus parameterize this plane as
$$ \mathbf{r}(s, t) = (3, -6, 0)s + (0, 6, 1)t $$
This, of course, is just one example of doing this. Remember that three non-colinear points form a plane.
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