1
$\begingroup$

If we have two skew lines in $\mathbb R^3$, $\vec r_{1} = \vec a + \lambda\vec d_1$ and $\vec r_{2} = \vec b + \mu\vec d_2$ then at their closest point, the difference vector $\vec r_2 - \vec r_1$ is perpendicular to both $\vec r_1$ and $\vec r_2$, so:

$(\vec r_2 - \vec r_1) \cdot \vec d_1 = 0$

$(\vec r_2 - \vec r_1) \cdot \vec d_2 = 0$

from which we have two eqns in $\lambda$ and $\mu$ which we can solve to find the required minimum $\vec r_2 - \vec r_1$.

Is this reasoning correct ?

3 Answers 3

3

I would have said that the difference vector $\vec{r_2} - \vec{r_1}$ must be perpendicular to both $\vec{d_1}$ and $\vec{d_2},$ which is why it is a multiple of $\vec{d_1} \times \vec{d_2}.$

2

Yes, your reasoning is correct.

Since the difference between the closest points is perpendicular to both $\vec{d_1}$ and $\vec{d_2}$ (that is, parallel to $\vec{d_1}\times\vec{d_2}$), we get $ \vec{b} - \vec{a} = \lambda\;\vec{d_1} - \mu\;\vec{d_2} + \nu\;\vec{d_1}\times\vec{d_2} $ Taking the dot product with $\vec{d_1}$ and $\vec{d_2}$ yields two equations in two unknowns $\begin{align} (\vec{b}-\vec{a})\cdot\vec{d_1}&=\lambda\;\vec{d_1}\cdot\vec{d_1} - \mu\;\vec{d_2}\cdot\vec{d_1}\\ (\vec{b}-\vec{a})\cdot\vec{d_2}&=\lambda\;\vec{d_1}\cdot\vec{d_2} - \mu\;\vec{d_2}\cdot\vec{d_2} \end{align} $ As long as $\vec{d_1}$ is not parallel to $\vec{d_2}$, these equations can be solved for $\lambda$ and $\mu$.

  • 0
    @j.c.: fixed. Thanks.2014-01-30
0

Normalized vector perpendicular to both lines: $ \vec{n} = {\vec{d_1} \times \vec{d_2} \over \|\vec{d_1} \times \vec{d_2}\|} $

shortest distance between the two lines: $ \mid{(\vec{a} - \vec{b}) \cdot \vec{n}}\mid $