Given two straight lines $$y=m_1x+c$$ and $$y=m_2x+d$$
When two lines are perpendicular to each other the product of their gradients, $m_1m_2=-1.$
How can I show that $$m_1m_2=-1?$$
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How do you define perpendicular? ... since that's what we have to show. – Eric Towers Mar 28 '18 at 12:42
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crossing each other at right angle in a plane – Mar 28 '18 at 12:43
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By direction vectors
- $y=m_1x+c\implies v=(1,m_1)$
- $y=m_2x+c\implies w=(1,m_2)$
then by dot product
$$v\cdot w = 1+m_1m_2=0\implies m_1m_2=-1$$
Or as an alternative
- $m_1= \tan \theta_1$
- $m_2= \tan \theta_2=\tan (\theta_1+\pi/2)= -\cot \theta_1=-\frac 1 {\tan \theta_1}$
then
$$m_1m_2=\tan \theta_1\left(-\frac 1 {\tan \theta_1}\right)=-1$$
user
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Can you by any chance show it using general secondary school maths, and not using vector? – Mar 28 '18 at 12:44
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The angle $\theta$ between 2 lines is given by $$\tan(\theta)=|\frac{m_1-m_2}{1+m_1m_2}|$$ Suppose $m_1m_2\ne -1$, then $\tan(\theta)$ is defined and hence $\theta$ is not $90^{\circ}$ which is a contradiction. Thus we must have $m_1m_2=-1$.
Jim Haddocc
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@Landuros one could go by contradiction. Suppose $m_1m_2 \ne -1$, then the angle between the points is not $90^{\circ}$ – Jim Haddocc Mar 28 '18 at 12:48
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Let $l_1$ denote the first line $y = m_1x+c$, and let $l_2$ denote the second line $y = m_2x+d$. Whether these two lines are perpendicular or not depends only on their slopes, so in the following, we may set $c=d=0$.
Let $P=(x_1,y_1)$ and $Q=(x_2,y_2)$ be two points on the line $l_1$. Then $$m_1 = \frac{y_2-y_1}{x_2-x_1}.$$ Assume that the two lines are perpendicular. Then $P' = (-y_1,x_1)$ and $Q'=(-y_2,x_2)$ are points on the line $l_2$ (the points have been rotated $90^{\circ}$ counter-clockwise about the origin).
The slope of line $l_2$ is then seen to be $$m_2 = \frac{x_2-x_1}{-y_2-(-y_1)}=\frac{x_2-x_1}{y_1-y_2} = -1/m_1.$$ Thus $$m_1m_2 = -1.$$
Mankind
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Think about rotating line $y=m_1x+c$ 90° clockwise about the origin. This will result in $x$ becoming $-y$ and $y$ becoming $x$ so the equation of the rotated line will be $-x=m_1y+c$ or $y=-\frac{1}{m_1}x-\frac{c}{m_1}$.
Vasili
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Similar to Gimusi's answer, hopefully a bit different :
$y=m_1x +c_1$, or
$m_1x -y+c_1=0$.
Normal to $f(x,y) = m_1x-y +c_1=0:$
$\vec n = (m_1, -1,0)$
Line with direction vector $\vec n$:
$\vec r (t) =t \vec n + \vec r_0$.
Let $\vec r_0=(0,0,0)$.
$x(t)= t m_1, y(t)= -t1 $.
$y = -x/m_1.$
Peter Szilas
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