Find the image of the point P-2- - 3- 1- about the line x-12-y-33-z-2-1 -1- -3- 2- -587-3614 -4014 - 587-3614 -4014 - -587-3614 - 4014 -

You visited us 3 times! Enjoying our articles? Unlock Full Access!

Find the imag...

Question

Find the image of the point $P (2, - 3, 1)$ about the line
$\frac{x + 1}{2} = \frac{y - 3}{3} = \frac{z + 2}{- 1}$

$(1, - 3, 2)$

No worries! We‘ve got your back. Try BYJU‘S free classes today!

$(\frac{- 58}{7}, \frac{36}{14}, \frac{- 40}{14})$

Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses

$(\frac{58}{7}, \frac{36}{14}, \frac{- 40}{14})$

No worries! We‘ve got your back. Try BYJU‘S free classes today!

$(\frac{- 58}{7}, \frac{36}{14}, \frac{40}{14})$

No worries! We‘ve got your back. Try BYJU‘S free classes today!

Open in App

Solution

The correct option is B
$(\frac{- 58}{7}, \frac{36}{14}, \frac{- 40}{14})$

We know that midpoint of P and I (image) will be the foot of the perpendicular Q. We can find the coordinates of I if we know the coordinates of P and Q.

Finding foot of the perpendicular :

Given line is
$\frac{x + 1}{2} = \frac{y - 3}{3} = \frac{z + 2}{- 1} = r$ ...(1)

Point $P \equiv (2, - 3, 1)$

Co-ordinates of foot of the perpendicular on line (1) may be taken as
$Q \equiv (2 r - 1, 3 r + 3, - r - 2)$

We get direction ratios of $P Q \equiv 2 r - 3, 3 r + 6, - r - 3$

Direction ratios of line segment are $2, 3, - 1$ (from (1))

Since PQ perpendicular to AB

$∴ 2 (2 r - 3) + 3 (3 r + 6) - 1 (- r - 3) = 0$

or, $14 r + 15 = 0$

$∴ r = \frac{- 15}{14}$

$∴ Q \equiv (2 r - 1, 3 r + 3, - r - 2$
$\Rightarrow Q \equiv (\frac{- 22}{7}, \frac{- 3}{14}, \frac{- 13}{14})$

Let the coordinates of I be $(x, y, z)$ .
Midpoint of P and I $Q \equiv (\frac{x + 2}{2}, \frac{y - 3}{2}, \frac{z + 1}{2}) = \frac{- 22}{7}, \frac{- 3}{14}, \frac{- 13}{14} \Rightarrow \frac{x + 2}{2} = \frac{- 22}{7}, \frac{y - 3}{2} = \frac{- 3}{14}, \frac{z + 1}{2} = \frac{- 13}{14} \Rightarrow x = \frac{- 58}{7}, y = \frac{36}{14}, z = \frac{- 40}{14}$

Suggest Corrections

Similar questions

Q. Find the angle between the following pairs of lines:
(i)

\frac{x + 4}{3} = \frac{y - 1}{5} = \frac{z + 3}{4} and \frac{x + 1}{1} = \frac{y - 4}{1} = \frac{z - 5}{2}

(ii)

\frac{x - 1}{2} = \frac{y - 2}{3} = \frac{z - 3}{- 3} and \frac{x + 3}{- 1} = \frac{y - 5}{8} = \frac{z - 1}{4}

(iii)

\frac{5 - x}{- 2} = \frac{y + 3}{1} = \frac{1 - z}{3} and \frac{x}{3} = \frac{1 - y}{- 2} = \frac{z + 5}{- 1}

(iv)

\frac{x - 2}{3} = \frac{y + 3}{- 2}, z = 5 and \frac{x + 1}{1} = \frac{2 y - 3}{3} = \frac{z - 5}{2}

(v)

\frac{x - 5}{1} = \frac{2 y + 6}{- 2} = \frac{z - 3}{1} and \frac{x - 2}{3} = \frac{y + 1}{4} = \frac{z - 6}{5}

(vi)

\frac{- x + 2}{- 2} = \frac{y - 1}{7} = \frac{z + 3}{- 3} and \frac{x + 2}{- 1} = \frac{2 y - 8}{4} = \frac{z - 5}{4}

Find the image of the point $P (2, - 3, 1)$ about the line
$\frac{x + 1}{2} = \frac{y - 3}{3} = \frac{z + 2}{- 1}$

Image of a point P(2, -3, 1 ) with respect to line L is I. Find the coordinates of I, if foot of the perpendicular of P with respect to L is $(\frac{- 22}{7}, \frac{- 3}{14}, \frac{- 13}{14})$

Find the image of the point $P (2, - 3, 1)$ about the line
$\frac{x + 1}{2} = \frac{y - 3}{3} = \frac{z + 2}{- 1}$

The equation of the plane through the point $(2, - 1, - 3)$ and parallel to the lines $\frac{x - 1}{2} = \frac{y + 2}{3} = \frac{z}{- 4} and \frac{x}{2} = \frac{y - 1}{- 3} = \frac{z - 2}{2}$ is

Join BYJU'S Learning Program

Explore more

Standard XII Mathematics

Join BYJU'S Learning Program

Find the image of the point P(2,−3,1) about the line x+12=y−33=z+2−1

Find the image of the point $P (2, - 3, 1)$ about the line
$\frac{x + 1}{2} = \frac{y - 3}{3} = \frac{z + 2}{- 1}$