COMEDK 2024 Shift 2 Paper

To determine the points on the x-axis whose perpendicular distance from the line ‌

x

3

+‌

y

4

=1 is 4 units, we can use the formula for the perpendicular distance from a point (x1,y1) to a line Ax+By+C=0:
Distance =‌

|Ax1+By1+C|

√A2+B2

First, let's rewrite the given line equation in the standard form:
‌

x

3

+‌

y

4

=1
Multiplying through by 12 to clear the denominators, we get:
4x+3y−12=0
Now, we have the line equation in the standard form, 4x+3y−12=0. We need to find the points on the x-axis that are 4 units away from this line. Points on the x-axis have the form (x1,0), so let's use the distance formula:
‌

|4x1+3⋅0−12|

√42+32

=4
Simplifying this, we get:
‌

|4x1−12|

5

=4
Multiplying both sides by 5 , we obtain:
|4x1−12|=20
This leads to two cases:
Case 1: 4x1−12=20
Solving for x1 :
4x1=32⟹x1=8
So, one point is (8,0).
Case 2: 4x1−12=−20
Solving for x1 :
4x1=−8⟹x1=−2
So, the other point is (−2,0).
Hence, the points on the x-axis whose perpendicular distance from the line ‌

x

3

+‌

y

4

=1 is 4 units are (8,0) and (−2,0). Thus, the correct answer is:
Option A: (8,0) and (−2,0)