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Question

Let A=(3,4),B=(1,2) .Let P=(2k1,2k+1) be a variable point such that PA+PB is the minimum then k is

A
79
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B
0
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C
78
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D
none of these
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Solution

The correct option is C 78
Given, A=(3,4), B=(1,2), P=(2k1,2k+1)

By property of triangle, PA+PBAB

For PA+PB to be minimum, PA+PB=AB

This indicates that points A, B and C are collinear and APB
Thus, area of triangle will be zero.

∣ ∣xAyA1xByB1xPyP1∣ ∣=0

xAyB1yP1yAxB1xP1+1xByBxPyP=0

xA[yByP]yA[xBxP]+1[xByPxPyB]=0

xAyBxAyPyAxB+yAxP+xByPxPyB=0

(3×2)(3×(2k+1))(4×1)+(4(2k1))+(1(2k+1))((2k1)2)=0

6(6k+3)+48k+4+(2k+1)(4k2)=0

66k3+48k+4+2k+14k+2=0

16k+14=0

16k=14

k=1416

k=78

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