Question

If length of perpendicular drawn from origin on the line `x/a + y/b = 1` is `2p`, then `a^2,8p^2,b^2` are in?

A) H.P
B) G.P
C) A.P
D) None of these

Answer 1

A) H.P. is the right option.

Explanation:

The `bot"-distance"` from the Origin `O(0,0)` to the line

`L : x/a+y/b-1=0, i.e., 2p,` is given by,

`2p=|0/a+0/b-1|/sqrt{(1/a)^2+(1/b)^2}=|ab|/sqrt(a^2+b^2)`.

`:. 4p^2=(a^2b^2)/(a^2+b^2), or, 8p^2=(2a^2b^2)/(a^2+b^2)`.

`:. 1/(8p^2)=(a^2+b^2)/(2a^2b^2)=1/2{a^2/(a^2b^2)+b^2/(a^2b^2)}, i.e.,`

`1/(8p^2)=1/2{1/a^2+1/b^2}`, meaning that, `1/a^2,1/(8p^2),1/b^2` are in AP.

Equivalently, `a^2,8p^2,b^2` are in HP.

Hence, A) H.P. is the right option.

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