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Question

The equation of a line touching the curve y=be−x/a at a point where it crosses the y-axis is .

A
xa+yb=1
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B
xb+ya=1
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C
xayb=1
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D
xbya=1
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Solution

The correct option is A xa+yb=1
The equation of the given curve is y=bex/a .....[1]
It crosses the y-axis at the point, where x = 0. Putting x = 0 in [1] we get: y = b.
So, the point of contact is (0, b).
Differentiating [1] w.r.t. x, we get
dydx=bex/addx(xa)dydx=baex/a(dydx)(0, b)=bae0=baThe equation of the tangent at (0, b) is yb=(dydx)(0, b)(xa)yb=ba(x0)ayab=bxbx+ay=abxa+yb=1.

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