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Question

Let xk+yk=ak, a,k>0 and dydx+yx13=0, then k is


A

13

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B

32

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C

23

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D

43

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Solution

The correct option is C

23


Explanation for the correct option:

Determine the value of k

Let dydx+yx13=0(i)

Given, xk+yk=ak

Differentiate the equation with respect to x, we get

kxk-1+kyk-1dydx=0kxk-1=-kyk-1dydxdydx=-xk-1yk-1dydx=-yx1-kxy=yx-1dydx+yx1-k=0(ii)

Equating equation (i)and(ii)

dydx+yx13=dydx+yx1-kyx13=yx1-k1-k=13k=23

Hence, option (C) is the correct answer


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