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Question

Let xk+yk=ak,(a,k>0) and dydx+(yx)13=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
xk+yk=akkxk1+kyk1dydx=0dydx=(xy)k1dydx+(yx)1k=01k=13k=23

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