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Question

The approximate value of square root of 25.2 is


A

5.01

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B

5.02

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C

5.03

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D

5.04

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Solution

The correct option is B

5.02


Let f (x) = x
Now, f(x+δ x)f(x)=f(x).δ x=δx2x
We may write, 25.2 = 25 + 0.2
Taking x = 25 and δx=0.2 We have
f(25.2)f(25)=0.2225=0.02f(25.2)=f(25)+0.02=25+0.02=5.02(25.2)=5.02


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