Correct Answer: Option A

Explanation

Voltage across shunt = Voltage across galvanometer

I\(_s\)R\(_s\) = I\(_g\)R\(_g\)

R\(_g\) = 5\(\Omega\),  I\(_g\) = 10mA = 0.01A, I\(_s\) = 2 - 0.01 = 1.99A

R\(_s\) = \(\frac{I_g \times R_g}{I_s}\) = \(\frac{0 .01 \times 5}{1.99}\) = 0.025\(\Omega\)

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