A fish is vertically below a flying bird moving vertically down towards water surface. The bird will appear to the fish to be ( assuming fish moves along the vertical joining fish and bird)

moving faster than its real speed and also away from the real distance.

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moving faster than its real speed and nearer than its real distance.

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moving slower than its real speed and also nearer than its real distance.

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moving slower than its real speed and away from the real distance.

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Solution

The correct option is A moving faster than its real speed and also away from the real distance.
$\frac{μ_{1}}{- u} + \frac{μ_{2}}{v} = \frac{μ_{2} - μ_{1}}{R}$
For a plane surface, $R = \infty$
$∴$ $\frac{μ_{1}}{- u} + \frac{μ_{2}}{v} = 0$
or $\frac{μ_{2}}{v} = \frac{μ_{1}}{u}$ or $\frac{μ}{v} = \frac{1}{u}$
or $v = μ u$
Clearly, to the fish, the bird appears farther than its actual distance.
Again, $\frac{d v}{d t} = μ \frac{d u}{d t}$
or Apparent speed of bird
$=refractive index×actual speed of bird$

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