Cool goIITian
let the point be P
distance of the point from (0,3) is
now this value should be minimum
thus
because
now differentiate f(y) w.r.t ' y '
u will get
Equate f'(y) = 0
y1 = 2 but the other quadratic eqn has imaginary roots
hence
P is (2,2).
)
}^{\frac{1}{2}})
%20=%20{({{y}_{1}}^{2}%20-%204{y}_{1}%20%2B%209)}^{\frac{1}{2}})
%20=%20\frac{1}{2}{({{y}_{1}}^{2}%20-%204{y}_{1}%20%2B%209)}^{\frac{-1}{2}}(2{y}_{1}%20-%204))
Moderation Team
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