so $\quad f \left(1^{-}\right)= f (1)$
$3+\sqrt{2} k = m + k ^2......(1)$
and $\quad f _{+}^1\left(1^{-}\right)= f _{-}^1\left(1^{+}\right)$
$\left.2 m x\right|_{x=1}=6 x+\left.\frac{k}{2 \sqrt{x+1}}\right|_{x=1}$
$2 m =6+\frac{ k }{2 \sqrt{2}}$
$m =3+\frac{ k }{4 \sqrt{2}}.......(2)$
$k ^2+3+\frac{ k }{4 \sqrt{2}}=3+\sqrt{2} k$
$k =\frac{7}{4 \sqrt{2}}, 0$
$m =3+\frac{7}{32}$
$m =\frac{103}{32}$
So $\quad \frac{8 f^{\prime}(8)}{f^{\prime}\left(\frac{1}{8}\right)}=8 \times \frac{\left.2 mx \right|_{ x =8}}{6 x +\left.\frac{ k }{2 \sqrt{ x +1}}\right|_{x=\frac{1}{8}}}$
$=\frac{8 \times 2 \times 8 \times \frac{103}{32}}{\frac{16}{12}}$
$=103 \times 3=309$
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