Δ=0⇒234λ253−1μ=0
⇒2(2μ+5)+λ(−4−3μ)+3(7)=0
⇒4μ−3λμ−4λ+31=0 ...(1)
$\begin{aligned}
& \Delta_3=0 \Rightarrow\left|\begin{array}{lll}
2 & \lambda & 5 \
3 & 2 & 7 \
4 & 5 & 9
\end{array}\right|=0 \
& \Rightarrow 2(-17)+\lambda(1)+5(7)=0 \
& \Rightarrow \lambda=-1
\end{aligned}$
from equation (1)
4μ+3μ+4+31=0⇒μ=−5
∴λ2+μ2=26