You can see issue 1-1977 from which I took the issue (page 62), here.
A larger collection is here.
2 954. Determine the real numbers $x$ for which the number
$\frac{x}{x^2-5x+7}$ is an integer.
(Matematika v Șkole)
ANSWER CiP
$x\in \{0,\;2,\;\frac{7}{3},\;3,\;\frac{7}{2}\}$
Solution CiP
If $\frac{x}{x^2-5x+7}=k\in\mathbb{Z}$ then $x$ is the root of the quadratic equation
$kx^2-(5k+1)x+7k=0 \tag{1}$
The equation (1) has the discriminant $\Delta_x=(5k+1)^2-28k^2=1+10k-3k^2$.
But $1+10k-3k^2=\frac{28}{3}-\left (\frac{25}{3}-10k+3k^2\right )=\frac{28}{3}-3\cdot \left(\frac{25}{9}-\frac{10}{3}k+k^2\right)=$
$=\frac{28}{3}-3\cdot \left (\frac{5}{3}-k\right)^2\leqslant \frac{28}{3}$, so
$\Delta_x\leqslant \frac{28}{3}\tag{2}$
For the equation (1) to have rational roots, it must be $\sqrt{\Delta_x}\in\mathbb{Q}$, in fact $\sqrt{\Delta_x}\in\mathbb{N}$. This happens if (cf. (2))
$\sqrt{\Delta_x}\in\{0,\;1,\;2,\;3\} \tag{3}$
Solving the equations $1+10k-3k^2=0\;or\;1\;or\;2\;or\;3$ we obtain the integer values
$k\in\{0,\;2,\;3\}$
for which, we obtain from the equation (1) the values of $x$ in the answer.
$\blacksquare$
Correction
My answer is incomplete, as the commenter noted.
For $x=3\pm\sqrt{2}$, the number $\frac{x}{x^2-5x+7}$ takes the value $1$, also an integer.
I wrongly assumed that $x$ is a rational number. Let's analyze the sign of $\Delta_x$.
Setting the condition $\Delta_x \geqslant 0\;\Rightarrow\; 1+10k-3k^2\geqslant 0$ which gives us the admissible values
$k\in\left ( \frac{5-\sqrt{28}}{3}\;,\;\frac{5+\sqrt{28}}{3}\right )\cap \mathbb{Z}=\{0,\;\color{Red}1,\;2,\;3\}$
Considering that the roots of the equation (1) are $x_{1,2}=\frac{5k+1\pm\sqrt{\Delta_x}}{2k}$, for $k=1$ we find $x=3\pm\sqrt{2}$, so the correct answer is
$x\in \{0,\;3-\sqrt{2},\;2,\;\frac{7}{3},\;3,\;\frac{7}{2},\;3+\sqrt{2}\}$
$\color{Red}{!!!}\square \color{Red}{!!!}$
