Answer
$\bf{Option \ (D)}$
Work Step by Step
1) The graph of the quadratic function $f(x) = ax^2+bx+c$ is a parabola that opens:
(a) Upward when $a \gt 0$ and its vertex has a minimum value.
(b) Downward when $a \lt 0$ and its vertex has a maximum value.
On comparing $f(x)=x^2+2x+2$ with $f(x) = ax^2+bx+c$, we get: $a=1, b=2,c=2; a \gt 0$. We can see that the given function shows a graph of a parabola that opens upward.
2) The coordinates of the vertex of a quadratic function $f(x) = ax^2+bx+c$ are given by: $\displaystyle(\frac{-b}{2a}, f(-\frac{2}{a}))$
Therefore, the coordinates of the function's vertex can be expressed as: $\displaystyle(\frac{-(2)}{2(1)}, f(-\frac{2}{2(1)})) $
The minimum value is: $f(-1)=(-1)^2+(2)(-1)+2=1$
Thus, the parabola that opens upward and whose vertex is at $(-1,1)$ matches with $\bf{Option \ (D)}$.