Answer
Hyperbola
Foci: $( 0,\pm \sqrt 5-1)$
Vertices: $(0,\pm2-1)$
Work Step by Step
$y^{2}+2y=4x^{2}+3$
$\frac{(y+1)^{2}}{2^2}-\frac{x^{2}}{1^2}=1$, the equation of a hyperbola.
$c^{2}=4+1$
$c=\sqrt 5$
Foci: $( 0,\pm \sqrt 5)$
Vertices is: $(0,\pm2)$
If we shift the hyperbola by one unit downwards, then:
Foci: $( 0,\pm \sqrt 5-1)$
Vertices is: $(0,\pm2-1)$
