The special linear group of invertible matrices is defined as the kernel of the determinant of the map:
$$\det:GL(n,\mathbb{R}) \mapsto \mathbb{R}^*$$
In my mind the kernel of a linear map is the set of vectors that are mapped to the zero vector. So the map above would contain all the matrices that have determinant zero (which doesn't make sense since the codomain of the function excludes zero)? But isn't the special linear group made of matrices with determinant 1?
Best Answer
But $\det$ is not a linear map. It is a group homomorphism. Its kernel is$$\left\{M\in GL(n,\Bbb R)\,\middle|\,\det(M)=1\right\},$$since $1$ is the identity element of $\bigl(\Bbb R\setminus\{0\},\times\bigr)$.