So what's the point of linear algebra, anyway?
chittur.devPeople have written very nice books on this e.g.
> The novel approach taken here banishes determinants to the end of the book.
Big fan of this approach! Though I have warmed up to determinants ever since I saw 3Blue1Brown give a fairly intuitive explanation for them [0].
I'm kind of curious as to how they covered eigenvalues/the characteristic polynomial without determinants. Maybe they just jumped straight to diagonalization?
One does not need determinant to define eigenvalues. For example:
If T is a linear operator on vector space V, a scalar a is an eigenvalue if there is a v in V s.t. Tv = av.
This is the approach the book takes.
I agree, but the definition alone isn't sufficient to actually calculate eigenvalues. Hence the standard approach which says that for matrix A, vector v, and eigenvalue λ, we have
Which then yields the characteristic polynomial. Skipping the determinant means you need a different approach.Av = λv => Av - λv = 0 => (A - λI)v = 0 => det(A - λI) = 0You can prove many fundamental results of Linear Algebra with the definition that does not directly use determinants. In fact, one would define trace and determinant as sum and product of eigenvalues. Definition of characteristic polynomial would then follow.
If "computation" is what you are after then Av = λv is about solving a system of equations and you can try elimination, etc.