Locally finite operator

In mathematics, a linear operator ${\displaystyle f:V\to V}$ is called locally finite if the space ${\displaystyle V}$ is the union of a family of finite-dimensional ${\displaystyle f}$-invariant subspaces.^[1][2]Template:Rp

In other words, there exists a family ${\displaystyle \{V_i|i\in I\}}$ of linear subspaces of ${\displaystyle V}$, such that we have the following:

• ${\displaystyle \bigcup _{i\in I}{V}_i=V}$
• ${\displaystyle (\mathrm{\forall }i\in I)f[V_i]\subseteq V_i}$
• Each ${\displaystyle V_i}$ is finite-dimensional.

An equivalent condition only requires ${\displaystyle V}$ to be the spanned by finite-dimensional ${\displaystyle f}$-invariant subspaces.^[3][4] If ${\displaystyle V}$ is also a Hilbert space, sometimes an operator is called locally finite when the sum of the ${\displaystyle \{V_i|i\in I\}}$ is only dense in ${\displaystyle V}$.^[2]Template:Rp

• Every linear operator on a finite-dimensional space is trivially locally finite.
• Every diagonalizable (i.e. there exists a basis of ${\displaystyle V}$ whose elements are all eigenvectors of ${\displaystyle f}$) linear operator is locally finite, because it is the union of subspaces spanned by finitely many eigenvectors of ${\displaystyle f}$.
• The operator on ${\displaystyle ℂ[x]}$, the space of polynomials with complex coefficients, defined by ${\displaystyle T(f(x))=xf(x)}$, is not locally finite; any ${\displaystyle T}$-invariant subspace is of the form ${\displaystyle ℂ[x]f_0(x)}$ for some ${\displaystyle f_0(x)\in ℂ[x]}$, and so has infinite dimension.
• The operator on ${\displaystyle ℂ[x]}$ defined by ${\displaystyle T(f(x))=\frac{f(x)-f(0)}{x}}$ is locally finite; for any ${\displaystyle n}$, the polynomials of degree at most ${\displaystyle n}$ form a ${\displaystyle T}$-invariant subspace.^[5]

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