12—Tensors 358Let β=−αf(~ω 1 )
f(~ω 2 ).
With this choice then,f(α~ω 1 +β~ω 2 ) = 0, meaning that the combination is inM. But if a vector is inM, and
at the same time it perpendicular to every vector inM, then it must be the zero vector.
α~ω 1 +β~ω 2 = 0,or,~ω 2 is a constant times~ω 1. This is just the statement thatM⊥is one dimensional.
Any vector inM⊥is then of the formα~ω, and
A~.(α~ω)=(α~ω).~ωf(~ω)
|~ω|^2=
α~ω.~ωf(~ω)
|~ω|^2=αf(~ω) =f(α~ω),so the theorem is true for these vectors.
Let~v be any vector in M. By the definition ofM, f(~v) = 0. Also ~ω is perpendicular to M, so
~ω.~v= 0 =A~.~v, and you have agreement here too.
Finally,anyvector can be written as the unique sum of a vector inMand one inM⊥. This is just a matter
finding the projection of~v 1 alongM⊥and subtracting it from~vto get the vector inM.
~v=~v 1 +~v 2
f(~v) =f(~v 1 +~v 2 ) =f(~v 1 ) +f(~v 2 )
=A~.v 1 + 0
=A~.v. 2vvvM^1For an easier proof, see problem 3.
Multilinear Functionals
Functionals can be generalized to more than one variable. A bilinear functional is a scalar valued function of two
vector variables, linear in each
T(~v 1 , ~v 2 ) =a scalar
T(α~v 1 +β~v 2 , ~v 3 ) =αT(~v 1 , ~v 3 ) +βT(~v 2 , ~v 3 )
T(~v 1 , α~v 2 +β~v 3 ) =αT(~v 1 , ~v 2 ) +βT(~v 1 , ~v 3 ).