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Canonical Form2

This document discusses the concept of triangular form in linear algebra. It proves that if a linear transformation T has all its characteristic roots in a field F, then there exists a basis of the vector space on which T is defined such that the matrix of T in that basis is triangular.

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aruna devi.m
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52 views35 pages

Canonical Form2

This document discusses the concept of triangular form in linear algebra. It proves that if a linear transformation T has all its characteristic roots in a field F, then there exists a basis of the vector space on which T is defined such that the matrix of T in that basis is triangular.

Uploaded by

aruna devi.m
Copyright
© © All Rights Reserved
We take content rights seriously. If you suspect this is your content, claim it here.
Available Formats
Download as PDF, TXT or read online on Scribd
You are on page 1/ 35

M304T: Linear Algebra

Canonical Form
Triangular form

Dr. R. Bhuvaneswari
BMS College for Women

October 2020

RB (BMSCW) M304T October 2020 1 / 35


Lemma
If W Ă V is invariant under T , then T induces a linear
transformation T on V {W defined by

pv ` W qT “ vT ` W for v P V .

If T satisfies a polynomial qpx q in F rx s then so does T .


((i.e) T also satisfies qpx q).
If p1 px q is a minimal polynomial for T over F and ppx q is a minimal
polynomial for T over F , then

p1 px q|ppx q.

RB (BMSCW) M304T October 2020 2 / 35


Proof:
Let V “ V {W .
The elements of V are the cosets v ` W of W in V .
Given v P V , v “ v ` W for some v P V .
Define T : V Ñ V by
v T “ vT ` W

for v “ v ` W P V .
Now we prove that T is a linear transformation on V .

RB (BMSCW) M304T October 2020 3 / 35


T is well-defined:
Let v 1 “ v1 ` W and v 2 “ v2 ` W be two elements in
V such that v 1 “ v 2 .

ùñ v1 ` W “ v2 ` W
ùñ v1 ´ v2 P W
ùñ pv1 ´ v2 qT P WT Ă W p7 W is invariant under T q
ùñ v1 T ´ v2 T P W
ùñ v1 T ` W “ v2 T ` W
ùñ v 1 T “ v 2 T .

Thus T is well-defined.

RB (BMSCW) M304T October 2020 4 / 35


T is a linear transformation:
Let v 1 “ v1 ` W and v 2 “ v2 ` W be two elements in
V . Then

pv 1 ` v 2 qT “ pv1 ` W ` v2 ` W qT
“ pv1 ` v2 ` W qT
“ pv1 ` v2 qT ` W
“ v1 T ` v2 T ` W p7 T is linearq
“ v1 T ` W ` v2 T ` W
“ v 1T ` v 2T .

Thus T preserves addition.

RB (BMSCW) M304T October 2020 5 / 35


For α P F and Let v “ v ` W P V ,

pαv qT “ pαv ` W qT
“ pαv qT ` W
“ vT α ` W p7 T is linearq
“ pvT ` W qα
“ v T α.

Thus T preserves scalar multiplication.


Hence T is a linear transformation on V .

RB (BMSCW) M304T October 2020 6 / 35


Now we prove that for any polynomial qpx q P F rx s, qpT q “ qpT̄ q.
Let v “ v ` W P V . Then

v̄ T 2 “ vT 2 ` W
“ pvT qT ` W
“ pvT ` W qT
“ pv T qT
2
“ vT .

Therefore,
T 2 “ pT q2 .

RB (BMSCW) M304T October 2020 7 / 35


Similarly, we can get
T k “ pT qk

for any integer k ě 0.


Let qpx q “ a0 ` a1 x ` a1 x 2 ` . . . ` ak x k P F rx s. Then

qpT q “ a0 ` a1 T ` a1 xT 2 ` . . . ` ak T k

ùñ qpT̄ q “ a0 ` a1 T̄ ` a1 pT̄ q2 ` . . . ` ak pT̄ qk

ùñ qpT̄ q “ a0 ` a1 T̄ ` a1 T 2 ` . . . ` ak T k

ùñ qpT̄ q “ qpT q.

RB (BMSCW) M304T October 2020 8 / 35


If T satisfies a polynomial qpx q P F rx s then qpT q “ 0 implies that

qpT̄ q “ qpT q “ 0 “ 0.

Thus T̄ also satisfies qpx q.


Given : p1 px q is the minimal polynomial for T over F and ppx q is the
minimal polynomial for T over F .
Then p1 pT q “ 0 and ppT q “ 0.

RB (BMSCW) M304T October 2020 9 / 35


Since ppT q “ 0, we have ppT̄ q “ 0.
Note that p1 px q is the minimal polynomial for T̄ and ppT̄ q “ 0.
Thus p1 px q|ppx q.

RB (BMSCW) M304T October 2020 10 / 35


Note
All the characteristic roots of T which lie in F are roots of the
minimal polynomial of T over F .

Therefore, We say that all the characteristic roots of T are in F if all


the roots of the minimal polynomial of T over F lie in F .

RB (BMSCW) M304T October 2020 11 / 35


Theorem
If T P ApV q has all its characteristic roots in F , then there is a basis
of V in which the matrix of T is triangular.

Proof: We prove this theorem by induction on the dimension of V


over F .
If dimpV q “ 1, then every element in ApV q is a scalar, and so the
theorem is true.
Assume that the theorem is true for all vector spaces over F of
dimension n ´ 1.

RB (BMSCW) M304T October 2020 12 / 35


Let V be a vector space of dimension n over F .
Let the linear transformation T on V has all its characteristic roots
in F .
We will prove that there is a basis of V in which matrix of T is
triangluar.

RB (BMSCW) M304T October 2020 13 / 35


Let λ1 P F be a characteristic root of T .
Then there exists a nonzero vector v1 in V such that

v1 T “ λ1 v1 .

Let W “ tαv1 : α P F u.
Then W is a one-dimensional subspace of V generated by v1 .
Note that WT Ă W .
Therefore, W is invariant under T .

RB (BMSCW) M304T October 2020 14 / 35


Let V “ V {W . Then

dimpV q “ dimpV q ´ dimpW q “ n ´ 1.

By the above lemma, the linear transformation T on V induces a


linear transformation T on V̄ defined by

pv ` W qT̄ “ vT ` W

such that the minimal polynomial of T̄ divides the minimal


polynomial of T .

RB (BMSCW) M304T October 2020 15 / 35


Given all the characteristic roots of T are in F .
Then all the roots of minimal polynomial for T lie in F .
Thus all the roots of minimal polynomial for T̄ (which are roots of
minimal polynomial of T ) lie in F and hence all the characteristic
roots of T̄ also lie in F .
Since dimpV̄ q “ n ´ 1 and the linear transformation T̄ on V̄ has all
its roots in F , by induction hypothesis, there exists a basis
v 2 , v 3 , ¨ ¨ ¨ , v n of V̄ over F such that the matrix of T̄ in the basis is
triangular.

RB (BMSCW) M304T October 2020 16 / 35


Further

v 2 T “ α22 v 2
v 2 T “ α32 v 2 ` α33 v 3
..
.
v i T “ αi2 v 2 ` αi3 v 3 ` ¨ ¨ ¨ ` αii v i
..
.
v n T “ αn2 v 2 ` αn3 v 3 ` ¨ ¨ ¨ ` αnn v n

RB (BMSCW) M304T October 2020 17 / 35


Since v i P V̄ “ V {W , D vi P V such that v i “ vi ` W .
Let v2 , v3 , . . . , vn be the elements of V mapping into v 2 , v 3 , ¨ ¨ ¨ , v n
respectively.
claim: v1 , v2 , . . . , vn is a basis for V .
Let α1 v1 ` α2 v2 ` . . . ` αn vn “ 0 where αi P F .
Then
W “ 0 ` W “ pα1 v1 ` α2 v2 ` . . . ` αn vn q ` W

ùñ α1 pv1 ` W q ` α2 pv2 ` W q ` . . . ` αn pvn ` W q “ W

(ie) α2 v 2 ` . . . ` αn v n “ 0 “ W , the zero element of V {W .


( Note that α1 v1 P W .)

RB (BMSCW) M304T October 2020 18 / 35


Since v 2 , v 3 , ¨ ¨ ¨ , v n form a basis for V over F , we have

α2 “ 0, α3 “ 0, . . . , αn “ 0.

Now α1 v1 ` α2 v2 ` . . . ` αn vn “ 0 implies that

α1 v1 “ 0

Since v1 ‰ 0, we get α1 “ 0.

RB (BMSCW) M304T October 2020 19 / 35


Thus α1 v1 ` α2 v2 ` . . . ` αn vn “ 0 implies

α1 “ 0, α2 “ 0, . . . , αn “ 0.

Hence v1 , v2 , . . . , vn is linearly independent vectors in V .


Since dimpV q “ n, v1 , v2 , . . . , vn forms a basis for V over F .
Now we prove that in this basis the matrix of T is triangular.

RB (BMSCW) M304T October 2020 20 / 35


Since v 2 T “ α22 v 2 , we have

v2 T ` W ´ α22 pv2 ` W q “ 0

ùñ v2 T ´ α22 v2 P W

Since the elements of W are scalar multiples of v1 , we have

v2 T ´ α22 v2 “ α21 v1

for some α21 P F .


6, v2 T “ α21 v1 ` α22 v2

RB (BMSCW) M304T October 2020 21 / 35


Similarly,in general, for any i ě 2,

v i T “ αi2 v 2 ` αi3 v 3 ` ¨ ¨ ¨ ` αii v i

implies that

vi T ´ αi2 v2 ´ αi3 v3 ´ . . . ´ αii vi P W

ùñ vi T ´ αi2 v2 ´ αi3 v3 ´ . . . ´ αii vi “ αi1 v1

for αi1 P F .

ùñ vi T “ αi1 v1 ` αi2 v2 ` αi3 v3 ` . . . ` αii vi

RB (BMSCW) M304T October 2020 22 / 35


Since W is invariant under T , v1 P W ùñ v1 T P W

ùñ v1 T “ α11 v1

Thus v1 , v2 , . . . , vn is a basis of V such that

v1 T “ α11 v1
v2 T “ α21 v1 ` α22 v2
..
.
vi T “ αi1 v1 ` αi2 v2 ` ¨ ¨ ¨ ` αii vi
..
.
vn T “ αn1 v1 ` αn2 v2 ` ¨ ¨ ¨ ` αnn vn

RB (BMSCW) M304T October 2020 23 / 35


That is, vi T is a linear combination only of vi and its predecessors in
the basis.
Thus the matrix of T in this basis v1 , v2 , . . . , vn is triangular.
Therefore, the theorem is true for any vector space V of dimension n.
Hence the theorem is true for any finite dimensional vector space.

RB (BMSCW) M304T October 2020 24 / 35


Above theorem in terms of matrices.
Theorem
Suppose the matrix A P Fn has all its characteristic roots in F . Then
there is a matrix C P Fn such that CAC ´1 is a triangular matrix.

Proof: Assume the matrix A P Fn has all its characteristic roots in F .


Then A defines a linear transformation T in F pnq whose matrix in the
basis

v1 “ p1, 0, 0, ¨ ¨ ¨ , 0q, v2 “ p0, 1, 0, ¨ ¨ ¨ , 0q, ¨ ¨ ¨ , vn “ p0, 0, 0, ¨ ¨ ¨ , 1q

is precisely A.

RB (BMSCW) M304T October 2020 25 / 35


Note that the characteristic roots of T are the characteristic root of
A.
Therefore, all the characteristic roots of T are in F .
By the above theorem, there is a basis of F pnq in which the matrix of
T , mpT q is triangular.
Thus A is a matrix of T in one basis and mpT q is a matrix of T in
another basis.
By change of basis theorem, there exists an invertible matrix C P Fn
such that
mpT q “ CAC ´1 .

Thus there exists C P Fn such that CAC ´1 is triangular.

RB (BMSCW) M304T October 2020 26 / 35


Note
If a linear transformation T (or a matrix A) is brought to triangular
form over F , then the characteristic roots of T (or A) are the main
diagonal entries on the triangular form.

RB (BMSCW) M304T October 2020 27 / 35


Caylety Hamilton Theorem

Theorem
If V is an n´ dimensional vector space over F and if T P ApV q has
all its characteristic roots in F , then T satisfies a polynomial of
degree n over F .

Proof: Since T has all its characteristic roots in F , we can find a


basis v1 , v2 , . . . , vn is a basis of V over F in which matrix of T is
triangular.

RB (BMSCW) M304T October 2020 28 / 35


That is, we can find a basis v1 , v2 , . . . , vn of V over F such that

v1 T “ α11 v1
v2 T “ α21 v1 ` α22 v2
..
.
vi T “ αi1 v1 ` αi2 v2 ` ¨ ¨ ¨ ` αii vi
..
.
vn T “ αn1 v1 ` αn2 v2 ` ¨ ¨ ¨ ` αnn vn

We know that in triangular form, the characteristic roots are the


entries in the main diagonal.

RB (BMSCW) M304T October 2020 29 / 35


Let λ1 , λ2 , ¨ ¨ ¨ , λn be the characteristic roots of T . Then λi “ aii for
each i “ 1 to n.
Therefore, we get

v 1 T “ λ1 v 1
v2 T “ α21 v1 ` λ2 v2
..
.
vi T “ αi1 v1 ` αi2 v2 ` ¨ ¨ ¨ ` αipi´1q vi´1 ` λi vi
..
.
vn T “ αn1 v1 ` αn2 v2 ` ¨ ¨ ¨ ` αn1 pn ´ 1qvn´1 ` λn vn

RB (BMSCW) M304T October 2020 30 / 35


Which implies that

v1 T ´ λ1 v1 “ 0
pi.eqv1 pT ´ λ1 q “ 0
v2 pT ´ λ2 q “ α21 v1
..
.
vi pT ´ λi q “ αi1 v1 ` αi2 v2 ` ¨ ¨ ¨ ` αipi´1q vi´1
..
.
vn pT ´ λn q “ αn1 v1 ` αn2 v2 ` ¨ ¨ ¨ ` αn1 pn ´ 1qvn´1

RB (BMSCW) M304T October 2020 31 / 35


Since v1 pT ´ λ1 q “ 0, we have

v2 pT ´ λ2 qpT ´ λ1 q “ α21 v1 pT ´ λ1 q “ 0.

We know that

pT ´ λ1 qpT ´ λ2 q “ pT ´ λ2 qpT ´ λ1 q

Therefore,

v1 pT ´ λ2 qpT ´ λ1 q “ v1 pT ´ λ1 qpT ´ λ2 q “ 0

RB (BMSCW) M304T October 2020 32 / 35


Continuing this procedure, we get for i “ 1 to n,

v1 pT ´ λi qpT ´ λi´1 q ¨ ¨ ¨ pT ´ λ1 q “ 0
v2 pT ´ λi qpT ´ λi´1 q ¨ ¨ ¨ pT ´ λ1 q “ 0
....
..
vi pT ´ λi qpT ´ λi´1 q ¨ ¨ ¨ pT ´ λ1 q “ 0

For i “ n, the matrix S “ pT ´ λn qpT ´ λn´1 q ¨ ¨ ¨ pT ´ λ1 q satisfies


v1 S “ v2 S “ . . . “ vn S “ 0.

RB (BMSCW) M304T October 2020 33 / 35


Therefore, S annihilates all the vectors in the basis of V and so S
must annihilate all elements of V .
That is vS “ 0 for all v P V .
ùñ S “ 0.
Let ppx q “ px ´ λ1 qpx ´ λ2 q ¨ ¨ ¨ px ´ λn q P F rx s be a polynomial of
degree n.
Then ppT q “ S “ 0.
Thus T satisfies a polynomial of degree n over F .

RB (BMSCW) M304T October 2020 34 / 35


Remark
Not every linear transformation on V over F has all its characteristic
roots in F .

It depends on the field F .


For example, if F “ R, then then minimal polynomial of
« ff
0 1
´1 0

over F is x 2 ` 1 has no roots in F .


So in general we can not assume all characteristic roots of T P ApV q
lie in F .

RB (BMSCW) M304T October 2020 35 / 35

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