14-240/Tutorial-December 2: Difference between revisions

DBN: Classes: 2014-15: 14-240 / Navigation Welcome to Math 240! (additions to this web site no longer count towards good deed points) # Week of... Notes and Links 1 Sep 8 About This Class, What is this class about? (PDF, HTML), Monday, Wednesday 2 Sep 15 HW1, Monday, Wednesday, TheComplexField.pdf,HW1_solutions.pdf 3 Sep 22 HW2, Class Photo, Monday, Wednesday, HW2_solutions.pdf 4 Sep 29 HW3, Wednesday, Tutorial, HW3_solutions.pdf 5 Oct 6 HW4, Monday, Wednesday, Tutorial, HW4_solutions.pdf 6 Oct 13 No Monday class (Thanksgiving), Wednesday, Tutorial 7 Oct 20 HW5, Term Test at tutorials on Tuesday, Wednesday 8 Oct 27 HW6, Monday, Why LinAlg?, Wednesday, Tutorial 9 Nov 3 Monday is the last day to drop this class, HW7, Monday, Wednesday, Tutorial 10 Nov 10 HW8, Monday, Tutorial 11 Nov 17 Monday-Tuesday is UofT November break 12 Nov 24 HW9 13 Dec 1 Wednesday is a "makeup Monday"! End-of-Course Schedule, Tutorial F Dec 8 The Final Exam Register of Good Deeds Add your name / see who's in!

Boris

Theorem

Let ${\displaystyle A}$ be a ${\displaystyle n\times n}$ matrix and ${\displaystyle B}$ be the matrix ${\displaystyle A}$ with two rows interchanged. Then ${\displaystyle det(A)=-det(B)}$. Boris decided to prove the following lemma first:

Lemma 1

Let ${\displaystyle A}$ be a ${\displaystyle n\times n}$ matrix and ${\displaystyle B}$ be the matrix ${\displaystyle A}$ with two adjacent rows interchanged. Then ${\displaystyle det(A)=-det(B)}$.

All we need to show is that ${\displaystyle det(A)+det(B)=0}$. Assume that ${\displaystyle B}$ is the matrix ${\displaystyle A}$ with rows ${\displaystyle i,i+1}$ of ${\displaystyle A}$ interchanged. Since the determinant of a matrix with two identical rows is ${\displaystyle 0}$, then:

${\displaystyle det(A)+det(B)=}$

${\displaystyle det{\begin{pmatrix}...\\A_{i}\\A_{i+1}\\...\end{pmatrix}}+det{\begin{pmatrix}...\\A_{i+1}\\A_{i}\\...\end{pmatrix}}=}$

${\displaystyle det{\begin{pmatrix}...\\A_{i}\\A_{i}\\...\end{pmatrix}}+det{\begin{pmatrix}...\\A_{i}\\A_{i+1}\\...\end{pmatrix}}+det{\begin{pmatrix}...\\A_{i+1}\\A_{i+1}\\...\end{pmatrix}}+det{\begin{pmatrix}...\\A_{i+1}\\A_{i}\\...\end{pmatrix}}}$.

Since the determinant is linear in each row, then we continue where we left off:

${\displaystyle det(A)+det(B)=}$

${\displaystyle det{\begin{pmatrix}...\\A_{i}\\A_{i}\\...\end{pmatrix}}+det{\begin{pmatrix}...\\A_{i}\\A_{i+1}\\...\end{pmatrix}}+det{\begin{pmatrix}...\\A_{i+1}\\A_{i+1}\\...\end{pmatrix}}+det{\begin{pmatrix}...\\A_{i+1}\\A_{i}\\...\end{pmatrix}}=}$

${\displaystyle det{\begin{pmatrix}...\\A_{i}\\A_{i}+A_{i+1}\\...\end{pmatrix}}+det{\begin{pmatrix}...\\A_{i+1}\\A_{i}+A_{i+1}\\...\end{pmatrix}}=det{\begin{pmatrix}...\\A_{i}+A_{i+1}\\A_{i}+A_{i+1}\\...\end{pmatrix}}=0}$.

Then ${\displaystyle det(A)+det(B)=0}$ and ${\displaystyle det(A)=-det(B)}$. The proof of the lemma is complete.

For the proof of the theorem, assume that ${\displaystyle B}$ is the matrix ${\displaystyle A}$ with row ${\displaystyle i}$ of ${\displaystyle A}$ interchanged with row ${\displaystyle j}$ of ${\displaystyle A}$ and that ${\displaystyle i\neq j}$. By Lemma 1, we have the following:

${\displaystyle det(A)=}$

${\displaystyle (-1)det{\begin{pmatrix}...\\A_{(}i+1)\\A_{i}\\...\\A_{j}\\...\end{pmatrix}}=det{\begin{pmatrix}...\\A_{i}\\A_{i+1}\\...\\A_{j}\\...\end{pmatrix}}=(-1)det{\begin{pmatrix}...\\A_{i+1}\\A_{i}\\...\\A_{j}\\...\end{pmatrix}}=}$

${\displaystyle (-1)^{j-i}det{\begin{pmatrix}...\\A_{i+1}\\...\\A_{j}\\A_{i}\\...\end{pmatrix}}=(-1)^{j-i}(-1)^{j-i-1}det{\begin{pmatrix}...\\A_{j}\\A_{i+1}\\...\\A_{i}\\...\end{pmatrix}}=}$

${\displaystyle (-1)^{2(j-i)-1}det{\begin{pmatrix}...\\A_{j}\\A_{i+1}\\...\\A_{i}\\...\end{pmatrix}}=(-1)^{-1}det{\begin{pmatrix}...\\A_{j}\\A_{i+1}\\...\\A_{i}\\...\end{pmatrix}}=(-1)det{\begin{pmatrix}...\\A_{j}\\A_{i+1}\\...\\A_{i}\\...\end{pmatrix}}=}$

${\displaystyle -det(B)}$.

Then the proof of the theorem is complete.

Nikita