Today we will talk about:
Definition. A vector $x \ne 0$ is called an eigenvector of a square matrix $A$ if there exists a number $\lambda$ such that
$$ Ax = \lambda x. $$
The number $\lambda$ is called an eigenvalue.
The name eigenpair is also used.
Since $A - \lambda I$ should have a non-trivial kernel, eigenvalues are the roots of the characteristic polynomial
$$ \det (A - \lambda I) = 0.$$
If matrix $A$ of size $n\times n$ has $n$ eigenvectors $s_i$, $i=1,\dots,n$: $$ As_i = \lambda_i s_i, $$ then this can be written as $$ A S = S \Lambda, \quad\text{where}\quad S=(s_1,\dots,s_n), \quad \Lambda = \text{diag}(\lambda_1, \dots, \lambda_n), $$ or equivalently $$ A = S\Lambda S^{-1}. $$ This is called eigendecomposition of a matrix. Matrices that can be represented by their eigendecomposition are called diagonalizable.
What classes of matrices are diagonalizable?
Simple example can be matrices with all different eigenvalues. More generally, matrix is diagonalizable iff algebraic multiplicity of each eigenvalue (mutiplicity of eigenvalue in the characteristic polynomial) is equal to its geometric multiplicity (dimension of eigensubspace).
For our purposes the most important class of diagonalizable matrices is the class of normal matrices:
$$AA^* = A^* A.$$
You will learn how to prove that normal matrices are diagonalizable after a few slides (Schur decomposition topic).
$$ H \psi = E \psi, $$
where $E$ is the ground state energy, $\psi$ is called wavefunction and $H$ is the Hamiltonian.
A typical computation of eigenvectors / eigenvectors is for studying
from IPython.display import YouTubeVideo
YouTubeVideo("xKGA3RNzvKg")
One of the most famous eigenvectors computation is the Google PageRank.
It is not actively used by Google nowadays, but it was one of the main features in its early stages. The question is how do we rank webpages, which one is important, and which one is not.
All we know about the web is which page refers to which. PageRank is defined by a recursive definition. Denote by $p_i$ the importance of the $i$-th page. Then we define this importance as an average value of all importances of all pages that refer to the current page. It gives us a linear system
$$
p_i = \sum_{j \in N(i)} \frac{p_j}{L(j)},
$$
where $L(j)$ is the number of outgoing links on the $j$-th page, $N(i)$ are all the neighbours of the $i$-th page. It can be rewritten as
$$
p = G p, \quad G_{ij} = \frac{1}{L(j)}
$$
or as an eigenvalue problem
$$ Gp = 1 p, $$
i.e. the eigenvalue $1$ is already known. Note that $G$ is left stochastic, i.e. its columns sum up to $1$. Check that any left stochastic matrix has maximum eigenvalue equal to $1$.
We can compute PageRank using some Python packages.
We will use networkx
package for working with graphs that can be installed using
conda install networkx
We will use a simple example of Zachary karate club network. This data was manually collected in 1977, and is a classical social network dataset.
import numpy as np
%matplotlib inline
import matplotlib.pyplot as plt
import networkx as nx
kn = nx.read_gml('karate.gml')
#nx.write_gml(kn, 'karate2.gml')
nx.draw_networkx(kn) #Draw the graph
Now we can actually compute the PageRank using the NetworkX built-in function. We also plot the size of the nodes larger if its PageRank is larger.
pr = nx.algorithms.link_analysis.pagerank(kn)
pr_vector = list(pr.values())
pr_vector = np.array(pr_vector) * 3000
nx.draw_networkx(kn, node_size=pr_vector, labels=None)
How to compute eigenvalues and eigenvectors?
There are two types of eigenproblems:
The eigenvalue problem has the form
$$ Ax = \lambda x, $$
or
$$ (A - \lambda I) x = 0, $$
therefore matrix $A - \lambda I$ has non-trivial kernel and should be singular. That means, that the determinant
$$ p(\lambda) = \det(A - \lambda I) = 0. $$
The determinant of a square matrix $A$ is defined as
$$\det A = \sum_{\sigma \in S_n} \mathrm{sgn}({\sigma})\prod^n_{i=1} a_{i, \sigma_i},$$
where
(Checkout video "The Execution of Determinant" on the Gilbert Strang lecture at MIT)
from IPython.display import YouTubeVideo
YouTubeVideo("amv58LCqCMI")
Determinant has many nice properties:
If you do it via minor expansion, we get exponential complexity in $n$.
Can we do $\mathcal{O}(n^3)$?
Now we go back to the eigenvalues.
The characteristic equation can be used to compute the eigenvalues, which leads to naïve algorithm:
$$p(\lambda) = \det(A - \lambda I)$$
Is this a good idea?
Give your feedback
We can do a short demo of this
import numpy as np
n = 40
a = [[1.0 / (i - j + 0.5) for i in range(n)] for j in range(n)]
a = np.array(a)
ev = np.linalg.eigvals(a)
#There is a special numpy function for chacteristic polynomial
cf = np.poly(a)
ev_roots = np.roots(cf)
#print('Coefficients of the polynomial:', cf)
#print('Polynomial roots:', ev_roots)
plt.scatter(ev_roots.real, ev_roots.imag, marker='x', label='roots')
b = a + 0 * np.random.randn(n, n)
ev_b = np.linalg.eigvals(b)
plt.scatter(ev_b.real, ev_b.imag, marker='o', label='Lapack')
#plt.scatter(ev_roots.real, ev_roots.imag, marker='o', label='Brute force')
plt.legend(loc='best')
plt.xlabel('Real part')
plt.ylabel('Imaginary part')
Text(0,0.5,'Imaginary part')
Morale:
$$h_{ij} = \int_0^1 x^i x^j\, dx = \frac{1}{i+j+1},$$
is the Hilbert matrix, which has exponential decay of singular values. So, monomials are "almost" linearly dependent.
There is a very interesting theorem that sometimes helps to localize the eigenvalues.
It is called Gershgorin theorem.
It states that all eigenvalues $\lambda_i, i = 1, \ldots, n$ are located inside the union of Gershgorin circles $C_i$, where $C_i$ is a disk on the complex plane with center $a_{ii}$ and radius
$$r_i = \sum_{j \ne i} |a_{ij}|.$$
Moreover, if the circles do not intersect they contain only one eigenvalue per circle. The proof is instructive since it uses the concepts we looked at the previous lectures.
First, we need to show that if the matrix $A$ is strictly diagonally dominant, i.e.
$$ |a_{ii}| > \sum_{j \ne i} |a_{ij}|, $$ then such matrix is non-singular.
We separate the diagonal part and off-diagonal part, and get
$$ A = D + S = D( I + D^{-1}S), $$
and $\Vert D^{-1} S\Vert_1 < 1$. Therefore, by using the Neumann series, the matrix $I + D^{-1}S$ is invertible and hence $A$ is invertible.
Now the proof follows by contradiction:
import numpy as np
%matplotlib inline
n = 3
fig, ax = plt.subplots(1, 1)
a = [[5, 1, 1], [1, 0, 0.5], [2, 0, 10]]
#a = [[1.0 / (i - j + 0.5) for i in xrange(n)] for j in xrange(n)]
a = np.array(a)
#a = np.diag(np.arange(n))
a = a + 2 * np.random.randn(n, n)
#u = np.random.randn(n, n)
#a = np.linalg.inv(u).dot(a).dot(u)
xg = np.diag(a).real
yg = np.diag(a).imag
rg = np.zeros(n)
ev = np.linalg.eigvals(a)
for i in range(n):
rg[i] = np.sum(np.abs(a[i, :])) - np.abs(a[i, i])
crc = plt.Circle((xg[i], yg[i]), radius=rg[i], fill=False)
ax.add_patch(crc)
plt.scatter(ev.real, ev.imag, color='r', label="Eigenvalues")
plt.axis('equal')
plt.legend()
ax.set_title('Eigenvalues and Gershgorin circles')
fig.tight_layout()
Note: There are more complicated figures, like Cassini ovals, that include the spectrum
$$ M_{ij} = \{z\in\mathbb{C}: |a_{ii} - z|\cdot |a_{jj} - z|\leq r_i r_j\}, \quad r_i = \sum_{l\not= i} |a_{il}|. $$
We are often interested in the computation of the part of the spectrum, like the largest eigenvalues or smallest eigenvalues. Also it is interesting to note that for the Hermitian matrices $(A = A^*)$ the eigenvalues are always real (prove it!).
A power method is the simplest method for the computation of the largest eigenvalue in modulus. It is also our first example of the iterative method and Krylov method.
The eigenvalue problem
$$Ax = \lambda x, \quad \Vert x \Vert_2 = 1 \ \text{for stability}.$$
can be rewritten as a fixed-point iteration, which is called power method and finds the largest eigenvalue of $A$.
Power method has the form
$$ x_{k+1} = A x_k, \quad x_{k+1} := \frac{x_{k+1}}{\Vert x_{k+1} \Vert_2}. $$
and $x_{k+1}\to v_1$, where $Av_1 = \lambda_1 v_1$ and $\lambda_1$ is the largest eigenvalue and $v_1$ is the corresponding eigenvector.
On $k+1$-th iteration approximation to $\lambda_1$ - the largest eigenvalue can be found as
$$ \lambda^{(k+1)} = (Ax_{k+1}, x_{k+1}), $$
Note that $\lambda^{(k+1)}$ is not required for the $k+2$-th iteration, but might be useful to measure error on each iteration: $\|Ax_{k+1} - \lambda^{(k+1)}x_{k+1}\|$.
The convergence is geometric, but the convergence ratio is $q^k$, where $q = \left|\frac{\lambda_{2}}{\lambda_{1}}\right| < 1$, for $\lambda_1>\lambda_2\geq\dots\geq \lambda_n$ and $k$ is the number of iteration. It means, the convergence can be artitrary small. To prove it, it is sufficient to consider a $2 \times 2$ diagonal matrix.
Let's have a more precise look at the power method when $A$ is Hermitian. In two slides you will learn that every Hermitian matrix is diagonalizable. Therefore, there exists orthonormal basis of eigenvectors $v_1,\dots,v_n$ such that $Av_i = \lambda_i v_i$. Let us decompose $x_0$ into a sum of $v_i$ with coefficients $c_i$: $$ x_0 = c_1 v_1 + \dots + c_n v_n. $$ Since $v_i$ are eigenvectors, we have $$ \begin{split} x_1 &= \frac{Ax_0}{\|Ax_0\|} = \frac{c_1 \lambda_1 v_1 + \dots + c_n \lambda_n v_n}{\|c_1 \lambda_1 v_1 + \dots + c_n \lambda_n v_n \|} \\ &\vdots\\ x_k &= \frac{Ax_{k-1}}{\|Ax_{k-1}\|} = \frac{c_1 \lambda_1^k v_1 + \dots + c_n \lambda_n^k v_n}{\|c_1 \lambda_1^k v_1 + \dots + c_n \lambda_n^k v_n \|} \end{split} $$ Now you see, that $$ x_k = \frac{c_1}{|c_1|}\left(\frac{\lambda_1}{|\lambda_1|}\right)^k\frac{ v_1 + \frac{c_2}{c_1}\frac{\lambda_2^k}{\lambda_1^k}v_2 + \dots + \frac{c_n}{c_1}\frac{\lambda_n^k}{\lambda_1^k}v_n}{\left\|v_1 + \frac{c_2}{c_1}\frac{\lambda_2^k}{\lambda_1^k}v_2 + \dots + \frac{c_n}{c_1}\frac{\lambda_n^k}{\lambda_1^k}v_n\right\|}, $$ which converges to $v_1$ since $\left| \frac{c_1}{|c_1|}\left(\frac{\lambda_1}{|\lambda_1|}\right)^k\right| = 1$ and $\left(\frac{\lambda_2}{\lambda_1}\right)^k \to 0$ if $|\lambda_2|<|\lambda_1|$.
There is one class of matrices when eigenvalues can be found easily: triangular matrices
$$ A = \begin{pmatrix} \lambda_1 & * & * \\ 0 & \lambda_2 & * \\ 0 & 0 & \lambda_3 \\ \end{pmatrix}. $$ The eigenvalues of $A$ are $\lambda_1, \lambda_2, \lambda_3$. Why?
Because the determinant is
$$
\det(A - \lambda I) = (\lambda - \lambda_1) (\lambda - \lambda_2) (\lambda - \lambda_3).
$$
Thus, computing the eigenvalues of triangular matrices is easy. Now, the unitary matrices come to help. Let $U$ be a unitary matrix, i.e. $U^* U = I$. Then
$$ \det(A - \lambda I) = \det(U (U^* A U - \lambda I) U^*) = \det(UU^*) \det(U^* A U - \lambda I) = \det(U^* A U - \lambda I), $$
where we have used the famous multiplicativity property of the determinant, $\det(AB) = \det(A) \det(B)$. It means, that the matrices $U^* A U$ and $A$ have the same characteristic polynomials, and the same eigenvalues.
If we manage to make $U^* A U = T$ where $T$ is upper triangular, then we are done. Multplying from the left and the right by $U$ and $U^*$ respectively, we get the desired decomposition:
$$ A = U T U^*. $$
This is the celebrated Schur decomposition. Recall that unitary matrices imply stability, thus the eigenvalues are computed very accurately. The Schur decomposition shows why we need matrix decompositions: it represents a matrix into a product of three matrices with a convenient structure.
Theorem: Every $A \in \mathbb{C}^{n \times n}$ matrix can be represented in the Schur form $A = UTU^*$, where $U$ is unitary and $T$ is upper triangular.
Sketch of the proof.
Let $U_1 = [v_1,v_2,\dots,v_n]$, where $v_2,\dots, v_n$ are any vectors othogonal to $v_1$. Then
$$ U^*_1 A U_1 = \begin{pmatrix} \lambda_1 & * \\ 0 & A_2 \end{pmatrix}, $$
where $A_2$ is an $(n-1) \times (n-1)$ matrix. This is called block triangular form. We can now work with $A_2$ only and so on.
Note: Since we need eigenvectors in this proof, this proof is not a practical algorithm.
Important application of the Schur theorem: normal matrices.
Definition. Matrix $A$ is called normal matrix, if
$$ AA^* = A^* A. $$
Q: Examples of normal matrices?
Examples: Hermitian matrices, unitary matrices.
Theorem: $A$ is a normal matrix, iff $A = U \Lambda U^*$, where $U$ is unitary and $\Lambda$ is diagonal.
Sketch of the proof: One way is straightforward (if the decomposition holds, the matrix is normal).
The other is more complicated. Consider the Schur form of the matrix $A$. Then $AA^* = A^*A$ means $TT^* = T^* T$.
By looking at the elements we immediately see,
that the only upper triangular matrix $T$ that satisfies $TT^* = T^* T$ is a diagonal matrix!
Therefore, every normal matrix is unitary diagonalizable, which means that it can be diagonalized by unitary matrix $U$. In other words every normal matrix has orthogonal basis of eigenvectors.
Everything is fine, but how we compute the Schur form?
This will be covered in the next lecture.
$$R_A(x) = \frac{(Ax, x)}{(x, x)},$$
and the maximal eigenvalue is the maximum of $R_A(x)$, and the minimal eigenvalue is the minimal of $R_A(x)$.
Now, "advanced" concept.
For linear dynamical systems given by the matrix $A$, spectrum can tell a lot about the system (i.e. stability, ...)
However, for non-normal matrices, spectrum can be unstable with respect to small perturbations.
In order to measure such perturbation, the notion of pseudospectrum has been developed.
We consider the union of all possible eigenvalues of all perturbations of the matrix $A$.
$$\Lambda_{\epsilon}(A) = \{ \lambda \in \mathbb{C}: \exists E, x \ne 0: (A + E) x = \lambda x, \quad \Vert E \Vert_2 \leq \epsilon. \}$$
For small $E$ and normal $A$ these will be circules around eigenvalues, for non-normal matrices, the structure can be much different. More details: http://www.cs.ox.ac.uk/pseudospectra/