qr decomposition

In linear algebra, the QR decomposition of a matrix

A

is a factorization expressing

A

A = QR

where

Q

is an orthogonal matrix (

QQ^T = I

), and

R

is an upper triangular matrix. The QR decomposition is often used to solve the linear least squares problem. The QR decomposition is also the basis for a particular eigenvalue algorithm, the QR algorithm. There are several methods for actually computing the QR decomposition, such as by means of Givens rotations, Householder transformations, or the Gram-Schmidt decomposition. Each has a number of advantages and disadvantages. (The matrices Q and R are not uniquely determined, so different methods may produce different decompositions.)

Computing QR by means of Gram-Schmidt

Recall the Gram-Schmidt method, with the vectors to be considered in the process as columns of the matrix

A=(\mathbf{a}_1| \cdots|\mathbf{a}_n)

. Then

\mathbf{u}_1 = \mathbf{a}_1, \qquad\mathbf{e}_1 = {\mathbf{u}_1 \over ||\mathbf{u}_1||}

\mathbf{u}_2 = \mathbf{a}_2-\mathrm{proj}_{\mathbf{e}_1}\,\mathbf{a}_2, \qquad\mathbf{e}_2 = {\mathbf{u}_2 \over ||\mathbf{u}_2||}

\mathbf{u}_3 = \mathbf{a}_3-\mathrm{proj}_{\mathbf{e}_1}\,\mathbf{a}_3-\mathrm{proj}_{\mathbf{e}_2}\,\mathbf{a}_3, \qquad\mathbf{e}_3 = {\mathbf{u}_3 \over ||\mathbf{u}_3||}

\vdots

\mathbf{u}_k = \mathbf{a}_k-\sum_{j=1}^{k-1}\mathrm{proj}_{\mathbf{e}_j}\,\mathbf{a}_k,\qquad\mathbf{e}_k = {\mathbf{u}_k\over||\mathbf{u}_k||} Naturally then, we rearrange the equations so the a_is are the subject, to get the following

\mathbf{a}_1 = \mathbf{e}_1||\mathbf{u}_1||

\mathbf{a}_2 = \mathrm{proj}_{\mathbf{e}_1}\,\mathbf{a}_2+\mathbf{e}_2||\mathbf{u}_2||

\mathbf{a}_3 = \mathrm{proj}_{\mathbf{e}_1}\,\mathbf{a}_3+\mathrm{proj}_{\mathbf{e}_2}\,\mathbf{a}_3+\mathbf{e}_3||\mathbf{u}_3||

\vdots

\mathbf{a}_k = \sum_{j=1}^{k-1}\mathrm{proj}_{\mathbf{e}_j}\,\mathbf{a}_k+\mathbf{e}_k||\mathbf{u}_k||

Each of these projections of the vectors

\mathbf{a}_i

onto one of these

e_j

are merely the inner product of the two, since the vectors are normed. Now these equations can be written in matrix form, viz.,

\left(\mathbf{e}_1\left|\ldots\right|\mathbf{e}_n\right)

\begin{pmatrix} ||\mathbf{u}_1|| & \langle\mathbf{e}_1,\mathbf{a}_2\rangle & \langle\mathbf{e}_1,\mathbf{a}_3\rangle & \ldots \\ 0 & ||\mathbf{u}_2|| & \langle\mathbf{e}_2,\mathbf{a}_3\rangle & \ldots \\ 0 & 0 & ||\mathbf{u}_3|| & \ldots \\ \vdots & \vdots & \vdots & \ddots \end{pmatrix} But the product of each row and column of the matrices above give us a respective column of A that we started with, and together, they give us the matrix A, so we have factorized A into an orthogonal matrix Q (the matrix of e_ks), via Gram Schmidt, and the obvious upper triangular matrix as a remainder R. Alternatively,

\begin{matrix} R \end{matrix}

can be calculated as follows: Recall that

\begin{matrix}Q\end{matrix} = \left(\mathbf{e}_1\left|\ldots\right|\mathbf{e}_n\right).

Then, we have

\begin{matrix} R = Q^{T}A = \end{matrix} \begin{pmatrix} \langle\mathbf{e}_1,\mathbf{a}_1\rangle & \langle\mathbf{e}_1,\mathbf{a}_2\rangle & \langle\mathbf{e}_1,\mathbf{a}_3\rangle & \ldots \\ 0 & \langle\mathbf{e}_2,\mathbf{a}_2\rangle & \langle\mathbf{e}_2,\mathbf{a}_3\rangle & \ldots \\ 0 & 0 & \langle\mathbf{e}_3,\mathbf{a}_3\rangle & \ldots \\ \vdots & \vdots & \vdots & \ddots \end{pmatrix}. Note that

\langle\mathbf{e}_j,\mathbf{a}_j\rangle = ||\mathbf{u}_j||,

\langle\mathbf{e}_j,\mathbf{a}_k\rangle = 0 \mathrm{~~for~~} j > k,

and

\begin{matrix}  Q\,Q^{T} = I \end{matrix}.

Example

Consider the decomposition of

A =

\begin{pmatrix} 12 & -51 & 4 \\ 6 & 167 & -68 \\ -4 & 24 & -41 \end{pmatrix} . Recall the orthogonal matrix

Q

such that

\begin{matrix}

  Q\,Q^{T} = I.

\end{matrix} Then, we can calculate

Q

by means of Gram-Schmidt as follows:

U = \begin{pmatrix} \mathbf u_1 & \mathbf u_2 & \mathbf u_3 \end{pmatrix} = \begin{pmatrix} 12 & -51 & 4 \\ 6 & 167 & -68 \\ -4 & 24 & -41 \end{pmatrix};

Q = \begin{pmatrix} \frac{\mathbf u_1}

mathbf u_2

} & \frac{\mathbf u_3}{

\mathbf u_3

} \end{pmatrix} = \begin{pmatrix}

      6/7    &    -69/175   &   -58/175   \\      3/7    &    158/175   &     6/175   \\     -2/7    &      6/35    &   -33/35

\end{pmatrix}; Thus, we have

\begin{matrix}

  A = Q\,Q^{T}A = Q R;

\end{matrix}

\begin{matrix}

  R = Q^{T}A =

\end{matrix} \begin{pmatrix}

     14  &  21          &            -14 \\      0  & 175          &            -70 \\      0  &   0          &             35

\end{pmatrix}. Considering numerical errors of finite precision operation in MATLAB, we have that

\begin{matrix}

Q =

\end{matrix} \begin{pmatrix}

          0.857142857142857     &   -0.394285714285714  &      -0.331428571428571 \\          0.428571428571429     &    0.902857142857143  &       0.034285714285714 \\         -0.285714285714286     &    0.171428571428571  &      -0.942857142857143

\end{pmatrix};

\begin{matrix}

R =

\end{matrix} \begin{pmatrix}

                         14  &                      21           &            -14 \\      1.11022302462516 \times 10^{-016}  &                     175           &            -70 \\     -1.77635683940025 \times 10^{-015}  &  -5.32907051820075 \times 10^{-014}           &             35

\end{pmatrix}.

Computing QR by means of Householder reflections

A Householder reflection (or Householder transformation) is a transformation that takes a vector and reflects it about some plane. We can use this property to calculate the QR factorization of a matrix. Q can be used to reflect a vector in such a way that all coordinates but one disappear. Let x be an arbitrary m-dimensional column vector of length |α| (for numerical reasons α should get the same sign as the first coordinate of x). Then, where e₁ is the vector (1,0,...,0)^T, and

the euclidean norm, set

\mathbf{u} = \mathbf{x} - \alpha\mathbf{e}_1,

\mathbf{v} = {\mathbf{u}\over

\mathbf{u}|

Q = I - 2 \mathbf{v}\mathbf{v}^T.

Q

is a Householder matrix and

Qx = (\alpha\ , 0, \cdots, 0)^T

This can be used to gradually transform an m-by-n matrix A to upper triangular form. First, we multiply A with the Householder matrix Q₁ we obtain when we choose the first matrix column for x. This results in a matrix QA with zeros in the left column (except for the first line).

Q_1A = \begin{bmatrix}

                    \alpha_1&\star&\dots&\star\\                       0    &     &     &    \\                    \vdots  &     &  A' &    \\                       0    &     &     & \end{bmatrix}

This can be repeated for A' resulting in a Housholder matrix Q'₂. Note that Q'₂ is smaller than Q₁. Since we want it really to operate on Q₁A instead of A' we need to expand it to the upper left, filling in a 1, or in general:

Q_k = \begin{pmatrix}

                   I_{k-1} & 0\\                    0  & Q_k'\end{pmatrix}

After

t

iterations of this process,

t = min(m - 1, n)

R = Q_t \cdots Q_2Q_1A

is a upper triangular matrix. So, with

Q = Q_1Q_2 \cdots Q_t

A = QR

is a QR decomposition of

A

. This method has greater numerical stability than using the Gram-Schmidt method above. .

Example

Let us calculate the decomposition of

A = \begin{pmatrix}

12 & -51 & 4 \\ 6 & 167 & -68 \\ -4 & 24 & -41 \end{pmatrix} We need to find a reflection that takes the vector

\mathrm{a}_1 = (12, 6, -4)^T

\| \;\mathrm{a}\| \;\mathrm{e}_1 = (14, 0, 0)^T

. Now,

u = (-2, 6, -4)^T

and

v = 14^{-{1 \over 2}}(-1, 3, -2)^T

, and then

Q_1 = I - {2 \over 14} \begin{pmatrix} -1 \\ 3 \\ -2 \end{pmatrix}\begin{pmatrix} -1 & 3 & -2 \end{pmatrix}

= I - {1 \over 7}\begin{pmatrix}

1 & -3 & 2 \\ -3 & 9 & -6 \\ 2 & -6 & 4 \end{pmatrix} =\begin{pmatrix} 6/7 & 3/7 & -2/7 \\ 3/7 &-2/7 & 6/7 \\ -2/7 & 6/7 & 3/7 \\ \end{pmatrix} Observe now:

Q_1A = \begin{pmatrix}

14 & 21 & -14 \\ 0 & -49 & -14 \\ 0 & 168 & -77 \end{pmatrix} So we already have almost a triangular matrix. We only need to zero the (3, 2) entry. Take the (1, 1) minor, and then apply the process again to

A' = M_{11} = \begin{pmatrix}

-49 & -14 \\ 168 & -77 \end{pmatrix} By the same method as above, we obtain the matrix of the Householder transformation to be,

Q_2 = \begin{pmatrix}

1 & 0 & 0 \\ 0 & -7/25 & 24/25 \\ 0 & 24/25 & 7/25 \end{pmatrix} after performing a direct sum with 1 to make sure the next step in the process works properly. Now, we find

Q=Q_1Q_2=\begin{pmatrix}

6/7 & -69/175 & 58/175 \\ 3/7 & 158/175 & -6/175 \\ -2/7 & 6/35 & 33/35 \end{pmatrix}

R=Q^\top A=\begin{pmatrix}

14 & 21 & -14 \\ 0 & 175 & -70 \\ 0 & 0 & -35 \end{pmatrix} The matrix Q is orthogonal and R is upper triangular, so A = QR is the required QR-decomposition.

<< Previous

Word Browser

Next >>

cacophony society
corn poppy
battle of aachen
river sheaf
rainbow six (book)
vest
reinheitsgebot
gray squirrel
dunsfold
harrier jump jet
pneumatology

blackpool tower
centipede (video game)
umm al samim
/dev/null
third baseman
recurring south park characters
st. moritz
devnull
bogu
mogn, las palmas
tang

zhou
united states secretary of the air force
common sense conservative
medway river
manganese(iv) oxide
river tone
teme
river stour, warwickshire
river leam
river arun
river adur

xinzo de limia
geysir
strokkur
murray state university
eleftherios venizelos
washington consensus
bowhead whale
de administrando imperio
underwater
hsbc tower, london
henry cary