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absorbing states.  The transition matrix is then
absorbing states.  The transition matrix is then


<math display="block">
<div class="d-flex justify-content-center">
\mat{P} =\bordermatrix{
{|
0 1 & 2 3 4 \cr
|-
0 &  1  &  0  &  0  &  0  &  0  \cr
| || || <span style="width:40px;text-align:center;display:inline-block;margin-left:5px;"><math>0</math></span><span style="width:35px;;text-align:center;display:inline-block;"><math>1</math></span> <span style="width:35px;;text-align:center;display:inline-block;"><math>2</math></span> <span style="width:35px;text-align:center;display:inline-block;"><math>3</math></span> <span style="width:35px;;text-align:center;display:inline-block;"><math>4</math></span>  
1 & 1/2 &  0  & 1/2 &  0  &  0  \cr
|-
2 &  0  & 1/2 &  0  & 1/2 &  0  \cr
| <math>\mat{P} =\,\,</math>
3 &  0  &  0  & 1/2 &  0  & 1/2 \cr
| style= "padding:0px"  |<math>\begin{array}{c c c c}
4 &  0  &  0  &  0  &  0  &  1 \cr}\ .
    0 \\
</math>
    1\\
  2\\
3\\
4
    \end{array}</math> || <math>\begin{pmatrix}
  1  &  0  &  0  &  0  &  0  \\
1/2 &  0  & 1/2 &  0  &  0  \\
  0  & 1/2 &  0  & 1/2 &  0  \\
  0  &  0  & 1/2 &  0  & 1/2 \\
  0  &  0  &  0  &  0  &  1 \\
    \end{pmatrix}</math>
|}
</div>
 
 
The states 1, 2, and 3 are transient states, and from any of these
The states 1, 2, and 3 are transient states, and from any of these
it is possible to reach the absorbing states 0 and 4.  Hence the chain is an
it is possible to reach the absorbing states 0 and 4.  Hence the chain is an
Line 71: Line 85:
form''
form''


<math display="block">
<div class="d-flex justify-content-center">
\offinterlineskip
{|
\mat{P}\;= \bordermatrix{       
|-
                              &\hbox{TR.}&\omit\hfil&\hbox{ABS.}\cr
| || || <span style="text-align:center;display:inline-block;margin-right:10px;margin-left:5px;"><math>\hbox{TR.}</math></span><span style="text-align:center;display:inline-block;margin-right:10px;"><math>\hbox{ABS.}</math></span>
          \hbox{TR.}\bigstrut &\mat{Q}   &\srule    &\mat{R}    \cr
|-
\middlehrule{1}{1}
| <math>\mat{P} =</math>
          \hbox{ABS.}\bigstrut&\mat{0}   &\srule    &\mat{I}}
| style= "padding:0px"  |<math>\begin{array}{cc}
</math>  
     \hbox{TR.}\strut \\
  \hbox{ABS.}\strut
    \end{array}</math> || <math>\left(\begin{array}{c|c}
        \mat{Q}       &\mat{R}    \\
        \hline
\mat{0}       &\mat{I}
    \end{array}\right)</math>
|}
</div>
 
 
Here <math>\mat{I}</math> is an <math>r</math>-by-<math>r</math> indentity matrix, <math>\mat{0}</math> is an <math>r</math>-by-<math>t</math>
Here <math>\mat{I}</math> is an <math>r</math>-by-<math>r</math> indentity matrix, <math>\mat{0}</math> is an <math>r</math>-by-<math>t</math>
zero matrix, <math>\mat{R}</math> is a nonzero <math>t</math>-by-<math>r</math> matrix, and <math>\mat{Q}</math> is an
zero matrix, <math>\mat{R}</math> is a nonzero <math>t</math>-by-<math>r</math> matrix, and <math>\mat{Q}</math> is an
Line 91: Line 115:
<math>\mat{P}^n</math> is of the form
<math>\mat{P}^n</math> is of the form


<math display="block">
<div class="d-flex justify-content-center">
\offinterlineskip
{|
\mat{P}^n\;= \bordermatrix{       
|-
                    &\hbox{TR.}&\omit\hfil&\hbox{ABS.}\cr
| || || <span style="text-align:center;display:inline-block;margin-right:10px;margin-left:5px;"><math>\hbox{TR.}</math></span><span style="text-align:center;display:inline-block;margin-right:10px;"><math>\hbox{ABS.}</math></span>
\hbox{TR.}\bigstrut &\mat{Q}^n &\srule    &\ast      \cr
|-
\middlehrule{1}{1}
| <math>\mat{P} =</math>
  \hbox{ABS.}\bigstrut&\mat{0}   &\srule    &\mat{I}}
| style= "padding:0px"  |<math>\begin{array}{cc}
</math>  
     \hbox{TR.}\strut \\
  \hbox{ABS.}\strut
    \end{array}</math> || <math>\left(\begin{array}{c|c}
        \mat{Q}^n       &\ast  \\
        \hline
  \mat{0}       &\mat{I}
    \end{array}\right)</math>
|}
</div>
 
 
where the asterisk <math>*</math> stands for the <math>t</math>-by-<math>r</math> matrix in the upper right-hand
where the asterisk <math>*</math> stands for the <math>t</math>-by-<math>r</math> matrix in the upper right-hand
corner of <math>\mat{P}^n.</math>  (This submatrix can be written in terms of <math>\mat{Q}</math>
corner of <math>\mat{P}^n.</math>  (This submatrix can be written in terms of <math>\mat{Q}</math>
and  
and <math>\mat{R}</math>, but the expression is complicated and is not needed at this time.)
<math>\mat{R}</math>, but the expression is complicated and is not needed at this time.)
The form of <math>\mat{P}^n</math> shows that the entries of
The form of <math>\mat{P}^n</math> shows that the entries of
<math>\mat{Q}^n</math> give the probabilities for being in each of the transient states
<math>\mat{Q}^n</math> give the probabilities for being in each of the transient states after <math>n</math>
after <math>n</math>
steps for each possible transient starting state.  For our first theorem we prove that the probability of being in the transient states after <math>n</math> steps approaches zero. Thus every entry
steps for each possible transient starting state.  For our first theorem we
prove that the
probability of being in the transient states after <math>n</math> steps approaches zero.  
Thus every entry
of <math>\mat{ Q}^n</math> must approach zero as <math>n</math> approaches infinity (i.e, <math>\mat{Q}^n
of <math>\mat{ Q}^n</math> must approach zero as <math>n</math> approaches infinity (i.e, <math>\mat{Q}^n
\to \mat{
\to \mat{0}</math>).
0}</math>).


===Probability of Absorption===
===Probability of Absorption===
{{proofcard|Theorem|thm_11.2.1|In an absorbing Markov chain, the probability that the process will be absorbed
{{proofcard|Theorem|thm_11.2.1|In an absorbing Markov chain, the probability that the process will be absorbed
is 1 (i.e., <math>\mat{Q}^n \to \mat{0}</math> as <math>n \to \infty</math>).\n|From each nonabsorbing state <math>s_j</math> it is possible to reach an absorbing state.   
is 1 (i.e., <math>\mat{Q}^n \to \mat{0}</math> as <math>n \to \infty</math>).|From each nonabsorbing state <math>s_j</math> it is possible to reach an absorbing state.   
Let <math>m_j</math>  be the minimum number of steps required to reach an absorbing state,  
Let <math>m_j</math>  be the minimum number of steps required to reach an absorbing state,  
starting from <math>s_j</math>.  Let <math>p_j</math> be the probability that, starting from <math>s_j</math>,  
starting from <math>s_j</math>.  Let <math>p_j</math> be the probability that, starting from <math>s_j</math>,  
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matrix <math>\mat{N}</math> is the expected number of times the chain is in state <math>s_j</math>,
matrix <math>\mat{N}</math> is the expected number of times the chain is in state <math>s_j</math>,
given that  
given that  
it starts in state <math>s_i</math>.  The initial state is counted if <math>i = j</math>.\n|Let <math>(\mat{I} - \mat{Q})\mat{x}~=~0;</math> that is <math>\mat{x}~=~\mat{Q}\mat{x}.</math> Then,
it starts in state <math>s_i</math>.  The initial state is counted if <math>i = j</math>.|Let <math>(\mat{I} - \mat{Q})\mat{x}~=~0;</math> that is <math>\mat{x}~=~\mat{Q}\mat{x}.</math> Then,
iterating
iterating
this we see that  
this we see that  
Line 211: Line 239:
<span id="exam 11.2.2"/>
<span id="exam 11.2.2"/>
'''Example'''  
'''Example'''  
[[#exam 11.2.1 |(Example]] continued)
([[#exam 11.2.1 |Example]] continued)
In the Drunkard's Walk example, the transition matrix in canonical form is
In the Drunkard's Walk example, the transition matrix in canonical form is


<math display="block">
<div class="d-flex justify-content-center">
\offinterlineskip
{|
\mat{P}\;= \bordermatrix{&
|-
              \hbox{1} &\hbox{2}&\hbox{3}&\omit\hfil&\hbox{0}&\hbox{4}\cr
|  ||  || <span style="text-align:center;display:inline-block;margin-left:20px;padding-right:30px;"><math>1</math></span><span style=";text-align:center;display:inline-block;padding-right:30px;"><math>2</math></span> <span style="text-align:center;display:inline-block;padding-right:20px;"><math> 3</math></span> <span style="text-align:center;display:inline-block;padding-right:17px;"><math>0</math></span> <span style="text-align:center;display:inline-block;"><math>4</math></span>
\hbox{1}\strut  &  0    &1/2 &  0    &  \srule  & 1/2    &  0    \cr
|-
\hbox{2}\strut &1/2    &  0 &1/2    & \srule  & 0      &  0    \cr
|  ||<span><math>1</math></span> || <span style="text-align:center;display:inline-block;margin-left:20px;padding-right:25px;"><math>0</math></span><span style=";text-align:center;display:inline-block;padding-right:20px;"><math>1/2</math></span> <span style="text-align:center;display:inline-block;padding-right:18px;"><math> 0</math></span><span style="text-align:center;display:inline-block;padding-right:8px;"><math>1/2</math></span> <span style="text-align:center;display:inline-block;"><math>0</math></span>  
\hbox{3}\strut  &  0    &1/2 &  0    & \srule  & 0      & 1/2\cr
|-
\middlehrule{3}{2}
| <math>\mat{P} =\,\,</math>
\hbox{0}\strut  &  0    &  0    &  0     &  \srule  & 1      &  0     \cr
| style= "padding:0px"  |<math>\begin{array}{c c c c}
\hbox{4}\strut  &  0    &  0    &  0     &  \srule  & 0      &  1}\ .
    2\\
</math>
3\\
0\\
4
    \end{array}</math> || <math>\left(\begin{array}{ccc|cc}
  1/2    &  0 &1/2    &   0      &  0    \\
  0    &1/2 &  0    &   0      & 1/2\\
\hline
  0    &  0    &  0       & 1      &  0   \\
  0    &  0    &  0     & 0      &  1
    \end{array}\right)</math>
|}
</div>
 
From this we see that the matrix <math>\mat{Q}</math> is
From this we see that the matrix <math>\mat{Q}</math> is


Line 243: Line 283:
Computing <math>(\mat{I} - \mat{Q})^{-1}</math>, we find
Computing <math>(\mat{I} - \mat{Q})^{-1}</math>, we find


<math display="block">
<div class="d-flex justify-content-center">
\hbox{$\mat{N} = (\mat{I} - \mat{Q})^{-1} = {}$} \bordermatrix{
{|
& 1 & 2 & 3 \cr
|-
1 & 3/2 & 1 & 1/2 \cr
| || || <span style="text-align:center;display:inline-block;margin-right:22px;margin-left:15px;"><math>1</math></span><span style="text-align:center;display:inline-block;margin-right:15px;"><math>2</math></span> <span style="text-align:center;display:inline-block;"><math>3</math></span>  
2 & 1 & 2 & 1 \cr
|-
3 & 1/2 & 1 & 3/2 \cr}\ .
| <math>\hbox{$\mat{N} = (\mat{I} - \mat{Q})^{-1} = {}$} </math>
</math>
| style= "padding:0px"  |<math>\begin{array}{c c c c}
From the middle row of <math>\mat{N}</math>, we see that if we start in state 2, then the
    \mbox{1} \\
expected number of times in states 1, 2, and 3 before being absorbed
    \mbox{2}\\
are 1, 2, and 1.
\mbox{3}\\
    \end{array}</math> || <math>\begin{pmatrix}
  1 \,& 0\, & 0 \\
.5 \,& .5\, & 0 \\
  0 \,& 1\, & 0\\  
    \end{pmatrix}</math>
|}
</div>
 
 
From the middle row of <math>\mat{N}</math>, we see that if we start in state 2, then the expected number of times in states 1, 2, and 3 before being absorbed are 1, 2, and 1.


===Time to Absorption===
===Time to Absorption===
Line 268: Line 318:
\mat{t} = \mat{N}\mat{c}\ ,
\mat{t} = \mat{N}\mat{c}\ ,
</math>
</math>
where <math>\mat{c}</math> is a column vector all of whose entries are 1.\n|If we add all the entries in the <math>i</math>th row of <math>\mat{N}</math>,  
where <math>\mat{c}</math> is a column vector all of whose entries are 1.|If we add all the entries in the <math>i</math>th row of <math>\mat{N}</math>,  
we will have the expected number of times in any of the transient states for a
we will have the expected number of times in any of the transient states for a
given
given
Line 287: Line 337:
</math>
</math>
where <math>\mat{N}</math> is the fundamental matrix and <math>\mat{R}</math> is as in the canonical
where <math>\mat{N}</math> is the fundamental matrix and <math>\mat{R}</math> is as in the canonical
form.\n|We have
form.|We have


<math display="block">
<math display="block">
Line 308: Line 358:
In the Drunkard's Walk example, we found that
In the Drunkard's Walk example, we found that


<math display="block">
<div class="d-flex justify-content-center">
\hbox{$\mat{N} = {}$} \bordermatrix{
{|
& 1   & 2 & 3   \cr
|-
1 & 3/2 & 1 & 1/2 \cr
| || || <span style="text-align:center;display:inline-block;margin-right:22px;margin-left:20px;"><math>1</math></span><span style="text-align:center;display:inline-block;margin-right:22px;"><math>2</math></span> <span style="text-align:center;display:inline-block;"><math>3</math></span>
2 & 1  & 2 & 1  \cr
|-
3 & 1/2 & 1 & 3/2 \cr}\ .
| <math>\hbox{$\mat{N} = {}$}</math>
</math>
| style= "padding:0px"  |<math>\begin{array}{c c c c}
    \mbox{1} \\
    \mbox{2}\\
\mbox{3}\\
    \end{array}</math> || <math>\begin{pmatrix}
 
3/2 & 1 & 1/2 \\
1  & 2 & 1  \\
1/2 & 1 & 3/2 \\
    \end{pmatrix}</math>
|}
</div>
 
Hence,
Hence,


Line 342: Line 404:
From the canonical form,
From the canonical form,


<math display="block">
<div class="d-flex justify-content-center">
\hbox{$\mat{ R} = {}$} \bordermatrix{
{|
& 0  & 4  \cr
|-
1 & 1/2 & 0  \cr
| || || <span style="text-align:center;display:inline-block;margin-right:33px;margin-left:20px;"><math>0</math></span><span><math>4</math></span>
2 & 0  & 0  \cr
|-
3 & 0  & 1/2 \cr}\ .
| <math>\hbox{$\mat{N} = {}$}</math>
</math>
| style= "padding:0px"  |<math>\begin{array}{c c c c}
    1 \\
    2 \\
3
    \end{array}</math> || <math>\begin{pmatrix}
  1/2 & 0  \\
0  & 0  \\
0  & 1/2  
    \end{pmatrix}</math>
|}
</div>
 
 
Hence,
Hence,


Line 360: Line 434:
  0 & 0  \cr
  0 & 0  \cr
  0 & 1/2 \cr} \cr
  0 & 1/2 \cr} \cr
\cr
\cr
&=& \bordermatrix{
& 0 & 4 \cr
1 & 3/4 & 1/4 \cr
2 & 1/2 & 1/2 \cr
3 & 1/4 & 3/4 \cr}\ .
\end{eqnarray*}
\end{eqnarray*}
</math>
</math>
<div class="d-flex justify-content-center">
{|
|-
| || || <span style="text-align:center;display:inline-block;margin-right:33px;margin-left:20px;"><math>0</math></span><span><math>4</math></span>
|-
| <math>=\,\,</math>
| style= "padding:0px"  |<math>\begin{array}{c c c c}
    1 \\
    2 \\
3
    \end{array}</math> || <math>\begin{pmatrix}
  1/2 & 0  \\
0  & 0  \\
0  & 1/2
    \end{pmatrix}</math>
|}
</div>




Line 383: Line 469:
absorbing Markov chain.
absorbing Markov chain.
We have run the program '''  AbsorbingChain''' for the example of the
We have run the program '''  AbsorbingChain''' for the example of the
drunkard's walk [[#exam 11.2.1 |(Example]]) with
drunkard's walk ([[#exam 11.2.1 |Example]]) with
5 blocks.  
5 blocks.  
The results are as follows:
The results are as follows:


<math display="block">
<div class="d-flex justify-content-center">
\mat{Q}  = \bordermatrix{
{|
& 1    & 2     & 3    & 4  \cr
|-
1 & .00  & .50  & .00  & .00\cr
| || || <span style="text-align:center;display:inline-block;margin-right:25px;margin-left:22px;"><math>1</math></span><span style="text-align:center;display:inline-block;margin-right:30px;"><math>2</math></span><span style="text-align:center;display:inline-block;margin-right:25px;"><math>3</math></span><span style="text-align:center;display:inline-block;"><math>4</math></span>
2 & .50  & .00  & .50  & .00\cr
|-
3 & .00  & .50  & .00  & .50\cr
| <math>\mat{Q} =\,\,</math>
4 & .00  & .00  & .50   & .00}\ ;
| style= "padding:0px" |<math>\begin{array}{c c c c}
</math>
    1 \\
     2 \\
3 \\
4
     \end{array}</math> || <math>\begin{pmatrix}
.00  & .50  & .00  & .00\\
.50  & .00  & .50  & .00\\
.00  & .50  & .00  & .50\\
.00   & .00  & .50   & .00\\
    \end{pmatrix};</math>
|}
</div>
 
 
<div class="d-flex justify-content-center">
{|
|-
| || || <span style="text-align:center;display:inline-block;margin-right:25px;margin-left:22px;"><math>0</math></span><span style="text-align:center;display:inline-block;"><math>5</math></span>
|-
| <math>\mat{R} =\,\,</math>
| style= "padding:0px"  |<math>\begin{array}{c c c c}
    1 \\
    2 \\
3 \\
4
    \end{array}</math> || <math>\begin{pmatrix}
 
.50  & .00  \\
.00  & .00  \\
.00  & .00  \\
.00   & .50 
    \end{pmatrix};</math>
|}
</div>




<math display="block">
<div class="d-flex justify-content-center">
\mat{R}  = \bordermatrix{
{|
& 0     & 5     \cr
|-
1 & .50   & .00  \cr
| || || <span style="text-align:center;display:inline-block;margin-right:35px;margin-left:22px;"><math>1</math></span><span style="text-align:center;display:inline-block;margin-right:35px;"><math>2</math></span><span style="text-align:center;display:inline-block;margin-right:35px;"><math>3</math></span><span style="text-align:center;display:inline-block;"><math>4</math></span>
2 & .00   & .00  \cr
|-
3 & .00   & .00   \cr
| <math>\mat{N}  =\,\,</math>
4 & .00   & .50  }\ ;
| style= "padding:0px"  |<math>\begin{array}{c c c c}
</math>
    1 \\
     2 \\
3 \\
4
     \end{array}</math> || <math>\begin{pmatrix}
1.60  & 1.20   & .80    & .40 \\
1.20  & 2.40  & 1.60   & .80 \\
.80    & 1.60   & 2.40   & 1.20\\  
.40    & .80    & 1.20   & 1.60
    \end{pmatrix};</math>
|}
</div>




<math display="block">
<div class="d-flex justify-content-center">
\mat{N} = \bordermatrix{
{|
  & 1      & 2      & 3      &  4  \cr
|-
1 & 1.60  & 1.20  & .80    & .40 \cr
| <math>\mat{t} =\,\,</math>
2 & 1.20  & 2.40  & 1.60  & .80 \cr
| style= "padding:0px" |<math>\begin{array}{c c c c}
3 & .80    & 1.60  & 2.40  & 1.20\cr
    1 \\
4 & .40    & .80    & 1.20  & 1.60}\ ;
    2 \\
</math>
3 \\
4
    \end{array}</math> || <math>\begin{pmatrix}


4.00 \\
6.00 \\
6.00 \\
4.00
    \end{pmatrix};</math>
|}
</div>


<math display="block">
\mat{t}  = \bordermatrix{
&  \cr
1  & 4.00 \cr
2  & 6.00 \cr
3  & 6.00 \cr
4  & 4.00}\ ;
</math>


<div class="d-flex justify-content-center">
{|
|-
| || || <span style="text-align:center;display:inline-block;margin-right:25px;margin-left:22px;"><math>0</math></span><span style="text-align:center;display:inline-block;"><math>5</math></span>
|-
| <math>\mat{B} =\,\,</math>
| style= "padding:0px"  |<math>\begin{array}{c c c c}
    1 \\
    2 \\
3 \\
4
    \end{array}</math> || <math>\begin{pmatrix}
.80  & .20  \\
.60  & .40  \\
.40  & .60  \\
.20  & .80  \\
    \end{pmatrix};</math>
|}
</div>


<math display="block">
\mat{B}  = \bordermatrix{
& 0    & 5    \cr
1 & .80  & .20  \cr
2 & .60  & .40  \cr
3 & .40  & .60  \cr
4 & .20  & .80  }\ .
</math>


Note that the probability of reaching the bar before reaching home, starting
Note that the probability of reaching the bar before reaching home, starting

Latest revision as of 14:44, 17 June 2024

[math] \newcommand{\NA}{{\rm NA}} \newcommand{\mat}[1]{{\bf#1}} \newcommand{\exref}[1]{\ref{##1}} \newcommand{\secstoprocess}{\all} \newcommand{\NA}{{\rm NA}} \newcommand{\mathds}{\mathbb}[/math]

The subject of Markov chains is best studied by considering special types of Markov chains. The first type that we shall study is called an absorbing Markov chain.

Definition

A state [math]s_i[/math] of a Markov chain is called absorbing if it is impossible to leave it (i.e., [math]p_{ii} = 1[/math]). A Markov chain is absorbing if it has at least one absorbing state, and if from every state it is possible to go to an absorbing state (not necessarily in one step).

Definition

In an absorbing Markov chain, a state which is not absorbing is called transient.

Drunkard's Walk

Example A man walks along a four-block stretch of Park Avenue (see [[#fig 11.3|Figure]]). If he is at corner 1, 2, or 3, then he walks to the left or right with equal probability. He continues until he reaches corner 4, which is a bar, or corner 0, which is his home. If he reaches either home or the bar, he stays there.


We form a Markov chain with states 0, 1, 2, 3, and 4. States 0 and 4 are absorbing states. The transition matrix is then

[math]0[/math][math]1[/math] [math]2[/math] [math]3[/math] [math]4[/math]
[math]\mat{P} =\,\,[/math] [math]\begin{array}{c c c c} 0 \\ 1\\ 2\\ 3\\ 4 \end{array}[/math] [math]\begin{pmatrix} 1 & 0 & 0 & 0 & 0 \\ 1/2 & 0 & 1/2 & 0 & 0 \\ 0 & 1/2 & 0 & 1/2 & 0 \\ 0 & 0 & 1/2 & 0 & 1/2 \\ 0 & 0 & 0 & 0 & 1 \\ \end{pmatrix}[/math]


The states 1, 2, and 3 are transient states, and from any of these it is possible to reach the absorbing states 0 and 4. Hence the chain is an absorbing chain. When a process reaches an absorbing state, we shall say that it is absorbed.

The most obvious question that can be asked about such a chain is: What is the probability that the process will eventually reach an absorbing state? Other interesting questions include: (a) What is the probability that the process will end up in a given absorbing state? (b) On the average, how long will it take for the process to be absorbed? (c) On the average, how many times will the process be in each transient state? The answers to all these questions depend, in general, on the state from which the process starts as well as the transition probabilities.

Drunkard's walk.

Canonical Form

Consider an arbitrary absorbing Markov chain. Renumber the states so that the transient states come first. If there are [math]r[/math] absorbing states and [math]t[/math] transient states, the transition matrix will have the following canonical form

[math]\hbox{TR.}[/math][math]\hbox{ABS.}[/math]
[math]\mat{P} =[/math] [math]\begin{array}{cc} \hbox{TR.}\strut \\ \hbox{ABS.}\strut \end{array}[/math] [math]\left(\begin{array}{c|c} \mat{Q} &\mat{R} \\ \hline \mat{0} &\mat{I} \end{array}\right)[/math]


Here [math]\mat{I}[/math] is an [math]r[/math]-by-[math]r[/math] indentity matrix, [math]\mat{0}[/math] is an [math]r[/math]-by-[math]t[/math] zero matrix, [math]\mat{R}[/math] is a nonzero [math]t[/math]-by-[math]r[/math] matrix, and [math]\mat{Q}[/math] is an [math]t[/math]-by-[math]t[/math] matrix. The first [math]t[/math] states are transient and the last [math]r[/math] states are absorbing.

In Introduction, we saw that the entry [math]p_{ij}^{(n)}[/math] of the matrix [math]\mat{P}^n[/math] is the probability of being in the state [math]s_j[/math] after [math]n[/math] steps, when the chain is started in state [math]s_i[/math]. A standard matrix algebra argument shows that [math]\mat{P}^n[/math] is of the form

[math]\hbox{TR.}[/math][math]\hbox{ABS.}[/math]
[math]\mat{P} =[/math] [math]\begin{array}{cc} \hbox{TR.}\strut \\ \hbox{ABS.}\strut \end{array}[/math] [math]\left(\begin{array}{c|c} \mat{Q}^n &\ast \\ \hline \mat{0} &\mat{I} \end{array}\right)[/math]


where the asterisk [math]*[/math] stands for the [math]t[/math]-by-[math]r[/math] matrix in the upper right-hand corner of [math]\mat{P}^n.[/math] (This submatrix can be written in terms of [math]\mat{Q}[/math] and [math]\mat{R}[/math], but the expression is complicated and is not needed at this time.) The form of [math]\mat{P}^n[/math] shows that the entries of [math]\mat{Q}^n[/math] give the probabilities for being in each of the transient states after [math]n[/math] steps for each possible transient starting state. For our first theorem we prove that the probability of being in the transient states after [math]n[/math] steps approaches zero. Thus every entry of [math]\mat{ Q}^n[/math] must approach zero as [math]n[/math] approaches infinity (i.e, [math]\mat{Q}^n \to \mat{0}[/math]).

Probability of Absorption

Theorem

In an absorbing Markov chain, the probability that the process will be absorbed is 1 (i.e., [math]\mat{Q}^n \to \mat{0}[/math] as [math]n \to \infty[/math]).

Show Proof

From each nonabsorbing state [math]s_j[/math] it is possible to reach an absorbing state. Let [math]m_j[/math] be the minimum number of steps required to reach an absorbing state, starting from [math]s_j[/math]. Let [math]p_j[/math] be the probability that, starting from [math]s_j[/math], the process will not reach an absorbing state in [math]m_j[/math] steps. Then [math]p_j \lt 1[/math]. Let [math]m[/math] be the largest of the [math]m_j[/math] and let [math]p[/math] be the largest of [math]p_j[/math]. The probability of not being absorbed in [math]m[/math] steps is less than or equal to [math]p[/math], in [math]2m[/math] steps less than or equal to [math]p^2[/math], etc. Since [math]p \lt 1[/math] these probabilities tend to 0. Since the probability of not being absorbed in [math]n[/math] steps is monotone decreasing, these probabilities also tend to 0, hence [math]\lim_{n \rightarrow \infty } \mat{Q}^n = 0.[/math]

The Fundamental Matrix

Theorem

For an absorbing Markov chain the matrix [math]\mat{I} - \mat{Q}[/math] has an inverse [math]\mat{N}[/math] and [math]\mat{N} =\mat{I} + \mat{Q} + \mat{Q}^{2} + \cdots\ [/math]. The [math]ij[/math]-entry [math]n_{ij}[/math] of the matrix [math]\mat{N}[/math] is the expected number of times the chain is in state [math]s_j[/math], given that it starts in state [math]s_i[/math]. The initial state is counted if [math]i = j[/math].

Show Proof

Let [math](\mat{I} - \mat{Q})\mat{x}~=~0;[/math] that is [math]\mat{x}~=~\mat{Q}\mat{x}.[/math] Then, iterating this we see that [math]\mat{x}~=~\mat{Q}^{n}\mat x.[/math] Since [math]\mat{Q}^{n} \rightarrow \mat{0}[/math], we have [math]\mat{Q}^n\mat{x} \rightarrow \mat{0}[/math], so [math]\mat{x}~=~\mat{0}[/math]. Thus [math](\mat{I} - \mat{Q})^{-1}~=~\mat{N}[/math] exists. Note next that

[[math]] (\mat{I} - \mat{Q}) (\mat{I} + \mat{Q} + \mat{Q}^2 + \cdots + \mat{Q}^n) = \mat{I} - \mat{Q}^{n + 1}\ . [[/math]]
Thus multiplying both sides by [math]\mat{N}[/math] gives

[[math]] \mat{I} + \mat{Q} + \mat{Q}^2 + \cdots + \mat{Q}^n = \mat{N} (\mat{I} - \mat{Q}^{n + 1})\ . [[/math]]
Letting [math]n[/math] tend to infinity we have

[[math]] \mat{N} = \mat{I} + \mat{Q} + \mat{Q}^2 + \cdots\ . [[/math]]

Let [math]s_i[/math] and [math]s_j[/math] be two transient states, and assume throughout the remainder of the proof that [math]i[/math] and [math]j[/math] are fixed. Let [math]X^{(k)}[/math] be a random variable which equals 1 if the chain is in state [math]s_j[/math] after [math]k[/math] steps, and equals 0 otherwise. For each [math]k[/math], this random variable depends upon both [math]i[/math] and [math]j[/math]; we choose not to explicitly show this dependence in the interest of clarity. We have

[[math]] P(X^{(k)} = 1) = q_{ij}^{(k)}\ , [[/math]]
and

[[math]] P(X^{(k)} = 0) = 1 - q_{ij}^{(k)}\ , [[/math]]
where [math]q_{ij}^{(k)}[/math] is the [math]ij[/math]th entry of [math]\mat{Q}^k[/math]. These equations hold for [math]k = 0[/math] since [math]\mat{Q}^0 = \mat{I}[/math]. Therefore, since [math]X^{(k)}[/math] is a 0-1 random variable, [math]E(X^{(k)}) = q_{ij}^{(k)}[/math].


The expected number of times the chain is in state [math]s_j[/math] in the first [math]n[/math] steps, given that it starts in state [math]s_i[/math], is clearly

[[math]] E\Bigl(X^{(0)} + X^{(1)} + \cdots + X^{(n)} \Bigr) = q_{ij}^{(0)} + q_{ij}^{(1)} + \cdots + q_{ij}^{(n)}\ . [[/math]]
Letting [math]n[/math] tend to infinity we have

[[math]] E\Bigl(X^{(0)} + X^{(1)} + \cdots \Bigr) = q_{ij}^{(0)} + q_{ij}^{(1)} + \cdots = n_{ij} \ . [[/math]]

Definition

For an absorbing Markov chain [math]\mat{P}[/math], the matrix [math]\mat{N} = (\mat{I} - \mat{Q})^{-1}[/math] is called the fundamental matrix for [math]\mat{P}[/math]. The entry [math]n_{ij}[/math] of [math]\mat{N}[/math] gives the expected number of times that the process is in the transient state [math]s_j[/math] if it is started in the transient state [math]s_i[/math].

Example (Example continued) In the Drunkard's Walk example, the transition matrix in canonical form is

[math]1[/math][math]2[/math] [math] 3[/math] [math]0[/math] [math]4[/math]
[math]1[/math] [math]0[/math][math]1/2[/math] [math] 0[/math][math]1/2[/math] [math]0[/math]
[math]\mat{P} =\,\,[/math] [math]\begin{array}{c c c c} 2\\ 3\\ 0\\ 4 \end{array}[/math] [math]\left(\begin{array}{ccc|cc} 1/2 & 0 &1/2 & 0 & 0 \\ 0 &1/2 & 0 & 0 & 1/2\\ \hline 0 & 0 & 0 & 1 & 0 \\ 0 & 0 & 0 & 0 & 1 \end{array}\right)[/math]

From this we see that the matrix [math]\mat{Q}[/math] is

[[math]] \mat{Q} = \pmatrix{ 0 & 1/2 & 0 \cr 1/2 & 0 & 1/2 \cr 0 & 1/2 & 0 \cr}\ , [[/math]]

and

[[math]] \mat{I} - \mat{Q} = \pmatrix{ 1 & -1/2 & 0 \cr -1/2 & 1 & -1/2 \cr 0 & -1/2 & 1 \cr}\ . [[/math]]

Computing [math](\mat{I} - \mat{Q})^{-1}[/math], we find

[math]1[/math][math]2[/math] [math]3[/math]
[math]\hbox{$\mat{N} = (\mat{I} - \mat{Q})^{-1} = {}$} [/math] [math]\begin{array}{c c c c} \mbox{1} \\ \mbox{2}\\ \mbox{3}\\ \end{array}[/math] [math]\begin{pmatrix} 1 \,& 0\, & 0 \\ .5 \,& .5\, & 0 \\ 0 \,& 1\, & 0\\ \end{pmatrix}[/math]


From the middle row of [math]\mat{N}[/math], we see that if we start in state 2, then the expected number of times in states 1, 2, and 3 before being absorbed are 1, 2, and 1.

Time to Absorption

We now consider the question: Given that the chain starts in state [math]s_i[/math], what is the expected number of steps before the chain is absorbed? The answer is given in the next theorem.

Theorem

Let [math]t_i[/math] be the expected number of steps before the chain is absorbed, given that the chain starts in state [math]s_i[/math], and let [math]\mat{t}[/math] be the column vector whose [math]i[/math]th entry is [math]t_i[/math]. Then

[[math]] \mat{t} = \mat{N}\mat{c}\ , [[/math]]
where [math]\mat{c}[/math] is a column vector all of whose entries are 1.

Show Proof

If we add all the entries in the [math]i[/math]th row of [math]\mat{N}[/math], we will have the expected number of times in any of the transient states for a given starting state [math]s_i[/math], that is, the expected time required before being absorbed. Thus, [math]t_i[/math] is the sum of the entries in the [math]i[/math]th row of [math]\mat{N}[/math]. If we write this statement in matrix form, we obtain the theorem.

Absorption Probabilities

Theorem

Let [math]b_{ij}[/math] be the probability that an absorbing chain will be absorbed in the absorbing state [math]s_j[/math] if it starts in the transient state [math]s_i[/math]. Let [math]\mat{B}[/math] be the matrix with entries [math]b_{ij}[/math]. Then [math]\mat{B}[/math] is an [math]t[/math]-by-[math]r[/math] matrix, and

[[math]] \mat{B} = \mat{N} \mat{R}\ , [[/math]]
where [math]\mat{N}[/math] is the fundamental matrix and [math]\mat{R}[/math] is as in the canonical form.

Show Proof

We have

[[math]] \begin{eqnarray*} \mat{B}_{ij} &=& \sum_n\sum_k q_{ik}^{(n)} r_{kj} \\ &=& \sum_k \sum_n q_{ik}^{(n)} r_{kj} \\ &=& \sum_k n_{ik}r_{kj} \\ &=& (\mat{N}\mat{R})_{ij}\ . \end{eqnarray*} [[/math]]
This completes the proof.


Another proof of this is given in Exercise.

Example (Example continued)

In the Drunkard's Walk example, we found that

[math]1[/math][math]2[/math] [math]3[/math]
[math]\hbox{$\mat{N} = {}$}[/math] [math]\begin{array}{c c c c} \mbox{1} \\ \mbox{2}\\ \mbox{3}\\ \end{array}[/math] [math]\begin{pmatrix} 3/2 & 1 & 1/2 \\ 1 & 2 & 1 \\ 1/2 & 1 & 3/2 \\ \end{pmatrix}[/math]

Hence,

[[math]] \begin{eqnarray*} \mat{t} = \mat{N}\mat{c} &=& \pmatrix{ 3/2 & 1 & 1/2 \cr 1 & 2 & 1 \cr 1/2 & 1 & 3/2 \cr } \pmatrix{ 1 \cr 1 \cr 1 \cr } \\ &=& \pmatrix{ 3 \cr 4 \cr 3 \cr }\ . \end{eqnarray*} [[/math]]

Thus, starting in states 1, 2, and 3, the expected times to absorption are 3, 4, and 3, respectively.


From the canonical form,

[math]0[/math][math]4[/math]
[math]\hbox{$\mat{N} = {}$}[/math] [math]\begin{array}{c c c c} 1 \\ 2 \\ 3 \end{array}[/math] [math]\begin{pmatrix} 1/2 & 0 \\ 0 & 0 \\ 0 & 1/2 \end{pmatrix}[/math]


Hence,

[[math]] \begin{eqnarray*} \mat{B} = \mat{N} \mat{R} &=& \pmatrix{ 3/2 & 1 & 1/2 \cr 1 & 2 & 1 \cr 1/2 & 1 & 3/2 \cr} \cdot \pmatrix{ 1/2 & 0 \cr 0 & 0 \cr 0 & 1/2 \cr} \cr \end{eqnarray*} [[/math]]

[math]0[/math][math]4[/math]
[math]=\,\,[/math] [math]\begin{array}{c c c c} 1 \\ 2 \\ 3 \end{array}[/math] [math]\begin{pmatrix} 1/2 & 0 \\ 0 & 0 \\ 0 & 1/2 \end{pmatrix}[/math]


Here the first row tells us that, starting from state [math]1[/math], there is probability 3/4 of absorption in state [math]0[/math] and 1/4 of absorption in state [math]4[/math].

Computation

The fact that we have been able to obtain these three descriptive quantities in matrix form makes it very easy to write a computer program that determines these quantities for a given absorbing chain matrix. The program AbsorbingChain calculates the basic descriptive quantities of an absorbing Markov chain. We have run the program AbsorbingChain for the example of the drunkard's walk (Example) with 5 blocks. The results are as follows:

[math]1[/math][math]2[/math][math]3[/math][math]4[/math]
[math]\mat{Q} =\,\,[/math] [math]\begin{array}{c c c c} 1 \\ 2 \\ 3 \\ 4 \end{array}[/math] [math]\begin{pmatrix} .00 & .50 & .00 & .00\\ .50 & .00 & .50 & .00\\ .00 & .50 & .00 & .50\\ .00 & .00 & .50 & .00\\ \end{pmatrix};[/math]


[math]0[/math][math]5[/math]
[math]\mat{R} =\,\,[/math] [math]\begin{array}{c c c c} 1 \\ 2 \\ 3 \\ 4 \end{array}[/math] [math]\begin{pmatrix} .50 & .00 \\ .00 & .00 \\ .00 & .00 \\ .00 & .50 \end{pmatrix};[/math]


[math]1[/math][math]2[/math][math]3[/math][math]4[/math]
[math]\mat{N} =\,\,[/math] [math]\begin{array}{c c c c} 1 \\ 2 \\ 3 \\ 4 \end{array}[/math] [math]\begin{pmatrix} 1.60 & 1.20 & .80 & .40 \\ 1.20 & 2.40 & 1.60 & .80 \\ .80 & 1.60 & 2.40 & 1.20\\ .40 & .80 & 1.20 & 1.60 \end{pmatrix};[/math]


[math]\mat{t} =\,\,[/math] [math]\begin{array}{c c c c} 1 \\ 2 \\ 3 \\ 4 \end{array}[/math] [math]\begin{pmatrix} 4.00 \\ 6.00 \\ 6.00 \\ 4.00 \end{pmatrix};[/math]


[math]0[/math][math]5[/math]
[math]\mat{B} =\,\,[/math] [math]\begin{array}{c c c c} 1 \\ 2 \\ 3 \\ 4 \end{array}[/math] [math]\begin{pmatrix} .80 & .20 \\ .60 & .40 \\ .40 & .60 \\ .20 & .80 \\ \end{pmatrix};[/math]


Note that the probability of reaching the bar before reaching home, starting at [math]x[/math], is [math]x/5[/math] (i.e., proportional to the distance of home from the starting point). (See Exercise.)

General references

Doyle, Peter G. (2006). "Grinstead and Snell's Introduction to Probability" (PDF). Retrieved June 6, 2024.