Mercurial > hg > camir-aes2014
comparison toolboxes/FullBNT-1.0.7/HMM/pomdp_sample.m @ 0:e9a9cd732c1e tip
first hg version after svn
author | wolffd |
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date | Tue, 10 Feb 2015 15:05:51 +0000 |
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-1:000000000000 | 0:e9a9cd732c1e |
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1 function [obs, hidden] = pomdp_sample(initial_prob, transmat, obsmat, act) | |
2 % SAMPLE_POMDP Generate a random sequence from a Partially Observed Markov Decision Process. | |
3 % [obs, hidden] = sample_pomdp(prior, transmat, obsmat, act) | |
4 % | |
5 % Inputs: | |
6 % prior(i) = Pr(Q(1)=i) | |
7 % transmat{a}(i,j) = Pr(Q(t)=j | Q(t-1)=i, A(t)=a) | |
8 % obsmat(i,k) = Pr(Y(t)=k | Q(t)=i) | |
9 % act(a) = A(t), so act(1) is ignored | |
10 % | |
11 % Output: | |
12 % obs and hidden are vectors of length T=length(act) | |
13 | |
14 | |
15 len = length(act); | |
16 hidden = mdp_sample(initial_prob, transmat, act); | |
17 obs = zeros(1, len); | |
18 for t=1:len | |
19 obs(t) = sample_discrete(obsmat(hidden(t),:)); | |
20 end |