Mercurial > hg > camir-aes2014
view toolboxes/FullBNT-1.0.7/bnt/examples/dynamic/chmm1.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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% Compare the speeds of various inference engines on a coupled HMM N = 3; Q = 2; rand('state', 0); randn('state', 0); discrete = 0; if discrete Y = 2; % size of output alphabet else Y = 3; % size of observed vectors end coupled = 1; bnet = mk_chmm(N, Q, Y, discrete, coupled); %bnet = mk_fhmm(N, Q, Y, discrete); % factorial HMM ss = length(bnet.node_sizes_slice); T = 3; USEC = exist('@jtree_C_inf_engine/collect_evidence','file'); engine = {}; engine{end+1} = jtree_dbn_inf_engine(bnet); %engine{end+1} = jtree_ndx_dbn_inf_engine(bnet, 'ndx_type', 'SD'); %engine{end+1} = jtree_ndx_dbn_inf_engine(bnet, 'ndx_type', 'D'); %engine{end+1} = jtree_ndx_dbn_inf_engine(bnet, 'ndx_type', 'B'); if USEC, engine{end+1} = jtree_C_dbn_inf_engine(bnet); end engine{end+1} = hmm_inf_engine(bnet); engine{end+1} = jtree_unrolled_dbn_inf_engine(bnet, T); % times in matlab N=4 Q=4 T=5 (* = winner) % jtree SD B hmm dhmm unrolled % 0.6266 1.1563 8.3815 0.3069 0.1948* 0.8654 inf % 0.9057* 2.1522 12.6314 2.6847 2.3107 3.1905 learn %engine{end+1} = bk_inf_engine(bnet, 'ff', onodes); %engine{end+1} = pearl_unrolled_dbn_inf_engine(bnet, T); inf_time = cmp_inference_dbn(bnet, engine, T) learning_time = cmp_learning_dbn(bnet, engine, T)