📄 cooper_yoo.m
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% Do the example in Cooper and Yoo, "Causal discovery from a mixture of experimental and% observational data", UAI 99, p120N = 2;dag = zeros(N);A = 1; B = 2;dag(A,B) = 1;ns = 2*ones(1,N);bnet0 = mk_bnet(dag, ns);%bnet0.CPD{A} = tabular_CPD(bnet0, A, 'unif', 1);bnet0.CPD{A} = tabular_CPD(bnet0, A, 'CPT', 'unif', 'prior_type', 'dirichlet');bnet0.CPD{B} = tabular_CPD(bnet0, B, 'CPT', 'unif', 'prior_type', 'dirichlet');samples = [2 2; 2 1; 2 2; 1 1; 1 2; 2 2; 1 1; 2 2; 1 2; 2 1; 1 1];clamped = [0 0; 0 0; 0 0; 0 0; 0 0; 1 0; 1 0; 0 1; 0 1; 0 1; 0 1];nsamples = size(samples, 1);% sequential versionLL = 0;bnet = bnet0;for l=1:nsamples ev = num2cell(samples(l,:)'); manip = find(clamped(l,:)'); LL = LL + log_marg_lik_complete(bnet, ev, manip); bnet = bayes_update_params(bnet, ev, manip);endassert(approxeq(exp(LL), 5.97e-7)) % compare with result from UAI paper% batch versioncases = num2cell(samples');LL2 = log_marg_lik_complete(bnet0, cases, clamped');bnet2 = bayes_update_params(bnet0, cases, clamped');assert(approxeq(LL, LL2))for j=1:N s1 = struct(bnet.CPD{j}); % violate object privacy s2 = struct(bnet2.CPD{j}); assert(approxeq(s1.CPT, s2.CPT))end
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