Efficient algorithm to compute only the most probable sequences of a random variable out of all possible sequences

조회 수: 3 (최근 30일)
I'm looking for a better way to compute the possible sequences of a random variable whos value at time k is given by.
x(k) = 1 with probability p(1), 2 with probability p(2), ... np with probability p(np).
However, since the number of possible sequences increases exponentially with n and np, I only want to compute the most probable sequences which have a combined probability less than a threshold p_cut.
I've devised a function to do this below but it has two major drawbacks.
  1. It doesn't generalize to sequences longer than 3.
  2. It is quite memory inefficient since it always computes all possible permutations when only a subset may be needed.
function S = most_probable_sequences(p, n, p_cut)
assert(sum(p) == 1);
np = numel(p);
switch n
case 1
all_perms = (1:np)';
case 2
[X,Y] = ndgrid(1:np,1:np);
all_perms = [X(:) Y(:)];
case 3
[X,Y,Z] = ndgrid(1:np,1:np,1:np);
all_perms = [X(:) Y(:) Z(:)];
otherwise
error("n > 3 not implemented")
end
probs = prod(reshape(p(all_perms), [], n), 2);
[probs_sorted, order] = sort(probs, 'descend');
most_prob = cumsum(probs_sorted) <= p_cut;
S = all_perms(order(most_prob), :);
end
Examples of correct output of this function:
>> S = most_probable_sequences([0.95 0.04 0.01], 1, 0.99)
S =
1
2
>> S = most_probable_sequences([0.01 0.04 0.95], 2, 0.99)
S =
3 3
3 2
2 3
3 1
  댓글 수: 4
Bill Tubbs
Bill Tubbs 2021년 6월 23일
Thanks, yes I'm expecting some of the orderings to be arbitrary when p_cut < 1. A next step might be to think about what particular orderings I want but at the moment I'm just trying to cap the total number sequences. As long as the number of sequences is a minimum.
Matt J
Matt J 2021년 6월 23일
편집: Matt J 2021년 6월 23일
It is still a question though, whether you need the sequences that differ only by ordering listed explicitly. You could save memory and computation time if instead of listing the solution as,
S =[ 3 3
3 2
2 3
3 1];
you instead listed the result in tabular form like,
C=cell2table({[3 3], 1; [3 2], 2; [3 1], 1},'VariableNames',{'Sequence','Permutations'})
C = 3×2 table
Sequence Permutations ________ ____________ 3 3 1 3 2 2 3 1 1

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채택된 답변

Matt J
Matt J 2021년 6월 23일
편집: Matt J 2021년 6월 24일
This might work, but it requires uniqueperms from the file exchange:
p=[0.01 0.04 0.95];
S = most_probable_sequences(p, 2, 0.99)
S = 4×2
3 3 2 3 3 2 1 3
function S=most_probable_sequences(p, n, p_cut)
assert( abs(sum(p)-1) <= 1e-12);
S = recursor(p, n, p_cut);
end
function S = recursor(p, n, p_cut,~)
if n==1
[p,S]=sort(p(:),'descend');
cut=cumsum(p)<=p_cut;
S=S(cut);
return
end
s=recursor(p, n-1, p_cut,[]);
s=unique(sort(s,2),'rows');
np=numel(p);
ns=size(s,1);
[I,J]=ndgrid(1:ns,1:np);
s=unique(sort([s(I(:),:),J(:)],2),'rows');
s=num2cell(s,2);
for i=1:numel(s), s{i}=uniqueperms( s{i} ); end
s=cell2mat(s);
sp=prod(p(s),2);
[Probs,is]=sort(sp(:),'descend');
cut=cumsum(Probs)<=p_cut;
S=s(is(cut),:);
end
  댓글 수: 6
Bill Tubbs
Bill Tubbs 2021년 6월 23일
What is uniqueperms()? I see more than one thing on File Exchange with this name.

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추가 답변 (2개)

Matt J
Matt J 2021년 6월 24일
편집: Matt J 2021년 6월 24일
but it has two major drawbacks....It doesn't generalize to sequences longer than 3.
The first drawback at least is easy to fix.
function S = most_probable_sequences(p, n, p_cut)
assert( abs(sum(p)-1) <= 1e-12);
np = numel(p);
[all_perms{1:n}] = ndgrid(1:np);
all_perms=reshape( cat(n+1,all_perms{:}) , [],n);
probs = prod(reshape(p(all_perms), [], n), 2);
[probs_sorted, order] = sort(probs, 'descend');
most_prob = cumsum(probs_sorted) <= p_cut;
S = all_perms(order(most_prob), :);
end
This will be faster, but less memory efficient than my other answer.

Matt J
Matt J 2021년 6월 24일
편집: Matt J 2021년 6월 24일
Here is a far more efficient version of my original answer based on my recommendation above to avoid explicitly listing permutations of the same sequence. It requires no File Exchange downloads and, as demonstrated below, easily handles up to n=12 and np=10.
%Small example
S = most_probable_sequences([0.01 0.04 0.95], 2, 0.99),
S = 3×2 table
Sequences NumPerms _________ ________ 3 3 1 2 3 2 1 3 1
%Large example
p=rand(1,10);p=p/sum(p);
tic
S = most_probable_sequences(p, 12, 0.99);
toc
Elapsed time is 1.789715 seconds.
function S=most_probable_sequences(p, n, p_cut)
assert( abs(sum(p)-1) <= 1e-12)
S = recursor(p(:), n, p_cut);
end
function S = recursor(p, n, p_cut)
if n==1
[p,S]=sort(p(:),'descend');
ncut=find(cumsum(p)<=p_cut,1,'last');
S=S(1:ncut);
S=table(S,ones(size(S)),'VariableNames',{'Sequences','NumPerms'});
return
end
s=recursor(p, n-1, p_cut);
s=s.Sequences;
np=numel(p);
ns=size(s,1);
[I,J]=ndgrid(1:ns,1:np);
s=unique( sort( [s(I(:),:), J(:)] ,2) ,'rows','stable'); clear I J
ns=size(s,1);
X=repmat((1:ns).',1,n);
K=histcounts2(X,s,1:ns+1,1:np+1);
F = cumprod([1 1 2:n]) ; % trick to get all needed factorials (note that all K < N)
w = F(n+1) ./ prod(F(K+1),2) ; % number of unique permutations
clear F K X
sProbs=prod(p(s),2); %single sequence probabilities
wProbs=w.*sProbs; %weighted probabilities
[wProbs,order]=sort(wProbs(:),'descend');
sProbs=sProbs(order);
c=cumsum(wProbs);
mcut=find( c<=p_cut,1,'last');
kcut=floor( (p_cut-c(mcut))/sProbs(mcut+1));
ncut=mcut+(kcut>0);
order=order(1:ncut);
S=s(order,:);
w=w(order);
if kcut>0, w(end)=kcut; end
S=table(S,w,'VariableNames',{'Sequences','NumPerms'});
end

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