How to use linear interpolation for filling with 3s inside empty spaces in a matrix of os and 3s
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M = [0 0 0;... 0 0 3;... 3 3 0;... 0 3 3;... 3 0 0;... 0 0 3;... 3 0 0;... 0 0 0]; I want to use interpolation to fill the gaps between 3s. I tried different methods but no satisfactory answer Is there any other method possible to apply plz Thanks for all cooperation
2 个评论
dpb
2019-7-26
Show us what you tried on a real array and what you think wrong with the answer got...
I have no idea what it is you have in mind from this description, sorry...
回答(3 个)
dpb
2019-7-27
for i=1:size(M,2)
ix=find(M(:,i)==3);
if numel(ix)>1
M(ix(1):ix(end),i)=3;
end
end
2 个评论
dpb
2019-7-27
编辑:dpb
2019-7-27
LOL! I knew that was coming while writing the above...illustrates that over-simplification gets the right answer to the wrong question.
How large are your arrays and what are actual values in real application? Such pattern matching may well be better suited to casting the values to char() as then can search for string match as patterns...
Andrei Bobrov
2019-7-27
编辑:Andrei Bobrov
2019-7-30
s = size(M);
[a,b] = regexp(join(string(M)',''),'30+3');
jj = repelem(1:s(2),cellfun(@numel,a));
lo = zeros(s);
lo(sub2ind(s,[a{:}]+1,jj)) = 1;
lo(sub2ind(s,[b{:}],jj)) = -1;
M(cumsum(lo)>0) = 3;
Other variant:
M = [0 0 0; 2 2 3; 3 3 0; 0 0 0; 3 3 0; 2 2 3; 0 0 0; 3 3 2; 0 0 0; 3 3 3];
m = M;
m(m == 0) = nan;
M(fillmissing(m,'previous') == 3 & fillmissing(m,'next') == 3) = 3;
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