Select nearest non zero value in column

9 vues (au cours des 30 derniers jours)
Mabel Gray
Mabel Gray le 1 Nov 2018
Commenté : michael fechter le 1 Déc 2022
Hi, I have a matrix of which the last column consists mainly of zeros and an occasionally non zero value. In a For loop I use each loop the next row for calculations, but for the last column I want to select the closest non zero value in that column. How should I do that? Thanks in advance!
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the cyclist
the cyclist le 1 Nov 2018
Is it correct that given the input
b = [0 0 0 2 0 0 0 0 0 3 0]'
we could create the output
b2 = [2 2 2 2 2 2 2.5 3 3 3 3]'
then you would be all set?
Kevin Chng
Kevin Chng le 1 Nov 2018
Modifié(e) : Kevin Chng le 1 Nov 2018
My solution is coming from hard code. I would like to see any other shorter solution.
b = [0 0 0 2 0 0 0 0 0 3 0]';
ind = find(b>0);
if numel(ind)>1
indaverage2(1) = 1;
for i=1:1:numel(ind)-1;
indaverage1(i+1) = (ind(i)+ind(i+1))/2;
indaverage2(i+1) = floor((ind(i)+ind(i+1))/2);
end
k=1;
indaverage2(end+1) = numel(b);
for i=1:1:numel(ind)
valueforcalculation(indaverage2(i):indaverage2(i+1)) = b(ind(i)) ;
end
for i=1:1:numel(indaverage1)-1
if floor(indaverage1(i+1))==indaverage1(i+1)
valueforcalculation(indaverage1(i+1)) = (b(ind(i))+b(ind(i+1)))/2;
end
end
elseif numel(ind)==1
valueforcalculation(1:numel(b)) = b(ind);
elseif numel(ind)==0
valueforcalculation(1:numel(b)) = 0;
end

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Bruno Luong
Bruno Luong le 2 Nov 2018
Modifié(e) : Bruno Luong le 2 Nov 2018
b = [0; 0; 0; 2; 0; 0; 0; 0; 0; 3; 0]
nearestfun = @(b) interp1(find(b),b(b~=0),(1:length(b))','nearest','extrap');
closest = 0.5*(nearestfun(b) + flip(nearestfun(flip(b))))
  2 commentaires
Bruno Luong
Bruno Luong le 2 Nov 2018
A variant
b = [0; 0; 0; 2; 0; 0; 0; 0; 0; 3; 0]
nearestfun = @(b) interp1(find(b),b(b~=0),(1:length(b))','nearest','extrap');
closest = median([nearestfun(b),flip(nearestfun(flip(b)))],2)
michael fechter
michael fechter le 1 Déc 2022
Just had a similar problem of a frequency logger, skipping a few entries when an infinite value is recorded. works fine for what I was about to do hard coding.
Thanks!

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the cyclist
the cyclist le 1 Nov 2018
Modifié(e) : the cyclist le 1 Nov 2018
Assuming my comment above is correct, then here is a somewhat ugly solution:
b = [0 0 0 2 0 0 0 0 0 3 0]';
nonZeroIdx = find(b);
b2 = interp1(nonZeroIdx,b(nonZeroIdx),1:numel(b),'nearest','extrap');
for ni = 1:numel(nonZeroIdx)-1
isOddIdx = mod(nonZeroIdx([ni ni+1]),2);
if not(xor(isOddIdx(1),isOddIdx(2)))
b2(round((nonZeroIdx(ni)+nonZeroIdx(ni+1))/2)) = (b(nonZeroIdx(ni))+b(nonZeroIdx(ni+1)))/2;
end
end
The first part is easy ... using nearest-neighbor interpolation will get most of the values correct.
But you need the for loop (I think) to get the elements that are halfway between non-zero values, and that is ugly. There might be a better way.
  2 commentaires
Guillaume
Guillaume le 1 Nov 2018
Wouldn't it make more sense to perform a linear interpolation and then round to the nearest 0.5? Granted you may get several consecutive values at 0.5 instead of just the middle one but wouldn't that be more appropriate?
the cyclist
the cyclist le 1 Nov 2018
I had the same thought. Hard to know, without more context from OP.

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the cyclist
the cyclist le 1 Nov 2018
Modifié(e) : the cyclist le 1 Nov 2018
Here is a slightly slicker way:
b = [0 0 0 2 0 0 0 0 0 3 0]';
nonZeroIdx = find(b);
b_extended = [b(nonZeroIdx(1)); b; b(nonZeroIdx(end))];
nonZeroIdx = [1; nonZeroIdx+1; numel(b_extended)];
b_lo = interp1(nonZeroIdx,b_extended(nonZeroIdx),1:numel(b_extended)-1,'nearest','extrap');
b_hi = interp1(nonZeroIdx,b_extended(nonZeroIdx),2:numel(b_extended), 'nearest','extrap');
out = (b_lo+b_hi)/2;
out = out(1:end-1);

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