Replace NaNs with previous values

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Johannes
Johannes 2012 年 10 月 9 日
編集済み: Namrata Goswami 2020 年 12 月 11 日
Hello,
I have the following problem. I like to replace NaNs with the previous values.
A =
4 5 6 7 8
32 NaN NaN 21 NaN
12 NaN 12 NaN NaN
34 NaN NaN NaN NaN
B =
4 5 6 7 8
32 5 6 21 8
12 5 12 21 8
34 5 12 21 8
I sloved it like this:
for i = 2:5
[r,c] = find(isnan(A(:,i)));
while sum(isnan(A(:,i)))>0
A(r,i) = A(r-1,i);
end
end
I'm sure there is a way avoiding the for and the while statement. I search for an "elegant" solution.
Someone's able to help me?
  2 件のコメント
Matt Fig
Matt Fig 2012 年 10 月 9 日
What if a whole column is nan? Which value will fill it?
Johannes
Johannes 2012 年 10 月 9 日
If the first value is NaN, everything should be NaN untill a different value appears in the column.
Thanks, Johannes

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回答 (5 件)

Moshe Flam
Moshe Flam 2017 年 12 月 3 日
編集済み: Moshe Flam 2017 年 12 月 4 日
Use `fillmissing` According to this matlab documentation (click here) on their website.
ROWBYROW = 2;
B = fillmissing(A,'previous',ROWBYROW);
  2 件のコメント
Rasoul Soufi Noughabi
Rasoul Soufi Noughabi 2020 年 9 月 16 日
nice!
Namrata Goswami
Namrata Goswami 2020 年 12 月 11 日
編集済み: Namrata Goswami 2020 年 12 月 11 日
This worked for me partially, since I need to replace missing values withing group. How to use fillmising within a group, like with splitapply ?

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Matt Fig
Matt Fig 2012 年 10 月 9 日
編集済み: Matt Fig 2012 年 10 月 9 日
Johannes, notice that your solution will fail if the first value in a column is nan. Rather than looking for a vectorized solution that may end up being rather convoluted (and being slower!), I would simply write a good FOR loop function that can handle all cases. For example, the following solution does not use the FIND function, and only uses simple loops and thus should be very fast:
function A = fill_nans(A)
% Replaces the nans in each column with
% previous non-nan values.
for ii = 1:size(A,2)
I = A(1,ii);
for jj = 2:size(A,1)
if isnan(A(jj,ii))
A(jj,ii) = I;
else
I = A(jj,ii);
end
end
end
  7 件のコメント
5 件の古いコメントを表示
Timothy Jackson
Timothy Jackson 2016 年 4 月 1 日
Is there a way to do this both before and after values? For instance changing
A= NaN NaN 2 4 8 NaN NaN to A= 2 2 2 4 8 8 8 ?
Faez Alkadi
Faez Alkadi 2017 年 5 月 1 日
Good question Timothy Jackson. I hope someone can answer this

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Wayne King
Wayne King 2012 年 10 月 9 日
編集済み: Wayne King 2012 年 10 月 9 日
How about:
A = [ 4 5 6 7 8
32 NaN NaN 21 NaN
12 NaN 12 NaN NaN
34 NaN NaN NaN NaN];
indices = isnan(A);
A(indices) = 0;
B = repmat([4 5 6 7 8],size(A,1),1);
A = A+B.*indices;
  1 件のコメント
Matt Fig
Matt Fig 2012 年 10 月 9 日
Johannes comments:
"Solution there:
A =
4 5 6 7 8
32 5 6 21 8
12 5 12 7 8
34 5 6 7 8
Not good, would need the following: 4 5 6 7 8 32 5 6 21 8 12 5 12 21 8 34 5 12 21 8
Still thanks for you help!"

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owr
owr 2012 年 10 月 9 日
I do this all the time, my code uses for loops, but I dont see anything wrong with for loops. Im sure there are more elegent solutions but this does the trick for me and is more than fast enough:
function datai = backfillnans(data)
% Dimensions
[numRow,numCol] = size(data);
% First, datai is copy of data
datai = data;
% For each column
for c = 1:numCol
% Find first non-NaN row
indxFirst = find(~isnan(data(:,c)),1,'first');
% Find all NaN rows
indxNaN = find(isnan(data(:,c)));
% Find NaN rows beyond first non-NaN
indx = indxNaN(indxNaN > indxFirst);
% For each of these, copy previous value
for r = (indx(:))'
datai(r,c) = datai(r-1,c);
end
end
  2 件のコメント
Matt Fig
Matt Fig 2012 年 10 月 9 日
This seems to fail when a whole column of data is nan.
A = [25 NaN 54 99 20
3 NaN 92 74 89
7 NaN NaN NaN 82
75 NaN 43 65 77
NaN NaN 15 NaN 38]
owr
owr 2012 年 10 月 9 日
Ah, good catch Matt, thanks for that. Ive been using this for almost 2 years multiple times a day and thats never come up - I guess I never have a full column of nans. It can be fixed I guess by putting an:
if( ~isempty(indxFirst) )
after the line that calculates "indxFirst". Part of me would actually like the whole process to fail so I can figure out why I passed a full column of nans in the first place - that would be symptomatic of a much bigger issue...
Anyways, thanks for taking the time to run and test the code.

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Carlos Vladimir Rodriguez Caballero
Carlos Vladimir Rodriguez Caballero 2017 年 7 月 18 日
I found your procedure much more elegant and efficient. It was very helpful man.

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