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I want to replace 0 (missing data) with data from another array.

Both data has 2013~1995 January ice sheet data, and I want to analyze temperature data only (in column 3), 4464 temperatures data.

Partial data looks like this: This is from ErinJan[,,1]

            [,1] [,2]  [,3]  [,4]  [,5] [,6]  [,7]  [,8]
    [1   ,]   21   10   0.0   0.0  0.0    0  0.0    0
    [2   ,]   21   11   0.0   0.0  0.0    0  0.0    0
    [3   ,]   21   12 -16.3 867.4  0.0    0  0.0    0
    [4   ,]   21   13 -16.4 867.5  6.9   81 63.2    0
    [5   ,]   21   14 -16.5 867.2  7.6   83 63.0    0
    [6   ,]   21   15 -16.5 867.1  7.9   84 63.0    0
    [7   ,]   21   16   0.0 867.1  8.0   86 62.0    0
    [8   ,]   21   17 -16.3 867.0  8.4   87 62.0    0
    [9   ,]   21   18   0.0 866.9  8.3   85 62.0    0

And HarryJan[,,1] looks like:

            [,1] [,2]  [,3]  [,4]  [,5] [,6]  [,7]  [,8]
    [1   ,]   21   10 -12.4 877.6   2.5   52 444.0   9.1
    [2   ,]   21   11 -12.6 877.6   3.0   55 444.0   9.1
    [3   ,]   21   12 -12.9 877.5   3.8   52 444.0   9.1
    [4   ,]   21   13 -13.0 877.5   3.6   53 444.0   9.1
    [5   ,]   21   14 -12.9 877.3   3.3   51 444.0   9.1
    [6   ,]   21   15 -13.0 877.3   4.1   53 444.0   9.1
    [7   ,]   21   16 -13.2 877.1   3.6   53 444.0   9.1
    [8   ,]   21   17 -13.4 877.3   3.3   45 444.0   9.1
    [9   ,]   21   18 -13.4 877.3   3.6   48 444.0   9.1

Both array has the same format and same type of data like above. My goal is replace ErinJan[,3,1] missing data with HarryJan[,3,1] and so on. For example, ErinJan[1,3,1] is missing data, so I need to replace with HarryJan[1,3,1]. (0 will be replaced with -12.4.)

If I can code something like this:

   for (i in 1: 19){
        if ErinJan[,3,i] == 0 {
            replace value using HarryJan
        }
        else {
            do nothing
        }
     }

Is this possible? I am not sure what command I should use. Replace?

I'd appreciate your help. Thank you.

share|improve this question
    
It would be really helpful if you could supply subsets or fake data versions of ErinJan and HarryJan in a reproducible format. –  Thomas Apr 15 at 21:31
    
I added another example data, does this help? Thank you for comment. –  user3325640 Apr 15 at 22:00
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1 Answer 1

up vote 2 down vote accepted

If I understand your question, then this:

ErinJan[ErinJan == 0] <- HarryJan[ErinJan == 0]

would make the replacement across the whole matrix. I am not sure how your columns are arranged, but if you pull out all the column 3s, you should be able to do the same replacement for just that variable.

I believe this will work for column 3 only:

ErinJan[,3,][ErinJan[,3,]==0] = HarryJan[,3,][ErinJan[,3,]==0]

This works by indexing just the elements of the first array that equal zero and using those same indices to pull values from the second array.

If you find the stuff in square brackets confusing, here is another way to break it out in two steps:

JanInd = which(ErinJan[,3,]==0)
ErinJan[,3,][JanInd] = HarryJan[,3,][JanInd]
share|improve this answer
    
I do not quite understand this code. It works, but it did not replace with HarryJan[,3,1] values....I tried this: ErinJan[ErinJan[,3,] == 0] <- HaryJan[ErinJan[,3,] == 0] –  user3325640 Apr 15 at 22:27
    
So you want to replace all the ErinJan values (third dimension ranging from 1:19) with only HarryJan values from [,3,1]? I thought you wanted to replace ,,1 with ,,1 and ,,2 with ,,2...? The way it works is that the part in brackets acts like a which statement. Look for explanations of syntax like x[x>1] to pull out values of x where x>1 –  beroe Apr 15 at 22:36
    
Thank you so much! It worked! –  user3325640 Apr 15 at 22:38
    
Cool. Glad it worked. (Also probably best for testing to create another variable that is a copy of ErinJan so you don't have to keep re-loading it every time it is zapped...) –  beroe Apr 15 at 22:38
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