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I have a dataset like this

 4  6 18 12  4  5
 2  9  0  3 NA 13
11 NA  6  7  7  9

How I can fill the missing values using R?

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However you like. What have you tried/searched for? What do you want the new values to be? –  GSee Nov 5 '12 at 14:22
    
You could use a sharpie and write directly on your screen to cover up the 'n/a's with better data. And until you give us more information about what your trying to accomplish thats about the best advice you'll get here. –  gbtimmon Nov 5 '12 at 14:23
    
@GSee, the new values have to be related with the column and row. –  ilhan Nov 5 '12 at 14:23
2  
@george if it is not just a pure R-question but rather something like "How can I impute missing values in my data set?" the answer will be "it depends on the nature of your data". In the meantime you could check out the Imputation section in cran.r-project.org/web/views/OfficialStatistics.html for available packages in R. –  Beasterfield Nov 5 '12 at 14:43
2  
The zoo has lots of ways to deal with missing data. na.locf, na.spline, na.aggregate, na.fill, na.approx, na.trim, ... –  GSee Nov 5 '12 at 15:00

1 Answer 1

up vote 2 down vote accepted

If you want to replace your NAs with a fixed value (a being your dataset):

a[is.na(a)] <- 0 #For instance

If you want to replace them with a value that's a function of the row number and the column number (as you suggest in your comment):

#This will replace them by the sum of their row number and their column number:
a[is.na(a)] <- rowSums(which(is.na(a), arr.ind=TRUE))

#This will replace them by their row number:
a[is.na(a)] <- which(is.na(a), arr.ind=TRUE)[,1]

#And this by their column number:
a[is.na(a)] <- which(is.na(a), arr.ind=TRUE)[,2]
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