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I have a matrix which have many columns in which all the values are NA. So I want to omit all the columns which are entirely NA. So how can I do this?

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3 Answers

You can use the function "na.omit()" to remove rows which contain NA observations. This function removes rows and will return a data frame without NA's.

If you wish to drop columns where every observation contains an NA...

I'm not sure of a built-in R function to do this. However, we may consider some kind of user defined process which drops columns with the most NA's...

### Assume 'df' is your data frame with observational data:

### Apply a function to check whether each observation contains an NA
count <- sapply(df, is.na)
### Within each column, ask for the number of missing observations
count <- colSums(count)
### Ask R which columns have the most missing observations
index <- which.max(count)
### Subset 'df' to exclude columns with the most NA's
df <- df[, -index]
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This answer appears assume that df is a data.frame. The question is about a matrix. The sapply approach is useful for data.frames and lists, but not for matrices. –  mnel Apr 2 '13 at 0:47
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I assume you only wish to omit columns where all observations are NA; your question is somewhat ambiguous.

This code omits columns that are entirely NA, for a matrix, x, returning only the columns with at least one non-NA value:

x[,apply(!is.na(x),2,any)] 
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It will be slightly more memory efficient to do x[,apply(x,2,function(xx) !any(is.na(xx)))], as this will not create is.na(x), just a vector of length(ncol(x)) –  mnel Apr 1 '13 at 23:52
    
@mnel Yes, if the matrix is big, my code above will be inefficient. –  Glen_b Apr 2 '13 at 0:32
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mtx[ , -which( colSums(is.na(mtx)) == nrow(mtx) ) ]

If you wanted to exclude the columns that had more than 50% NA entries then:

mtx[ , -which( colSums(is.na(mtx)) > nrow(mtx)/2 ) ]
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