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I have a list of data frames, all containing numeric data. How would I go about changing the internal data.frames such that NA values = 0 and anything > or = 1, equals 1. Basically, convert to a data.frames of zero and one.

A quick example.

x <- list()
x$a <- data.frame(c(NA, NA, 7, 7, NA), c(1,1,NA,NA,NA))
x$b <- data.frame(c(NA, NA, 7, 7, NA), c(1,1,NA,NA,NA))
x$c <- data.frame(c(NA, NA, 7, 7, NA), c(1,1,NA,NA,NA))

Generally, if I was only doing one I would do something like:

x$a[x$a >= 1] <- 1
x[is.na(x$a)] <- 0

Now, how do I apply that across an entire list?

UPDATE: Anyone care to add a solution with ldply() for good measure?

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3 Answers 3

up vote 4 down vote accepted

There's probably a shorter / more efficient solution, but this works:

lapply(x, function(y) {y[y >= 1] <- 1; y[is.na(y)] <- 0; y})
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On a list of 5 data.frames worth 10.000 rows each, this solution comes first (10 replicates takes 0.13 s) (then Chase's (0.31 s) and then Ramnath's (2.3 s)). –  Roman Luštrik May 4 '11 at 7:35

Nest apply within lapply:

lapply(x, function(x) 
    apply(x, 2, function(y) ifelse(is.na(y), 0, ifelse(y >= 1, 1, y))
    )
)
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Here's another really convoluted way to do it. It works by first replacing all NAs by a 0, and then picking the minimum of a number and 1. This is just for the sake of illustration and fun, and is NOT recommended since it is nightmarish code to maintain!

lapply(lapply(x, function(y) replace(y, is.na(y), 0)), sapply, pmin, 1)
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I thought of a similar solution, but it will not provide correct answers if there are negative numbers and the OP wanted to keep them as they were. –  Joshua Ulrich May 3 '11 at 19:33
    
@Joshua. You are right. I edited the solution to account for this behavior –  Ramnath May 3 '11 at 21:00

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