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How can I use R to partition a dataset into N equally sized partitions? I've tried something like

    for (i in 1:100){data[i] <- full_data[i:(100000*i),]}

Which obviously doesn't work, but hopefully gives an idea of what I'm trying to accomplish. The full dataset has 1,000,000 rows and is already in random order. I'd like 100 equal and independent datasets of 10,000 rows each.

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3 Answers 3

up vote 0 down vote accepted

that should do it, assuming data is a list:

data <- list()
for (i in 1:100){data[[i]] <- full_data[((i-1)*10000+1):(i*10000),]}
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Dumb question, but how are the data sets named out of that loop? I tried data12, data[12]...can't seem to find it. –  Geoffrey Apr 10 '14 at 19:27
    
data is a list, so you get the elements by reference: data[[1]] (1:100) –  Christian Borck Apr 10 '14 at 19:29
    
data[[12]]....figured it out! Thanks... –  Geoffrey Apr 10 '14 at 19:29
    
Is it possible to get the datasets as dataframes, with names like data1, data2, etc.? –  Geoffrey Apr 10 '14 at 19:31
1  
I see your point about using the list structure - I'll stick with that. I'll likely combine the partition loop with the estimation loop, since ultimately I'm not that interested in the datasets themselves but rather the parameter estimates each one generates. –  Geoffrey Apr 10 '14 at 20:02

You can create quantiles-groups of index (eg you want exactly n group without having to count)

data <- data.frame(1:1000000)

xtile <- function (x, n)
    {
        cuts <- quantile(x, probs = seq(0, 1, length = n + 1))
        cut(x, breaks = cuts, include.lowest = TRUE)
    }

group <- xtile(1:nrow(data), 100)
all(table(group)== 10000)

data.spl <- split(data, group)
data.spl[[2]]
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I believe the cut2() function will also partition equally, and that you can set the number of partitions with an argument.

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