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I have a data.table with 57m records and 9 columns, one of which is causing a problem when I try to run some summary stats. The offending column is a factor with 3699 levels and I am receiveing an error from the following line of code:

    > unique(da$UPC)
    Error in unique.default(da$UPC): hash table is full

Now obviously I would just use: levels(da$UPC) but I am trying to count the unique values which exist in each group as part of multiple j parameters/caluclations in a data.table group statement.

Interestingly unique(da$UPC[1:1000000]) works as expected however unique(da$UPC[1:10000000]) does not. Given that my table has 57m records this is an issue.

I tried converting the factor to a character and that works no problem as follows:

    da$UPC = as.character(levels(da$UPC))[da$UPC]
    unique(da$UPC)

Doing this does show me an additional "level" which is NA. So because my data has some NAs in a factor column the unique function fails to work. I'm wondering if this is something which the developers are aware of an something which needs to be fixed? I found the following article on r-devel which might be relevant but I'm not sure and it does not mention data.table.

Linked article: unique(1:3,nmax=1) freezes R!

    sessionInfo:

    R version 3.0.1 (2013-05-16)
    Platform: x86_64-unknown-linux-gnu (64-bit)

    locale:
     [1] LC_CTYPE=C                    LC_NUMERIC=C
     [3] LC_TIME=en_US.iso88591        LC_COLLATE=C
     [5] LC_MONETARY=en_US.iso88591    LC_MESSAGES=en_US.iso88591
     [7] LC_PAPER=C                    LC_NAME=C
     [9] LC_ADDRESS=C                  LC_TELEPHONE=C
     [11] LC_MEASUREMENT=en_US.iso88591 LC_IDENTIFICATION=C

    attached base packages:
    [1] stats     graphics  grDevices utils     datasets  methods   base

    other attached packages:
    [1] plyr_1.8         data.table_1.8.8
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2  
Please post your sessionInfo() and a reproducible example (in spite of the link). –  Arun Dec 4 '13 at 20:11
    
Looking at unique.default, the error must be coming from the line factor(z, levels... since it works as character. –  Señor O Dec 4 '13 at 20:20
    
OK I have posted the sessionInfo but making a reproducible example will take a little while longer. –  Matt Weller Dec 4 '13 at 20:40
2  
It's not clear what this has to do with data.table. You're calling unique(a vector) which'll call, as Senor points out, unique.default. –  Arun Dec 4 '13 at 20:41
1  
Correct @Arun, I will remove the data.table tag. –  Matt Weller Dec 4 '13 at 21:06

1 Answer 1

Could you use dplyr and get a different result? For instance, I set up some (small) fake data, and then determine the distinct levels of alpha. I don't know how well this scales though.

test <- data.frame(alpha=sample(c('a', 'b', 'c'), 100000, replace=TRUE), 
                  num=runif(100000))

uniqueAlpha <- distinct(select(test, alpha))
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