9

I would like to read a file with fread from data.table that has a column with "YYYY-MM-DD" format dates. By default, fread reads the column as chr. However, I would like to have the column as Date, the same way I would obtain when applying as.Date.

I have tried to use

dt[,starttime.date := as.Date(starttime.date)]

but it takes very long to run (I have approx. 43 million rows).

  • 1
    Have a look at ?fread, the second paragraph under Description. – Arun Mar 19 '15 at 9:10
  • @Arun Would as.IDate be faster than as.Date? – Roland Mar 19 '15 at 9:14
  • 1
    Related: stackoverflow.com/q/12786335/1412059 – Roland Mar 19 '15 at 9:15
  • Thank you. as.IDate is not faster, takes the same time as as.Date. – paljenczy Mar 19 '15 at 9:31
  • 2
    I find that adding a format string in as.Date usually helps, as in as.Date(d, format='%Y-%m-%d'). Another thing you could try, since you have a large number of rows and presumably a smaller set of unique dates, is to group by the date column and do the conversion per group. – ytsaig Mar 19 '15 at 12:28
9

Using the fasttime package, as suggested in the fread documentation, is approximately 100x faster than as.Date or as.IDate:

library(data.table)
library(fasttime)

dt[,starttime.date := fastPOSIXct(starttime.date)]

Benchmark results:

library(microbenchmark)
library(fasttime)
DT <- data.table(start_date = paste(sample(1900:2018, 100000, replace = T), 
                                    sample(1:12, 100000, replace = T),
                                    sample(1:28, 100000, replace = T),
                                    sep = "-"))
microbenchmark(
  as.Date(DT$start_date),
  as.IDate(DT$start_date),
  fastPOSIXct(DT$start_date)
)

> Unit: milliseconds
>                        expr    mean 
>      as.Date(DT$start_date)  383.89
>     as.IDate(DT$start_date)  405.89
>  fastPOSIXct(DT$start_date)    4.59 

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