3

I have a column of time values, except that they are in character format and do not have the colons to separate H, M, S. The column looks similar to the following:

Time
024201
054722
213024
205022
205024
125440 

I want to convert all the values in the column to look like actual time values in the format H:M:S. The values are already in HMS format, so it is simply a matter of inserting colons, but that is proving more difficult than I thought. I found a package that adds commas every three digits from the right to make Strings look like currency values, but nothing for time (without also adding a date value, which I do not want to do). Any help would be appreciated.

7

Since the data is time related, you should consider storing it in a POSIX format:

> df <- data.frame(Time=c("024201", "054722", "213024", "205022", "205024", "125440")
> df$Time <- as.POSIXct(df$Time, format="%H%M%S")
> df

                 Time
1 2014-01-05 02:42:01
2 2014-01-05 05:47:22
3 2014-01-05 21:30:24
4 2014-01-05 20:50:22
5 2014-01-05 20:50:24
6 2014-01-05 12:54:40

To output just the times:

> format(df, "%H:%M:%S")
      Time
1 02:42:01
2 05:47:22
3 21:30:24
4 20:50:22
5 20:50:24
6 12:54:40
|improve this answer|||||
  • Even though the regex answers are very helpful, I like that this preserves the Time nature of the data values. Thanks! – whistler Jan 5 '14 at 2:36
6

A regular expression with lookaround works for this:

gsub('(..)(?=.)', '\\1:', x$Time, perl=TRUE)

The (?=.) means a character (matched by .) must follow, but is not considered part of the match (and is not captured).

|improve this answer|||||
3

Here is a regex solution:

x <- readLines(n=6)
024201
054722
213024
205022
205024
125440 

gsub("(\\d\\d)(\\d\\d)(\\d\\d)", "\\1:\\2:\\3", x)

## [1] "02:42:01"  "05:47:22"  "21:30:24" 
## [4] "20:50:22"  "20:50:24"  "12:54:40 "

Here the (\\d\\d) says we're looking for 2 digits. The parenthesis breaks the string into 3 parts. Then the \\1: says take chunk 1 and place a colon after it.

|improve this answer|||||
2

Or via date/times classes:

time <- c("024201", "054722", "213024", "205022", "205024", "125440")
time <- as.POSIXct(paste0("1970-01-01", time), format="%Y-%d-%m %H%M%S")
(time <- format(time, "%H:%M:%S"))
# [1] "02:42:01" "05:47:22" "21:30:24" "20:50:22" "20:50:24" "12:54:40"
|improve this answer|||||
0

This gives a chron "times" class vector:

> library(chron)
> times(gsub("(..)(..)(..)", "\\1:\\2:\\3", DF$Time))
[1] 02:42:01 05:47:22 21:30:24 20:50:22 20:50:24 12:54:40

The "times" class can display times without having to display the date and supports various methods on the times.

On the other hand, if only a character string is wanted then only the gsub part is needed.

|improve this answer|||||

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.