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I wrote code to extract the date from a given string. Given

  > "Date: 2012-07-29, 12:59AM PDT"

it extracts

  > "2012-07-29" 

The problem is my code looks lengthy and cumbersome to read. I was wondering if was a more elegant way of doing this.

  raw_date = "Date: 2012-07-29, 12:59AM PDT"

  #extract the string from raw date
  index = regexpr("[0-9]{4}-[0-9]{2}-[0-9]{2}", raw_date) #returns 'start' and 'end' to be used in substring

  start = index #start represents the character position 's'. start+1 represents '='
  end = attr(index, "match.length")+start-1
  date = substr(raw_date,start,end); date
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4 Answers 4

up vote 8 down vote accepted

You can use strptime() to parse time objects:

R> strptime("Date: 2012-07-29, 11:59AM PDT", "Date: %Y-%m-%d, %I:%M%p", tz="PDT")
[1] "2012-07-29 11:59:00 PDT"
R> 

Note that I shifted your input string as I am unsure that 12:59AM exists... Just to prove the point, shifted by three hours (expressed in seconds, the base units):

R> strptime("Date: 2012-07-29, 11:59AM PDT", 
+>          "Date: %Y-%m-%d, %I:%M%p", tz="PDT") + 60*60*3
[1] "2012-07-29 14:59:00 PDT"
R> 

Oh, and if you just want the date, it is of course even simpler:

R> as.Date(strptime("Date: 2012-07-29, 11:59AM PDT", "Date: %Y-%m-%d"))
[1] "2012-07-29"
R> 
share|improve this answer
    
+1 for the pointer to strptime and its siblings. Quite powerful, I should use it more often. –  Rappster Aug 1 '12 at 22:14
    
While we're at strptime and close friends like format: is there a "tag" for easily formatting "to quarters"? Similar to the %U tag that handles calendar weeks? I'd like "2012-08-01" to be turned into, e.g "2012-Q3", without having to query a POSIXlt's $mon attribute to determine what quarter we're in. –  Rappster Aug 1 '12 at 22:31
    
Not that I know of. The formats come from the C library and are quite standard. So you may have to extract the month component from POSIXlt as you said. –  Dirk Eddelbuettel Aug 1 '12 at 22:41

Something along the lines of this should work:

x <- "Date: 2012-07-29, 12:59AM PDT"
as.Date(substr(x, 7, 16), format="%Y-%m-%d")
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As (pretty much) always, you've got multiple options here. Though none of them really frees you from getting used to some basic regular expression syntax (or its close friends).

raw_date <- "Date: 2012-07-29, 12:59AM PDT"

Alternative 1

> gsub(",", "", unlist(strsplit(raw_date, split=" "))[2])
[1] "2012-07-29"

Alternative 2

> temp <- gsub(".*: (?=\\d?)", "", raw_date, perl=TRUE)
> out <- gsub("(?<=\\d),.*", "", temp, perl=TRUE)
> out
[1] "2012-07-29"

Alternative 3

> require("stringr")
> str_extract(raw_date, "\\d{4}-\\d{2}-\\d{2}")
[1] "2012-07-29"
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1  
Don't use regexps to deal with dates. Regexps do not know what a valid date is -- you will hit something like a Feb 30 that way. –  Dirk Eddelbuettel Aug 1 '12 at 22:17
    
That's true. Just took this in a "hit and run" manner but if it's really a fully standardized format that you can trust I guess it doesn't make a difference at the end of the day. But I sure should have known better considering the many times pure regex-based code caused a lot of trouble ;-) –  Rappster Aug 1 '12 at 22:20

Regex with backreferencing works:

> sub("^.+([0-9][0-9][0-9][0-9]-[0-9][0-9]-[0-9][0-9]).+$","\\1","Date: 2012-07-29, 12:59AM PDT")
[1] "2012-07-29"

But @Dirk is right that parsing it as a date is the right way to go.

share|improve this answer
    
Don't do that. Work with date / time object instead. This isn't Perl :) –  Dirk Eddelbuettel Aug 1 '12 at 22:06
2  
@DirkEddelbuettel But if perl=TRUE then this is Perl right? :-) –  Ari B. Friedman Aug 1 '12 at 22:07
2  
Touche, can't counter than logic :) –  Dirk Eddelbuettel Aug 1 '12 at 22:08

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