I have files named day00000.nc, day00001.nc, day00002.nc, ...day00364.nc for several years. They represent the 365 or 366 days. I want to rename my files like this day20070101.nc, day20070102.nc , ...day20071231.nc How can I do that ? Thank you
4
-
1Where is your year being represented?– Ander2Jun 20, 2013 at 14:34
-
Are they all in the same year? What is the starting date point?– FrankoJun 20, 2013 at 14:37
-
@Franko - not all in the same year. I would guess they all have mtimes or ctimes which correspond the the %j in the filename, so datetime will handle it using stat input.– jim mcnamaraJun 20, 2013 at 14:44
-
2This question doesn't actually have anything to do with Julian dates... You just want to parse normal dates.– CerinJun 12, 2014 at 14:20
Add a comment
|
3 Answers
Use the datetime module to get date from day of the year. I am assuming the year is 2007 as in your examples, since your filenames do not seem to have an year value. Feel free to replace the hardcoded 2007 in the code with a variable if required.
import datetime
oldFilename = 'day00364.nc'
day = int(oldFilename[3:-3])
date = datetime.datetime(2007, 1, 1) + datetime.timedelta(day) #This assumes that the year is 2007
newFilename = 'day%s.nc'%date.strftime('%Y%m%d')
print newFilename # prints day20071231.nc
For those who are downvoting this answer because "this solution adds a day"
The OP's files are numbered 0 to 364, not 1 to 365. This solution works for the OP. In case your dates are from 1 to 365, and it's not at all obvious to you, please freel free to subtract "1" from the day variable before converting it to a timedelta value.
-
-
-
1
-
@seaotternerd For you and others who are down-voting, please see my edit.– DharaJun 16, 2014 at 14:21
-
@Dhara - I didn't actually down-vote (I upvoted, because your answer deals well with the actual question and fixing off-by-one errors is pretty trivial), but thanks for the edit! Jun 16, 2014 at 20:11
datetime has a build in julian converter in it's strptime function using the %j format specifier. Assuming that your files are 'day' two digit year + julian + extention (if not, just add whatever year offset you really have)
file_date = filename[3:-3]
file_date = datetime.datetime.strptime(file_date, '%y%j').strftime('%Y%m%d')
new_filename = file_date.strftime('day%Y%m%d.nc')
after comment about how to get the year
year = datetime.datetime.fromtimestamp(os.path.getctime(filename)).year
file_date = datetime.datetime.strptime(filename[5:-3], '%j').replace(year=year)
new_filename = file_date.strftime('day%Y%m%d.nc')
With GNU awk and any Bourne-like shell
for old in *
do
new=$( gawk -v old="$old" 'BEGIN{
secs = (gensub(/[^[:digit:]]/,"","g",old) + 1) * 24 * 60 * 60
print gensub(/[[:digit:]]+/,strftime("%Y%m%d",secs),"",old)
}' )
echo mv "$old" "$new"
done
Remove the "echo" after testing.
answered Jun 20, 2013 at 20:43
