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I'm creating an application which writes log files daily and i'd like to know what should be the file name for each day so if all files located in the same folder they would be ordered in a desc order (from the newest to the oldest)?

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Why worry about file naming? Pretty much every shell in existence has the capability to sort by file metadata, which includes time-of-creation. e.g. ls -t or dir /od –  Marc B Mar 5 '12 at 18:57
    
most likely to make life easier since i don't know how many files are going to be created, i always want the last one to be on top of the list. –  Popokoko Mar 5 '12 at 19:04
    
then the file sort option is most reliable, since you're not depending on the filenames for ordering. –  Marc B Mar 5 '12 at 19:05
    
can't i somehow create the files so i won't have to sort by any filter later on? –  Popokoko Mar 5 '12 at 19:09
    
no, because filenames are not used for ordering by default within a filesystem. the standard view is to offer them up as they're found, not sorted by anything. ls by default sorts by name, but that's something ls does, not the file system. –  Marc B Mar 5 '12 at 19:12

2 Answers 2

up vote 0 down vote accepted

I would recommend using the following format: "yyyy-MM-dd_hh_mm_ss" and sort your files in your folder by name, descending.

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... and if there can be multiple instances of your app, append pid ( process id ) to log file name –  Andrey Starodubtsev Mar 5 '12 at 18:58
    
This is not exactly right since yyyy-MM-dd... would cause that first file can be 2012-03-01 and second file would be 2012-04-01 in that case 04 should be first since april is most recent. –  Popokoko Mar 5 '12 at 19:02
    
That's why I mentioned sorting the files in the folder by name descending. I am assuming he has that functionality available to him in whatever method he's viewing his files. –  Khan Mar 5 '12 at 19:23

You may substract from a date in the future, from 2033 for example:

echo $((2000*1000*1000 - $(date +%s)))
669025348

The multiplication is far better readable than 2000000000. The current date in s is:

date +%s
1330974665

so this will be a stable method for about 20 years from now.

A better readable way would be, to negate every part of the numeric date:

echo > $(date +-%Y.-%m.-%d.-%H.-%M.-%S)

ls
-2012.-03.-05.-20.-46.-07  -2012.-03.-05.-20.-46.-16  -2012.-03.-05.-20.-46.-24
ls | sort -n 
-2012.-03.-05.-20.-46.-07
-2012.-03.-05.-20.-46.-16
-2012.-03.-05.-20.-46.-24

It looks curios, is not nice to handle, since you will have to use

rm -- * 

to delete all these files, because

rm * 

will lead to misinterpretation of the - sign. But you can detect the real date.

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thank u for the answer BUT I dont really see how is the output related to dates.. maybe what i'm trying to achieve is not really possible? –  Popokoko Mar 5 '12 at 19:22
    
To see from which date the file origins, you would need to do ls -l. How else do you think a backwards sorting should be possible with readable dates? Another idea would be to just put a "-" in front of every datepart. I put it into the answer. –  user unknown Mar 5 '12 at 19:44

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