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How do I return a date of a file? Something like this does not work and it is ugly too.

ls -l tz1.sql | awk '{print $7$6 $8}'
7Jun10:00
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Any particular OS? –  Ignacio Vazquez-Abrams Oct 2 '11 at 6:31
    
centOS # actually I need to format that date to look like this... # 2011-10-02 08:11:00 (since this is the format understood by mysql) –  shantanuo Oct 2 '11 at 7:21

2 Answers 2

up vote 1 down vote accepted

You can use stat to get the modification time, access time, or metadata change time of a file. Creation time is not recorded.

$ stat -c '%y' t.txt
2011-09-30 11:18:07.909118203 -0400
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use commas to separate the fields:

ls -l tz1.sql | awk '{print $7, $6, $8}'

When awk reads an input line, this line is split on the field separator FS. Thus you have to put those field separators back in, when you print the line. "," stands for those FSs.

EDIT:

If you want to use the variant with Ignacio Vazquez, try:

stat -c "%y" s.awk | cut -d. -f1

Output:

2011-09-30 22:44:46

HTH Chris

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