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My script has to list all files between a given range of date within a file name (ex: 20130133.212001.log). The start date and end date will be given by user. I now have start_year, end_year, start_month, end_month....so on till end_second. My plan was to use ls syntax:

ls *{start_year..end_year}{start_month..end_month}{.....}.log

But the problem is if month or date has 01 bash is taking it as 1. Indeed my bash version is older than 4. I can't considering updating the bash version. Any other method that I use to list files in such range.

[EDIT]

$> cat tmp.sh
#! /bin/bash

start_year=2013
end_year=2013
start_month=01
end_month=01
start_date=01
end_date=12

start_month=$(printf %02d $start_month)
end_month=$(printf %02d $end_month)

start_date=$(printf %02d $start_date)
end_date=$(printf %02d $end_date)
ls {$start_year..$end_year}{$start_month..$end_month}{$start_date..$end_date}.log
$> 

but output is:

$>./tmp.sh
ls: {2013..2013}{01..01}{01..12}.log: No such file or directory

while the current dir contains:

$> ls
20130101.log  20130103.log  20130105.log  20130107.log  20130109.log  20130111.log  20130201.log  abcd.log
20130102.log  20130104.log  20130106.log  20130108.log  20130110.log  20130112.log  2013.log      tmp.sh
$> 
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2 Answers 2

up vote 2 down vote accepted

How about like this:

start=$start_year$(printf %02d $start_month)
end=$end_year$(printf %02d $end_month)
ls *.log | sed -ne "/$start/,/$end/p"
share|improve this answer
    
Janos, all of year, month and date may have range. It may even contain hr, min and sec. So I tried this:$ cat tmp.sh [ASM-SW1-BT02:/home/lsm/gjois/tmp] cat tmp.sh #! /bin/bash start_year=2013 end_year=2013 start_month=01 end_month=01 start_date=01 end_date=12 start_month=$(printf %02d $start_month) end_month=$(printf %02d $end_month) start_date=$(printf %02d $start_date) end_date=$(printf %02d $end_date) ls {$start_year..$end_year}{$start_month..$end_month}{$start_date..$end_date}.log [ASM-SW1-BT02:/home/lsm/gjois/tmp] –  user2763554 Dec 16 '13 at 7:09
    
but output is: [ASM-SW1-BT02:/home/lsm/gjois/tmp] ./tmp.sh ls: {2013..2013}{01..01}{01..12}.log: No such file or directory while the current dir contains:[ASM-SW1-BT02:/home/lsm/gjois/tmp] ls 20130101.log 20130103.log 20130105.log 20130107.log 20130109.log 20130111.log 20130201.log abcd.log 20130102.log 20130104.log 20130106.log 20130108.log 20130110.log 20130112.log 2013.log tmp.sh [ASM-SW1-BT02:/home/lsm/gjois/tmp] –  user2763554 Dec 16 '13 at 7:09
    
Too hard to read, because of the broken formatting. Please paste with the correct formatting into your question. –  janos Dec 16 '13 at 7:20
    
Edited the question –  user2763554 Dec 16 '13 at 7:44
    
@user2763554 well, I see you're not using my proposed solution, filtering the output of ls with sed. I recommend you try it. –  janos Dec 16 '13 at 7:51

You can utilize printf facility in that case.

Consider this script:

for i in {1..2}; do for j in {01..12}; do printf "%02d%02d\n" $i $j; done; done

**UPDATE: For using variable:

start=1
end=2
for ((i=start; i<=end; i++)); do
   for ((j=1; j<=12; j++)); do printf "%02d%02d\n" $i $j; done
done

0101
0102
0103
0104
0105
0106
0107
0108
0109
0110
0111
0112
0201
0202
0203
0204
0205
0206
0207
0208
0209
0210
0211
0212
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anubhava...this method doesnt seems to take range as subsitiuted variables: $> start=1 $> end=2 $> for i in {$start..$end}; do for j in {01..12}; do printf "%02d%02d\n" $i $j; done; done -bash: printf: {1..2}: invalid number 0001 -bash: printf: {1..2}: invalid number 0002 -bash: printf: {1..2}: invalid number 0003 -bash: printf: {1..2}: invalid number 0004 -bash: printf: {1..2}: invalid number 0005 -bash: printf: {1..2}: invalid number 0006 -bash: printf: {1..2}: invalid number 0007 -bash: printf: {1..2}: invalid number 0008 -bash: printf: {1..2}: invalid number 0009 <<snipped>> $> –  user2763554 Dec 16 '13 at 7:26
    
No it doesn't take variables. If you want variable values to be passed in the I need to edit my code. –  anubhava Dec 16 '13 at 7:30
    
check updated code for using variable. –  anubhava Dec 16 '13 at 7:32
    
ok. but this doesn't seems to work if user hasn't provided hr, min and sec. Anyway thanks for your suggestion. –  user2763554 Dec 16 '13 at 8:56
    
What do you mean by user hasn't provided hr, min and sec? In your script I don't see any min and sec variables. –  anubhava Dec 16 '13 at 9:01

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