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In the shell script, I will have to access the binary logs stored in /usr/local/mysql/data. but when I do this,

STARTLOG=000002
ENDLOG=000222
file=`ls -d /usr/local/mysql/data/mysql-bin.{$STARTLOG..$ENDLOG}| sed 's/^.*\///'`
echo $file

I get the below error :

ls: cannot access /usr/local/mysql/data/mysql-bin.{000002..000222}: No such file or directory. 

But when I manually enter the numbers in the range the shell scripts runs normally without error.

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Do you really have a file mysql-bin.{000002..000222} ? I think no. –  NeonGlow Feb 18 '13 at 6:15
1  
How do you launch script? It seems you are launching it via sh, not bash|zsh –  MPogoda Feb 18 '13 at 6:15
    
I launched it with bash, but still it gives me same error. –  Rudra Feb 18 '13 at 6:21
    
I'm able to get those files when I enter the number directly within the braces, but not getting the files when I enter with a variable name. –  Rudra Feb 18 '13 at 6:27
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3 Answers

up vote 2 down vote accepted

Try using seq(1):

file=`ls -d $(seq --format="/usr/local/mysql/data/mysql-bin.%06.0f" $STARTLOG $ENDLOG) | sed 's/^.*\///'`
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This works fine –  Rudra Feb 18 '13 at 6:44
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In bash, brace expansion occurs before variables are expanded. This means that you can not use variable inside of {} and get your expected results. I recommend using an array and a for loop:

startlog=2
endlog=222
files=()

for (( i=startlog; i<=endlog; i++ ));
   fname=/usr/local/mysql/data/mysql-bin.$(printf '%06d' $i)
   [[ -e "$fname" ]] && files+=("${fname##*/}")
done

printf '%s\n' "${files[@]}"
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You want the files in the range 000002..000222

but because of the quotes you are asking for the file with the name

/usr/local/mysql/data/mysql-bin.{000002..000222}

I would use a shell loop: http://www.cyberciti.biz/faq/bash-loop-over-file/

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Yes I want access for all files in the range. –  Rudra Feb 18 '13 at 6:19
    
No, it is due to using variables. bash rules are rather ad-hoc. –  vonbrand Feb 18 '13 at 6:33
    
There are bugs in the linked guide. –  jordanm Feb 18 '13 at 6:42
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