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I have this file backup_mysql.sh

#!/bin/sh
for I in $(mysql --database=db1 -e 'show tables' -s --skip-column-names); do mysqldump db1 $I | gzip > "/home/user/backup/mysql/db1/$I.sql.gz";
for I in $(mysql --database=db2 -e 'show tables' -s --skip-column-names); do mysqldump db1 $I | gzip > "/home/user/backup/mysql/db2/$I.sql.gz";

and produces this error:

line 4: syntax error: unexpected end of file

when I run it in the console does not fail

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Please post your cronjob line. Have you checked if you are using full paths? –  fedorqui Sep 24 '13 at 13:36
    
yes, The same error –  Javier Sep 24 '13 at 13:43

1 Answer 1

up vote 0 down vote accepted

You are missing done at the end of the for loops. Say:

for I in $(mysql --database=db1 -e 'show tables' -s --skip-column-names); do mysqldump db1 $I | gzip > "/home/user/backup/mysql/db1/$I.sql.gz"; done
for I in $(mysql --database=db2 -e 'show tables' -s --skip-column-names); do mysqldump db1 $I | gzip > "/home/user/backup/mysql/db2/$I.sql.gz"; done

EDIT: Your comment indicates that you're still getting the error. It seems that your file has CR+LF line endings. Use dos2unix to convert the line endings to LF and the problem would be gone!

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line 4: syntax error: unexpected end of file –  Javier Sep 24 '13 at 13:51
    
@Javier See edit above. –  devnull Sep 24 '13 at 13:57
    
ok, is Perfect !! –  Javier Sep 24 '13 at 18:58

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