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Can anybody show me how to escape double quote inside a double string in bash?

For example in my shell script

#!/bin/bash

dbload="load data local infile \"'gfpoint.csv'\" into table $dbtable FIELDS TERMINATED BY ',' ENCLOSED BY '\"' LINES TERMINATED BY \"'\n'\" IGNORE 1 LINES"

I can't get the ENCLOSED BY \" with double quote escape correctly. I can't use single quote for my variable because i want to use variable $dbtable.

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17  
You should familiarize yourself with the concept of sql injection before you start writing code like this. –  Daenyth Sep 30 '10 at 21:10
    
Also see mywiki.wooledge.org/BashFAQ/050 –  Charles Duffy Nov 13 '13 at 13:38
    
possible duplicate of Escaping single-quotes within single-quoted strings –  kenorb Feb 28 at 20:50

3 Answers 3

Simple example of escaping quotes in shell:

$ echo 'abc'\''abc'
abc'abc
$ echo "abc"\""abc"
abc"abc

It's done by finishing already opened one ('), placing escaped one (\'), then opening another one (').

Alternatively:

$ echo 'abc'"'"'abc'
abc'abc
$ echo "abc"'"'"abc"
abc"abc

It's done by finishing already opened one ('), placing quote in another quote ("'"), then opening another one (').

More examples: Escaping single-quotes within single-quoted strings

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check out printf...

#!/bin/bash
mystr="say \"hi\""

Without using printf

echo -e $mystr

output: say "hi"

Using printf

echo -e $(printf '%q' $mystr)

output: say \"hi\"

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Note that printf escapes more characters as well, such as ', ( and ) –  David Pärsson May 10 '13 at 10:14
    
printf %q generates strings ready for eval, not formatted for echo -e. –  Charles Duffy Nov 13 '13 at 13:38

Use a backslash:

echo "\""     # Prints one " character.
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