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Sorry if the question is very straight forward but am a newbie to shell scripting. I am trying to write something like this :

for i in {1..20}
do
   curl "something $i ........ -d  'something "$i" something' "
done

The problem is that the second $i inside the single quotes part '' is not being replaced. What should be done to get it working ?

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3 Answers 3

up vote 1 down vote accepted

As said above, parameters are not expanded inside single quotes, you have to use double quotes. The only point is that since it occurs in a already double-quoted string, you have to escape them with a backslash (\), like this:

$ foo=bar
$ eval "echo \"something \\\"$foo\\\"\""
something "bar"

Note that there are three \ before the innermost ", as this will be expanded twice (once when evaluating the argument of eval and once when evaluating the argument of echo)

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This is because variables inside the single quotes '' are not being replaced. If you want variable substitution, you need to get rid of the single quotes.

You coul maybe pre-initialize that variable

foo="something $i bla bla bla"
curl "something ... ${foo}something"
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1  
Even though the whole statement is a string enclosed in "" ? –  Rndm Oct 24 '12 at 7:41
    
Yes, the variable substitution works within double quotes "". I see no problem with this. Only variables within single quotes will not be replaced as I mentioned. –  mana Oct 24 '12 at 7:47

Your quoting is not correct. You don't need double quotes around the second $i because the whole thing is already surrounded in double-quotes.

Change it to the following:

for i in {1..20}
do
   curl "something $i ........ -d  'something $i something'"
done
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