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e.g string = "test test test"

I want after finding any occurance of space in string, it should echo error and exit else process.

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2  
Note that, for bash and similar shells, you cannot have spaces around the equal sign. –  glenn jackman Dec 15 '10 at 13:53

5 Answers 5

You can use grep as:

string="test test test"
if ( echo "$string" | grep -q ' ' ); then
        echo 'var has space'
        exit 1
fi
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grep: illegal option -- q Usage: grep -hblcnsviw pattern file . . . –  rupali Dec 15 '10 at 11:46
    
@rupali: You can change the if statement to if ( echo "$string" | grep ' ' >/dev/null); then –  codaddict Dec 15 '10 at 11:48
    
still not working :( –  rupali Dec 15 '10 at 12:18
    
see this: ideone.com/10ejZ –  codaddict Dec 15 '10 at 12:20

For a purely Bash solution:

function assertNoSpaces {
    if [[ "$1" != "${1/ /}" ]]
    then
        echo "YOUR ERROR MESSAGE" >&2
        exit 1
    fi
}

string1="askdjhaaskldjasd"
string2="asjkld askldja skd"

assertNoSpaces "$string1"
assertNoSpaces "$string2" # will trigger error

"${1/ /}" removes any spaces in the input string, and when compared to the original string should be exactly the same if there are not spaces.

Note the quotes around "${1/ /}" - This ensures that leading/trailing spaces are taken into consideration.

To match more than one character, you can use regular expressions to define a pattern to match - "${1/[ \\.]/}".

update

A better approach would be to use in-process expression matching. It will probably be a wee bit faster as no string manipulation is done.

function assertNoSpaces {
    if [[ "$1" =~ '[\. ]' ]]
    then
        echo "YOUR ERROR MESSAGE" >&2
        exit 1
    fi
}

For more details on the =~ operator, see the this page and this chapter in the Advanced Bash Scripting guide.

The operator was introduced in Bash version 3 so watch out if you're using an older version of Bash.

update 2

Regarding question in comments:

how to handle the code if user enter like "asd\" means in double quotes ...can we handle it??

The function given above should work with any string so it would be down to how you get input from your user.

Assuming you're using the read command to get user input, one thing you need to watch out for is that by default backslash is treated as an escape character so it will not behave as you might expect. e.g.

read str              # user enters "abc\"
echo $str             # prints out "abc", not "abc\"
assertNoSpaces "$str" # no error since backslash not in variable

To counter this, use the -r option to treat backslash as a standard character. See read MAN Page for details.

read -r str           # user enters "abc\"
echo $str             # prints out  "abc\"
assertNoSpaces "$str" # triggers error
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this works but it wont remove the spaces at start and end ... If string = " testtest " it doesn't throw error –  rupali Dec 15 '10 at 11:52
    
sorry, my bad. Fixed. Quoting it will maintain the spaces around the edges. –  Shawn Chin Dec 15 '10 at 11:54
    
it works.. can you explain? also how about \ instead of space? –  rupali Dec 15 '10 at 12:05
    
If you want to detect \ instead, use ${1/\\/}. Or, if you need to detect both, or more than one character, see updated portion on regular expression. –  Shawn Chin Dec 15 '10 at 12:22
    
yeah..I have tried it but you know it works for all except e.g string = "test\" can you refine? –  rupali Dec 15 '10 at 12:23

You can do it in awk:

# echo "hell o" | awk '{ print index($0," ") }'
5

# echo "hello" | awk '{ print index($0," ") }'
0
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its printing index ..i want that after detecting space it should throw error..can you refine? –  rupali Dec 15 '10 at 11:55

There is more than one way to do that; using parameter expansion you could write something like:

if [ "$string" != "${string% *}" ]; then
     echo "$string contains one or more spaces";
fi
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This also doesn't recongnize spaces at start and end e.g string = " testtest " –  rupali Dec 15 '10 at 11:58

The case statement is useful in these kind of cases:

case "$string" in 
    *[[:space:]]*) 
        echo "argument contains a space" >&2
        exit 1
        ;; 
esac

Handles leading/trailing spaces.

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