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how can I know the number of tokens in a bash variable (whitespace-separated tokens) - or at least, wether it is one or there are more.

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7 Answers 7

up vote 10 down vote accepted

The $# expansion will tell you the number of elements in a variable / array. If you're working with a bash version greater than 2.05 or so you can:

VAR='some string with words'
VAR=( $VAR )
echo ${#VAR[@]}

This effectively splits the string into an array along whitespace (which is the default delimiter), and then counts the members of the array.

EDIT:

Of course, this recasts the variable as an array. If you don't want that, use a different variable name or recast the variable back into a string:

VAR="${VAR[*]}"
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+1 - good one. I used to use 'wc -w'. Now I stopped. –  Mykola Golubyev Mar 12 '09 at 14:34
3  
CAVEAT: If $VAR contains a string that happens to be a valid glob, the results will be unexpected, as pathname expansion will occur; try VAR='* string with words'. –  mklement0 Feb 2 at 3:28

I can't understand why people are using those overcomplicated bashisms all the time. There's almost always a straight-forward, no-bashism solution.

howmany() { echo $#; }
myvar="I am your var"
howmany $myvar

This uses the tokenizer built-in to the shell, so there's no discrepancy.

Here's one related gotcha:

myvar='*'
echo $myvar
echo "$myvar"
set -f
echo $myvar
echo "$myvar"

Note that the solution from @guns using bash array has the same gotcha.

The following is a (supposedly) super-robust version to work around the gotcha:

howmany() ( set -f; set -- $1; echo $# )

If we want to avoid the subshell, things start to get ugly

howmany() {
    case $- in *f*) set -- $1;; *) set -f; set -- $1; set +f;; esac
    echo $#
}

These two must be used WITH quotes, e.g. howmany "one two three" returns 3

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Good one. Simple and no side effects (other than declaring a new function, of course). Plus, as a bonus you seem to have found a geshi(?) bash renderer bug. –  Leo Jan 30 at 13:34
    
+1 for the update. –  mklement0 Feb 2 at 3:30
    
Why avoid the subshell? Just efficiency? Incidentally, I had no idea that you can omit the {...} if you enclose your function body in (..) to run in a subshell - good to know. –  mklement0 Feb 2 at 4:10
    
@mklement0: Yes, just efficency. So it's an unnecessary optimization as the only usecase of howmany is probably debugging. –  Jo So Feb 2 at 11:09
set VAR='hello world'
echo $VAR | wc -w

here is how you can check.

if [ `echo $VAR | wc -w` -gt 1 ] 
then
    echo "Hello"
fi
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Nice, but I suggest you (a) double-quote $VAR, otherwise the value will be subject to pathname expansion and (b) use current bash features; i.e.: - store the count in a variable (trimming whitespace): count=$(( $(wc -w <<<"$VAR") )); - act, if the count is > 1: if (( $(wc -w <<<"$VAR") > 1 )); then echo "HELLO"; fi –  mklement0 Feb 2 at 4:07

To count:

sentence="This is a sentence, please count the words in me."
words="${sentence//[^\ ]} "
echo ${#words}

To check:

sentence1="Two words"
sentence2="One"
[[ "$sentence1" =~ [\ ] ]] && echo "sentence1 has more than one word"
[[ "$sentence2" =~ [\ ] ]] && echo "sentence2 has more than one word"
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Not sure if this is exactly what you meant but:

$# = Number of arguments passed to the bash script

Otherwise you might be looking for something like man wc

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Simple method:

$ VAR="a b c d"
$ set $VAR
$ echo $#
4
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2 problems: (a) As in the accepted answer, a token in $VAR that happens to be a valid glob (e.g., *), will be expanded to the matching filenames. (b) If the first (one or several) token(s) happen to be valid set option(s) - e.g. VAR="-e" -, they will be interpreted as such and lead to unexpected results; you can prevent this with set -- $VAR. –  mklement0 Feb 2 at 3:55

For a robust portable sh solution, see @JoSo's functions using set -f.

(Simple bash-only solution for answering (only) the "Is there at least 1 whitespace?" question; note: will also match leading and trailing whitespace, unlike the awk solution below:

 if [[ $v =~ [[:space:]] ]]; then echo "\$v has at least 1 whitespace char."; fi

)

Here's a robust awk solution (less efficient due to invocation of an external utility, but probably won't matter in many real-world scenarios):

# Functions - pass in a quoted variable reference as the only argument.
# Takes advantage of `awk` splitting each input line into individual tokens by
# whitespace; `NF` represents the number of tokens.
# `-v RS='\0'` ensures that even multiline input is treated as a single input 
# string.
countTokens() { awk -v RS='\0' '{print NF}' <<<"$1"; }
hasMultipleTokens() { awk -v RS='\0' '{if(NF>1) ec=0; else ec=1; exit ec}' <<<"$1"; }

# Example: Note the use of glob `*` to demonstrate that it is not 
# accidentally expanded.
v='I am *'

echo "\$v has $(countTokens "$v") token(s)."

if hasMultipleTokens "$v"; then
  echo "\$v has multiple tokens."
else
  echo "\$v has just 1 token."
fi
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1  
You can also achieve hasMultipleTokens by case-matching. If you consider whitespace to be the default (space,tab,newline, or 0x20,0x09,0x10), try case $1 in *' '*|*'<tab>'*|*'<nl>'*) echo yes;; esac. Replace <tab> and <nl> by a real tab and a real newline, I can't put these in a a comment. –  Jo So Feb 2 at 11:26
    
@JoSo: Cool, thanks. There actually is a way to create such chars. in bash via non-literals: $'\t' and $'\n'. –  mklement0 Feb 2 at 14:25

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