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My script is reading and displaying id3 tags. I am trying to get it to echo unknown if the field is blank but every if statement I try will not work. The id3 tags are a fixed size so they are never null but if there is no value they are filled with white space. I.E the title tag is 30 characters in length. Thus far I have tried

echo :$string: #outputs spaces between the 2 ::

if [ -z "$string" ] #because of white space will always evaluate to true

x=echo $string | tr -d ' '; if [ -z "$string" ]; #still evaluates to true but echos :$x: it echos ::

the script

#!bin/bash
echo "$# files";
while [ "$i" != "" ];
do
   TAG=`tail -c 128 "$i" | head -c 3`;
   if [ $TAG="TAG" ]
   then
      ID3[0]=`tail -c 125 "$1" | head -c 30`;
      ID3[1]=`tail -c 95 "$1" | head -c 30`;
      ID3[2]=`tail -c 65 "$1" | head -c 30`;
      ID3[3]=`tail -c 35 "$1" | head 4`;
      ID3[4]=`tail -c 31 "$i" | head -c 28`;
      for i in "${ID3[@]}"
      do
         if [ "$(echo $i)" ] #the if statement mentioned
         then
            echo "N/A";
         else
            echo ":$i:";
         fi
      done
   else
      echo "$i does not have a proper id3 tag";
   fi
   shift;
done
share|improve this question
    
-z "$x" certainly? –  Michał Politowski Mar 19 '12 at 9:37
    
Michal Politowski: -z means operand has zero length –  Peter.O Mar 19 '12 at 10:03
    
@Peter.O: yes, and $x is the string that should be tested, not $string. –  ams Mar 19 '12 at 10:10
    
yes i was using $string as an example before i uploaded the script; $i is the string which is a value from the array. Is there possibly something wrong with my loop? –  Yamiko Mar 19 '12 at 10:14
    
You also have to change if [ $TAG="TAG" ] to if [ "$TAG" = "TAG" ] -- the first version sends only a single non-empty argument to the [ command so it always returns true. –  glenn jackman Mar 19 '12 at 13:01
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6 Answers 6

up vote 1 down vote accepted

You can use bash's regex syntax.

It requires that you use double square brackets [[ ... ]], (more versatile, in general).
The variable does not need to be quoted. The regex itself must not be quoted

for str in "         "  "abc      " "" ;do
    if [[ $str =~ ^\ +$ ]] ;then 
      echo -e "Has length, and contain only whitespace  \"$str\"" 
    else 
      echo -e "Is either null or contain non-whitespace \"$str\" "
    fi
done

Output

Has length, and contain only whitespace  "         "
Is either null or contain non-whitespace "abc      " 
Is either null or contain non-whitespace "" 
share|improve this answer
    
everything is echoing with all white spaces –  Yamiko Mar 19 '12 at 10:16
    
Thanks yamikoWebs ... I started off using regex and then opted for globbing... I've reverted to regex... edited the answer to use bash's regex. –  Peter.O Mar 19 '12 at 11:04
    
As currently written this only checks for spaces, not for all whitespace characters -- it doesn't handle tabs, or newlines, or so forth. –  Charles Duffy Jun 25 '13 at 0:04
    
...also, echo -e is almost certainly the wrong thing here -- if you want to show nonprintable characters and render escape sequences literally, a more appropriate tool for the job might be: printf 'Has length, and contains only whitespace: "%q"\n' "$str" –  Charles Duffy May 26 at 16:43
    
...but using echo -e means that you're rendering escape sequences into the literal characters they represent, which is getting further away from showing the user exactly what the data being handled is, not closer to it (if the data contains a literal backslash followed by a n, why would they want to see it in a manner indistinguishable from a literal newline character?) –  Charles Duffy May 26 at 16:44
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Many of these answers are far more complex, or far less readable, than they should be.

[[ $string = *[[:space:]]* ]] && echo "String contains whitespace"
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1  
Definitely the best Bash answer! Thanks for spreading good practices. –  gniourf_gniourf Nov 3 '13 at 17:55
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A non-bash specific, shell only variant:

case "$string" in
 *[!\ ]*) echo "known";;
 *) echo "unknown";;
esac
share|improve this answer
    
That gives a syntax error. –  ams Mar 19 '12 at 12:04
    
Yes, space should have been escaped. –  Michał Politowski Mar 19 '12 at 12:26
1  
Better to use the POSIX character class [[:space:]] rather than listing \ specifically. –  Charles Duffy Jun 25 '13 at 0:03
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With extended globs enabled (shopt -s extglob):

if [ -n "${string##+([[:space:]])}" ]; then
    echo '$string has non-whitespace characters'
fi
share|improve this answer
    
its out putting too many arguments and binary operator expected –  Yamiko Mar 19 '12 at 10:12
    
@yamikoWebs you need to quote the variable (see the update) –  eugene y Mar 19 '12 at 10:16
    
they all echo including the ones I suspect to have spaces. is there a way I can verify they are spaces and not something else? –  Yamiko Mar 19 '12 at 10:23
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if [ "$(echo "$string" | tr -s ' ')" == " " ]; then
  echo "all white space"
fi

That compresses all repeated spaces down to one space, and compares for that.

share|improve this answer
    
Im looping through all tags and not all are 30 characters is there another way to test if a string is all spaces? –  Yamiko Mar 19 '12 at 9:33
    
Do the tags ever have spaces between words? –  ams Mar 19 '12 at 9:34
    
yep. and if a tag is 10 characters the rest of it is filled with spaces. –  Yamiko Mar 19 '12 at 9:34
    
ok, answer updated. –  ams Mar 19 '12 at 9:38
    
and now I fixed the quoting ..... –  ams Mar 19 '12 at 9:40
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This one checks for Zero length or SPACE or TAB

S="Something"
if [[ "x$S" == "x" || "x$S" == x*\ * || "x$S" == x*\    * ]] ;then
  echo "Is not OK"
else
  echo "Is OK"
fi
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