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How to determine the number of characters in a variable?

FOO="blabla.bla.blabla.bla."
--check--
echo $FOO # 4 dot

FOO="..bla.bla.bla.blabla.bla."
--check--
echo $FOO # 7 dot

Thank you to help...

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Here is your answer: stackoverflow.com/questions/1603566/… –  Babblo Mar 7 '13 at 21:23

4 Answers 4

You should try this:

echo ${#FOO} 

${#VARIABLE_NAME} gives you the lenght of a string. Read (its on top of the page)

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count all characters? not only dots? –  Kent Mar 7 '13 at 21:25
    
Question was : How to determine the number of characters in a variable? –  hek2mgl Mar 7 '13 at 21:25
    
yes, I just noticed that, I just now saw the code echo $FOO # 4/7 dot .... –  Kent Mar 7 '13 at 21:26
 awk -F. '{print NF-1}' <<<$FOO 

example:

kent$  FOO="blabla.bla.blabla.bla."   

kent$  awk -F. '{print NF-1}' <<<$FOO
4

kent$  FOO="..bla.bla.bla.blabla.bla."

kent$  awk -F. '{print NF-1}' <<<$FOO 
7
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Thanks for this solution too ;) –  hek2mgl Mar 7 '13 at 21:26

echo $FOO | tr -dc \\. | wc -c

Does that answer your question?

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somehow I do not work :-(( ... if [ "$(echo $FOO | tr -dc \\. | wc -c)" -gt "1" ]; then ... –  petr Mar 7 '13 at 21:50
    
export FOO="..bla.bla.bla.blabla.bla."; if [ "$(echo $FOO | tr -dc \\. | wc -c)" -gt "8" ]; then echo "more"; else echo "less"; fi –  MeBa Mar 7 '13 at 22:08

Strip the non-dots and count the length of the result.

 $ x=..bla.bla.bla.blabla.bla.
 $ _=${x//[^.]} count=${#_}; echo "$count"
7
 $ printf -v _ %s%n "${x//[^.]}" count; echo "$count"
7
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