Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

What am I doing wrong in this for-loop? I have the variable $gGID which contain some numbers. I have another that uses the top number of the list which is the $ONEGID variable. I want to use $ONEGID be matched against the list in $gGID and if a match do something else continue.

echo $ONEGID

116899029375914044550 

I collect whats in $gGID with

gGID=$(curl -A 'Mozilla/4.0' --silent "https://www.google.com/search?q=$Daniel%20Sandman%20plus.google.com" | grep -P -o '(?<=plus.google.com/)[^az/u]+(?=/)')

This is what $gGID gives me..

echo $gGID

116899029375914044550
116899029375914044550
116899029375914044550
108176814619778619437
108176814619778619437
108176814619778619437
105237212888595777019
105237212888595777019
105237212888595777019

This is the for-loop I use to match it.

for USERS in $gGID; do
    if [ "$USERS" = "$ONEGID" ]; then
        echo "More than one match"
    else
        echo "Just one match"
    fi
done

I have tried in multiple ways and not figured it out. I don't see what I am doing wrong. Could it be that the variable I stored in $gGID count as a single number and that is why?

share|improve this question
2  
What happens when you run it? Why is it not working? –  Tim Pote Jun 3 '12 at 11:53
    
@TimPote It should give "More than one match" but gives "Just one match". It's like it doesn't go through the numbers one by one. "Just one match" is for when there isn't any match. –  AlMehdi Jun 3 '12 at 12:41
2  
What's in your $gGID. These's no way to print new line without being quoted. –  kev Jun 3 '12 at 12:51
    
@kev Ohh... sorry, should have added that of course. gGID=$(curl -A 'Mozilla/4.0' --silent "https://www.google.com/search?q=$Daniel%20Sandman%20plus.google.com" | grep -P -o '(?<=plus.google.com/)[^az/u]+(?=/)') –  AlMehdi Jun 3 '12 at 13:42
    
Do you mean: echo "$gGID"? Without the quotation marks, the result will be one line. –  kev Jun 3 '12 at 13:51

2 Answers 2

up vote 1 down vote accepted

Not certain what you mean, why would you echo "just one match" when it does not match? Anyway, is this what you mean?

#!/bin/bash

ONEGID=116899029375914044550  

gGID=\
"116899029375914044550 
116899029375914044550 
116899029375914044550 
108176814619778619437 
108176814619778619437 
108176814619778619437 
105237212888595777019 
105237212888595777019 
105237212888595777019"

matches=0

for USERS in $gGID; do 
    if [[ $USERS == $ONEGID ]]
    then 
        (( matches++ ))
    fi 
done 

if (( matches == 0 ))
then
    echo "no matches"
elif ((matches == 1 ))
then
    echo "Just one match"
else
    echo "$matches matches"
    echo "more than one match"
fi

(Tested before the question was changed to include curl - works with the curl as well)

share|improve this answer
    
Yes, this was the exact thing i was after. Sorry if my explanation was bad. I wanted two states.. If the curl match with just on user id or if the curl had many and then do things differently if that was the case. –  AlMehdi Jun 5 '12 at 11:24

If all you're trying to do is get the number of matches, use grep. In particular, you should look at the -c (count), -F (plain text), and -x (full line) switches:

$ grep -cFx "$ONEGID" <<<"$gGID"
3

In fact, you can skip the $gGID variable altogether and use curl directly:

curl -A 'Mozilla/4.0' --silent "https://www.google.com/search?q=$Daniel%20Sandman%20plus.google.com" | grep -P -o '(?<=plus.google.com/)[^az/u]+(?=/)' \
    | grep -cFx "$ONEGID"

(split for readability)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.