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IN PHP: I have a for loop running through an array and if the value of each key does not match the value I'm looking for, I skip it.

How can I create a loop that runs until I have found 20 of the values that I am looking for. So I can't have it be for($i=0;$i<50;$i++) because of the first 50, there may be only 2 values that match. So it needs to run until 20 match.

UPDATE: I also need to iterate through the array, so I still need to check every value like this: $news_posts[$i]['category']; if category is what i'm looking for then that's 1. If its not, then I skip it. I need 20.

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Use a while(true) loop and break when your counter condition is met? –  Mark Baker Oct 1 '12 at 22:45

6 Answers 6

You can use more than one condition:

for ($i=0, $found=0; $i<count($news_posts) && $found<20; ++$i)
{
    if ($news_posts[$i]['category'] == 'something')
    {
        ++$found;
        // do the rest of your stuff
    }
}

This will loop through everything in $news_posts, but stop earlier if 20 are found.

A for loop has three parts (initialization; condition; increment). You can have multiple statements (or none) in any of them. For example, for (;;) is equivalent to while (true).

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1  
+1 very rare with developers to see for with more than 3 arguments –  Baba Oct 1 '12 at 22:48
    
To be honest, this is the coolest thing i've seen thus far. I did not know you could create this kind of for loop... it also solved my problem. 2 days in a row you've come to my help!!! Can we be best friends? –  Rusty Schmidt Oct 1 '12 at 22:50
    
It's just a matter of recognizing patterns, something you get used to after doing this for a while. Glad I could help. –  NullUserException Oct 1 '12 at 22:59
$foundValues = 0;

while($foundValues < 20)
{
   //Do your magic here
}
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This will work. Just be careful, if your count never gets higher than 19, the loop will run forever.

$count = 0;
while ($count < 20) 
{
    if (whatever)
    {
        $count++;
    }
}
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$count = 0;
while(true){
if($count>20)
    break;
...
}
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$count = 0;
$RESULT_COUNT = 20;
while($count < $RESULT_COUNT) {
    // your code to determine if result is found

    if($resultFound) {
        $count++;
    }

    if($resultsEnd) { // check here to see if you have any more values to search through
        break;
    }
}
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This will work and makes sure you don't end up in an infinite loop or try to access an index in an array that doesn't exist. –  earl3s Oct 1 '12 at 22:51

Simply break out of the loop when some condition is true.

for ($i = 0; $i < $countValue; $i++)
{
   //do something

   if ($i == 10) break;
}
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