Re: [PHP] Help with a home-grown function

[Dan Trainor]

Mike Johnson wrote:
> From: Dan Trainor [mailto:[EMAIL PROTECTED] 
> 
> 
>>Hello, all -
>>
>>I've been looking around for a function that would tell me if a $value
>>in a $key=>$value array was empty, and I could not find one.  So I
>>decided to make my own.  Even if I am re-inventing the wheel, 
>>I thought that the practice might be good for me.
>>
>>However, my function doesn't *quite* work, and I'm having a difficult
>>time finding out why.  The code is as follows:
>>
>>function findMissingVals($workingArray) {
>>      $newcount = count($workingArray);
>>      for ($i = 0; $i <= $newcount; $i++) {
>>              if (empty($workingArray['$i'])) {
>>                      return 1;
>>              }
>>      }
>>}
>>
>>So it takes in $workingArray as an array, runs a loop, checks $i, yada
>>yada.  The thing is, that sometimes the function does not 
>>return 1, even when it should.
>>
>>I was hoping some experienced eyes could take a gander at 
>>this and give me some pointers.
> 
> 
> PHP doesn't eval code in single-quotes, so what you want to do is
> simply:
> 
> if (empty($workingArray[$i])) {
>       return 1;
> }
> 
> With the single-quotes, it's looking for the string $i as a key.
> 
> HTH!
> 


Hey there, Mike -

Your tips were very helpful, thank you.  I saw my error, but I am still
having problems.  Being somewhat novice to PHP, I think my error might
very well just be in my implementation of the function, as follows:

function findMissingVals($workingArray) {
        $newcount = count($workingArray);
        for ($i = 0; $i <= $newcount; $i++) {
                if (empty($workingArray[$i])) {
                        return 1;
                }
        }
}
        
if (findMissingVals($vars)) {
        if (!$var1)     { ?> hi1 <? };
        if (!$var2)     { ?> hi2 <? };
        if (!$var3)     { ?> hi3 <? };
        if (!$var4)     { ?> hi4 <? };
        if (!$var5)     { ?> hi5 <? };
        if (!$var6)     { ?> hi6 <? };
} else {
        echo "hi";      
}


I never see "hi", even if I have an array as $vars as such:

$vars = array("one","two","","four","five");

so I'm a bit confused.

If you wouldn't mind taking another few minutes here, I would greatly
appreciate it.

Thanks!
-dant

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