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I have this code but is not working and I don't know why...

function link_next($local_id, $link_type) {
  if ( !is_numeric($local_id) )      die(); 
  elseif ($link_type = 'a-href')   { $something = 'a-href'; }
  elseif ($link_type = 'link-rel') { $something = 'link-rel'; }
  else                             { $something = 'blablabla'; } 

  return $local_id.'-'.$something;
} 

$id ='14678';
echo link_next($id, 'link-rel');

// edit

The function always display 14678-a-href

share|improve this question
    
define "not working" – Alnitak Jan 30 '12 at 17:08
    
In the future, know that you can format code by selecting it, then hitting the {} button on the post formatting toolbar. You don't need to fall back to <pre> tags. – Charles Jan 30 '12 at 17:09
    
{} only turns the text into a code block, it unfortunately doesn't reformat it :( – Alnitak Jan 30 '12 at 17:20
up vote 8 down vote accepted

you are using = in condition checking. You need to use == or === (strict comparison)

share|improve this answer
    
Thank you, can't belive it was that simple – m3tsys Jan 30 '12 at 17:16

Your code is wrong, You are using '=' operator in if-else conditions instead of '==' operator. This will assign value to link type. You need to change your code:

function link_next($local_id, $link_type) {

    if (!is_numeric($local_id)) 
           return false;

    if ($link_type == 'a-href') {
        $something = 'a-href';
    } elseif ($link_type == 'link-rel') {
        $something == 'link-rel';
    } else {
        $something = 'blablabla';
    }
    return $local_id.'-'.$something;
} 

Hope this helps

share|improve this answer

You are using the assignment operator instead of the equivalence operator. Aka you're using = instead of ==.

You can use assignment in an if, but then you're saying "Assign the variable the value and then the condition is true if the variable is not empty." (where empty is 0, false, '', null, etc.)

EDIT: Got ninja'd. It's because I am more verbose, I guess.

share|improve this answer

You have to use two equal signs:

elseif ($link_type == 'a-href')   { $something = 'a-href'; }
elseif ($link_type == 'link-rel') { $something = 'link-rel'; }

Otherwise you set $link_type to the specified string!

share|improve this answer

You're using the assignment operator = rather than the comparison operator ==, or === (strict).

Also indenting your code properly helps make it easy for you to spot out errors.

function link_next($local_id, $link_type) {
 if ( !is_numeric($local_id) ){ 
       die(); 
    }
 elseif ($link_type == 'a-href') {
      $something = 'a-href'; 
    }
 elseif ($link_type == 'link-rel') { 
    $something = 'link-rel';
    }
 else { 
    $something == 'blablabla'; 
    } 

 return $local_id.'-'.$something;
} 

 $id ='14678';
 echo link_next($id, 'link-rel'); 
 echo link_next($id, 'link-rel');
share|improve this answer
1  
how is that even remotely indented "properly" ? – Alnitak Jan 30 '12 at 17:14
    
"properly" is subjective. ;) But I agree his code is hard to read. – imkingdavid Jan 30 '12 at 17:14
    
@Alnitak Are you referring to my post? – Mob Jan 30 '12 at 17:17
    
@Alnitak It's indented. – Mob Jan 30 '12 at 17:20
    
@Mob it is indeed indented. But it's not indented properly! – Alnitak Jan 30 '12 at 17:22

You have three problems:

  1. Your code is unreadable - structure it so it can be read
  2. You're using assignment (=) instead of equality (==) to compare the strings - this is what's breaking the code

--

function link_next($local_id, $link_type) {

    // early exit
    if (!is_numeric($local_id)) die();

    if ($link_type == 'a-href') {
        $something = 'a-href';
    } elseif ($link_type == 'link-rel') {
        $something == 'link-rel';
    } else {
        $something = 'blablabla';
    }
    return $local_id.'-'.$something;
} 
share|improve this answer

Try this:

function link_next($local_id, $link_type) { 

if ( !is_numeric($local_id) ){ 
    die(); 
} elseif ($link_type == 'a-href') { 
    $something = 'a-href'; 
} elseif ($link_type == 'link-rel') { 
    $something = 'link-rel'; 
} else { 
    $something = 'blablabla';
}

return $local_id.'-'.$something;

}

I just corrected the fact that there was no {} on the first check, not sure if that will matter but hey, worth a try.

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