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I initialize a php array named $present, the purpose of this array is to hold the value of 1 if a name is present or zero if the name is absent. i have a name array of size 10. below is the code mentioned, but it is not working.

$present = Array();
for($i=0;$i<=10;$i++){
    if(!isset($present[$name[$i]])) {
       $present[$name] = 1;
     }
     else echo $present[$name[$i]];
}

i have also tried this :

$present = Array();
    for($i=0;$i<=10;$i++){
        if(empty($present[$name[$i]])) {
           $present[$name] = 1;
         }
         else echo $present[$name[$i]];
    }

please help thanks!

share|improve this question
    
why are you first using $name[$i] and then $name ? –  mvds Mar 28 '11 at 19:23
    
$present is empty in the start of these examples, should it be? and what is $names? we could use a desired input/output –  jon_darkstar Mar 28 '11 at 19:27

3 Answers 3

up vote 0 down vote accepted

I think this may be what you are looking for. You're missing the $i when setting it to 1.

$present = array();
for($i=0;$i<=10;$i++){
    if(!isset($present[$name[$i]])) {
       $present[$name[$i]] = 1;
     }
     else echo $present[$name[$i]];
}
share|improve this answer
    
but there are no set elements in $present he needs to tell us more –  jon_darkstar Mar 28 '11 at 19:38

Should be:

$present = Array();
for($i=0;$i<10;$i++){
  if(!isset($present[$name[$i]])) {
       $present[$name[$i]] = 1;
     }
     else echo $present[$name[$i]];
}
share|improve this answer

I'm not sure exactly what you're trying to do here, but if you just want to keep track of whether a name is present or not, you could just make $present be an array of names, and then use in_array.

$present = array('John', 'Paul', 'George');

echo in_array('John', $present);          # returns 1
echo in_array('MacArthur', $present);     #returns 0
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