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I am trying to pass on an array from a function on one sheet into a new array on another php sheet.

Here's what i have:

The function is:

//the arr.php file

<?php

function search($var){
$var;

$a=array();
$a[0]=$var+1;
$a[1]=$var+2;
$a[2]=$var+3;
$a[3]=$var+4;
return $a;
}
?>

The second sheet is:

<?php

include ('arr.php');
$n=4;

for($i=0;$i<$n;$i++)
{

$temp=search(3); 

$thearrayfromarr[$i]=$temp;//doesn't work
print_r($thearrayfromarr[$i]);//doesn't work
}

?>

I want the second sheet to have an array variable which i can echo that will output the $a array data from the search function.

So that, for example, when i type

echo thearrayfromarr[0]; // It will have the value of $a[0] echo'd to me
share|improve this question
    
Where is $thearrayfromarr defined? –  user1086498 May 3 '12 at 18:14
    
@RiverC: It's defined here: $thearrayfromarr[$i]=$temp; The first iteration defines it, the next ones add to it. –  Wesley Murch May 3 '12 at 18:15
    
Ok, though it is much better to explicitly define it somewhere like $thearrayfromarr = array(); ... Given those two files we don't know if the second is included by something, so where $thearrayfromarr comes from is vague. Plus, scope issues with the for loop. –  user1086498 May 3 '12 at 18:17
    
@RiverC: I agree, but when you're looping through an array that you know will definitely have values (0-4) it's OK if you're careful. The real issue comes when the array you're building was already defined and you end up adding to it. It's bad style, definitely. –  Wesley Murch May 3 '12 at 18:23

4 Answers 4

up vote 3 down vote accepted

Your function isn't returning anything:

function search($var) {
    $a=array();
    $a[0]=$var+1;
    $a[1]=$var+2;
    $a[2]=$var+3;
    $a[3]=$var+4;
    return $a; // Need this
}
share|improve this answer
    
thank, fixed that part –  sad electron May 3 '12 at 18:18
    
If I had more time I'd try to figure out what your code is actually doing an provide an alternative. I assume this is just dummy/sample code for the purposes of asking a question here, and not your real code? A function called search doesn't seem right for whatever this is supposed to do... –  Wesley Murch May 3 '12 at 18:25

Your search() function isn't returning $a. Here's a cleaned up version that works:

<?php
//the arr.php file

function search($var){
    $a = array();

    for($n=1; $n<=4; $n++) {
        $a[] = $var + $n;
    }

    return $a;
}
?>
share|improve this answer
1  
Cleaned up version would be return range($var + 1, $var + 4); –  Alexey Lebedev May 3 '12 at 18:18
    
Quite right @Alexey. However, I think the simple loop illustrates what's actually happening to the OP. –  Nadh May 3 '12 at 18:20
    
I fixed the return part, itworks now, but i am trying to make thearrayfromarr in the new sheet have the values of the called function search(3) –  sad electron May 3 '12 at 18:24
    
You haven't defined $thearrayfromarr. Outside your for loop, add $thearrayfromarr = array(); –  Nadh May 3 '12 at 18:25

You can simply return this array from the function:

return $a;

If you already return something else, you should declare $a as reference argument:

function search($var, &$a) {
  $a[0]=$var+1;
  $a[1]=$var+2;
  $a[2]=$var+3;
  $a[3]=$var+4;
  return "something";
}

$a = array();
$temp = search(3, $a);
// $a now has new value
share|improve this answer

The array you define inside the function is not accesible from outside. You need to return the array in order to use it.

Returning the array

function search($var){
$var;

$a=array();
$a[0]=$var+1;
$a[1]=$var+2;
$a[2]=$var+3;
$a[3]=$var+4;
return $a;
}

Then you use it like this:

include ('arr.php');
$n=4;

for($i=0;$i<$n;$i++)
{

$temp=search(3); 

$thearrayfromarr[$i] = $temp;
print_r($thearrayfromarr[$i]);
}

In this case, if you do: $thearrayfromarr[0] should have [1,2,3,4] since you're returning an array, not a value. This is particularly important since you're hoping for something else according to this line:

echo thearrayfromarr[0]; // It will have the value of $a[0] echo'd to me

To answer the question

How do I make $thearrayfromarr have the value of search(3)?

You don't need the for loop for that, you can just do:

include ('arr.php');

$thearrayfromarr = search(3); 
print_r($thearrayfromarr); //should return [4,5,6,7]
share|improve this answer
    
I fixed the return $a part, but how do i make $thearrayfromarr have the values of let's say [4,5,6,7] by making search(3)? –  sad electron May 3 '12 at 18:22
    
added the answer on my post. –  Deleteman May 3 '12 at 18:48

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