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I am probably missing something simple here but I feel it best to ask anyway.

I have the following code:

$newarray = json_decode($jsoncode);
$rad = 24;
foreach ($newarray->objname as $obj)
{
    echo "<map name='" . $mapname . "'>";
    echo "<area shape=\"circle\" coords='" . $obj->x . "," . $obj->y . "," . $rad . "' alt='" . $obj . "'>";
    echo '</map>';
}

coming from a manually created json string:

$jsoncode = '{"objname":{"Forest 1":{"x":120,"y":120},"Forest 2":{"x":434,"y":225}}}';

I am getting an error when trying to call the $obj variable to use within the foreach. Is there like something I have to add to make it show the name stored in the variable?

P.S. I have no problem with the rest of the code

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1  
In the future, if you are getting any errors - you should include them in your post... –  Lix Jul 16 '12 at 23:05

1 Answer 1

up vote 2 down vote accepted

PHP's foreach syntax should be like this -

foreach ($array AS $key=>$object){ 
  ... 
}

So your code should look like this -

foreach ($newarray AS $objectName => $obj)
  • $objectName is the index in $newarray.
  • $obj is the actual element from the array.

http://php.net/manual/en/control-structures.foreach.php

The documentation has this to say about the syntax of the foreach statement -

foreach (array_expression as $value)
statement
foreach (array_expression as $key => $value)
statement

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so are you saying foreach ($newarray->objname AS $key=>$obj){ –  Adsy2010 Jul 16 '12 at 23:02
    
@ads - see my edits... –  Lix Jul 16 '12 at 23:04
1  
im impressed actually! that's explained even more! Half understanding functions and knowing how they work is easily beaten by fully understanding them. Thankyou, I will accept after this time limit thing. Actually just tested it and I did need the $newarray->objname still but the rest worked fine. –  Adsy2010 Jul 16 '12 at 23:07

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