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I've written what I thought was a very simple use of the php explode() function to split a name into forename and surname:

// split name into first and last
$split = explode(' ', $fullname, 2);
$first = $split[0];
$last = $split[1];

However, this is throwing up a php error with the message "Undefined offset: 1". The function still seems to work, but I'd like to clear up whatever is causing the error. I've checked the php manual but their examples use the same syntax as above. I think I understand what an undefined offset is, but I can't see why my code is generating the error!

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8  
Can you provide the value of $fullname that gives you the error? –  Emil Ivanov Nov 27 '09 at 10:15
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5 Answers

up vote 14 down vote accepted

this is because your fullname doesn't contain a space. You can use a simple trick to make sure the space is always where

 $split = explode(' ', "$fullname ");

(note the space inside the quotes)

BTW, you can use list() function to simplify your code

  list($first, $last) = explode(' ', "$fullname ");
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4  
+1 for the use of list(). –  jensgram Nov 27 '09 at 10:19
    
That's great. I didn't realise I could put a variable inside quotes. Also, thanks for the bonus 'list()' tip. –  musoNic80 Nov 27 '09 at 18:49
    
Quite an elegant hack. ;) –  Gustav May 2 '12 at 12:03
    
That's not true, if explode doesn't find the string you are using it'll return an array with a single position and the full text in that position. –  Khriz Jun 20 '12 at 9:31
    
you need as many split chars as var to assign: e.g. list($size, $ctype, $sample, $desc) = explode(',', $item.',,,,'); so it's assured you always get an assignment –  sherpya Feb 24 at 2:48
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BTW, that algorithm won't wokr all the time. Think about two-word Latina or Italian surnames names like "De Castro", "Dela Cruz", "La Rosa", etc. Split will return 3 instead of 2 words:

Array {
  [0] => 'Pedro'
  [1] => 'De'
  [1] => 'Castro'
}

You'll end up with messages like "Welcome back Ana De" or "Editing Profile of Monsour La".

Same thing will happen for to-word names like "Anne Marie Miller", "William Howard Taft", etc.

Just a tip.

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Presumably, whatever $fullname is doesn't contain a space, so $split is an array containing a single element, so $split[1] refers to an undefined offset.

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That' strange, it's working correct here. When i try with a string the cat walks and also just the will do and not produce an error. I've outputted it with print_r

What's your $fullname looks like when you get the error?

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with print_r i'm getting a normal array.. –  Ben Nov 27 '09 at 10:29
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This could be due the fact that $fullname did not contain a space character.

This example should fix your problem w/o displaying this notice:

$split = explode(' ', $fullname, 2);
$first = @$split[0];
$last = @$split[1];

Now if $fullname is "musoNic80" you won't get a notice message.

Note the use of "@" characters.

HTH Elias

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2  
Makes sense, but I'd rather find a way of fixing the problem rather than supressing the errors. Thanks though for explaining the cause! –  musoNic80 Nov 27 '09 at 18:47
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