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http://codepad.org/GAl6W6xn

Why does this code say "not set"? What is array location 2 set as to make it say "set"? How can I approach this so I know if there is or isn't a value in location 2?

(sorry for lack of a good title, couldn't think of one)

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1  
Um, there is a value there, it just happens to be an empty string. –  Chris Feb 18 '12 at 6:04

3 Answers 3

up vote 2 down vote accepted

Answer is

array_key_exists
empty

Try this

array_key_exists(2, $r);
// or
!empty($r[2]);

For more accurate

$line = "a";
$r = explode("|",$line);

print_r($r);
if(!empty($r[2])) // or use if(array_key_exists(2, $r))
    echo "array location [2] set";
else echo "array location [2] NOT set";
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What is the difference between array_key_exists and empty? –  Kevin Duke Feb 18 '12 at 6:10
    
Check this out stackoverflow.com/questions/6884609/… . It will explain you better.. –  Wazzzy Feb 18 '12 at 6:11
1  
Thanks for best answer, I appreciate it –  Kevin Duke Feb 18 '12 at 6:21
    
array_key_exists does not solve the original problem. Change $line = "a"; in your example to $line = "a||c"; and array location [2] set will be output, which is the same problem isset was causing. –  lightster Feb 18 '12 at 6:34
    
@lightster Thanks for explaining the same as what was explained in stackoverflow.com/questions/6884609/… mentioned in the 2nd comment...I totally accept on what yo said but in this case you can use array_key_exists too. –  Wazzzy Feb 18 '12 at 6:37

well it is set, perhaps you meant to check if it was empty()

you should probably have a look at : The type comparison tables

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you can try

if(!empty($r[2]))

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