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Instead of:

<?php echo isset($an_array['array_key']) ? $an_array['array_key'] : ''; ?>

I found out that I can go with only:

<?php echo $an_array['array_key'] ?: ''; ?>

This eliminates (isset) so I wonder if this is a good way of coding or a bad way of coding?

(I am just learning PHP)

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I prefer the first way - The second will raise a notice if the key is not set. Not to mention that your second way will not output anything, because there is nothing between the question mark and colon. –  nickb Feb 20 '12 at 21:13
1  
@nickb: it is the short way of writing of ternary operator in php 5.3, and it will output a variable if it is not empty –  zerkms Feb 20 '12 at 21:16
    
note that isset returns true on null values, thus $an_array['array_key'] that contains a null value will return false which is not necessarily what you want. Consider using array_key_exists instead... –  Mathieu Dumoulin Feb 20 '12 at 21:39

4 Answers 4

The second one would lead to notice of undefined variable or undefined index. So the only correct way to do it is the first one.

If you have your notices turned off - then your second code is absolutely the same as:

<?php echo $an_array['array_key']; ?>

BTW, as long as you use Kohana3 you could use:

<?php echo Arr::get($an_array, 'array_key', 'default value'); ?>

But only in cases if you're sure that $an_array variable is defined

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Thank you very much. –  Phil Feb 20 '12 at 21:17
1  
If $an_array['array_key']='0', the code would not be the same –  linepogl Feb 20 '12 at 21:27
    
@linepogl: indeed, fixed, thanks –  zerkms Feb 20 '12 at 21:28

I am against the use of the ?: operator, because it is a source of "oops" bugs. Anything that evaluates to false will not be printed. Check these out:

$an_array['array_key'] = 0;
echo $an_array['array_key'] ?: '!!!';

$an_array['array_key'] = '0';
echo $an_array['array_key'] ?: '!!!';

$an_array['array_key'] = false;
echo $an_array['array_key'] ?: '!!!';

// ok, this is not the best example, but literally anything
// that evaluates to false can cause a problem:
$an_array['array_key'] = array(); 
echo $an_array['array_key'] ?: '!!!';

In all the above examples, the isset would have returned true.

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Agree with any example but not the latest - there is no reason ever to echo arrays –  zerkms Feb 20 '12 at 21:27
    
@zerkms, yes, it's a bad example in this case. In any case, my point is that you have to double think before using this operator. –  linepogl Feb 20 '12 at 21:31

The second example may generate a undefined variable notice if $an_array['array_key'] was never set

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Thank you very much. –  Phil Feb 20 '12 at 21:17
    
Also, if you're new to PHP I would advice you to have a look at php.net/manual/en/types.comparisons.php –  Vague Feb 20 '12 at 21:19

It will ultimately depend on what you are trying to do but if $an_array['array_key'] was equal to zero, the 2nd method would echo empty string

If you wanted to check if the key exists, even if it's null. Use array_key_exists

If you wanted to check if the variable is not null. Use isset

If nothing is used like in the 2nd example you gave, it will be converted to boolean: see http://www.php.net/manual/en/language.types.boolean.php#language.types.boolean.casting

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nz.php.net/ternary#language.operators.comparison.ternary see the "Since PHP 5.3, it is possible to leave out ..." paragraph –  zerkms Feb 20 '12 at 21:26

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