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I am new to PHP. When I use "echo" to print an array element, my success seems to depend on what I name the index. That can't be right, right?! I feel like I am going crazy. This code:

$ARRAY['q1'] = 'foo';
echo "q1 is $ARRAY[q1]<br>";

Works fine. But this code:

$ARRAY['1q'] = 'foo';
echo "1q is $ARRAY[1q]<br>";

Produces the error:

Parse error: syntax error, unexpected T_STRING, expecting ']' in /var/www/html/test.php on line 6

I know that I can correct the problem like this:

echo "1q is " . $ARRAY['1q'] . "<br>";

But my question is WHY would the array index "1q" vs. "q1" matter in the first code block? I even checked to see if 1q is a constant of some kind but it doesn't seem to be. Is this an improper way to insert an array element in a string? (I copied it from the PHP documentation.)

This is in PHP 5.3.8. I really appreciate any help.

EDIT: Ok I got this echo syntax from Example #8 on this page of the PHP manual: http://www.php.net/manual/en/language.types.string.php Apparently it is not the right way to do things. I will add a user-contributed note to the manual.

An entire script that produces this error would be:

<?php
$ARRAY['1q'] = 'foo';
echo "1q is $ARRAY[1q]<br>"; 
?>
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3  
Which line is line 6? Please show the full actual code that is producing the error, there are no syntax errors above - although if you want to use an associative array value directly in a string, the correct syntax is "q1 is {$ARRAY['q1']}<br>". –  DaveRandom Apr 22 '12 at 21:34
    
normally, the variables must start with alphabets or _ characters, not numerals. –  hjpotter92 Apr 22 '12 at 21:39
    
I think Chasing Death's comment is actually the best answer, although it is not an answer so I can't mark it that way. I just looked it up and it says very clearly in the PHP manual that you can't start a variable name with a number. Oops. –  niftyc Apr 22 '12 at 21:54
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closed as too localized by cryptic ツ, Till Helge, Alexander, Jocelyn, andrewsi May 3 '13 at 16:07

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3 Answers

up vote 0 down vote accepted

When using arrays in a double-quoted string, if PHP sees the array key start with a number, it assumes the entire key is a numeric index, e.g.

echo "$arr[123abc]";

is interpreted as $arr[123]. The abc portion is what's producing the expected string error, since a numeric key can't contain non-numeric components.

To fix this, you'll have to use

echo "1q is {$ARRAY['1q]'}<br>";
            ^       ^   ^^

with properly quoted array indexes

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Because it's trying to treat the array key as a literal of some kind. For q1 this works because there is no constant named q1 so PHP assumes it's supposed to be a string. 1q, however, fails because it starts looking at it as a number.

You should not embed arrays in strings like that anyway. Use one of the following:

echo "1q is {$ARRAY['1q']}";
echo "1q is ".$ARRAY['1q'];
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Interesting, I wouldn't have thought this would cause a parse error, but apparently it does. I would have thought that $ARRAY[1q] would appear literally in the string or it would work. I suppose this is why the PHP naming conventions don't allow numeric digits at the first character position... –  DaveRandom Apr 22 '12 at 21:42
    
DaveRandom, if it helps, here's a complete script: <?php $ARRAY['1q'] = 'foo'; echo "1q is $ARRAY[1q]<br>"; ?> –  niftyc Apr 22 '12 at 21:46
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You don't need to concatenate. Try echo "1q is {$ARRAY['1q']}";.

  • You should always use quotes for accessing string array keys, even inside strings.
  • Its a good practice to embrace variables on {} inside strings.
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