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I want to replace this code:

$html=<<<EOF

    <p>{${$var[i]}[name]}</p>
    <p>{${$var[i+1]}[name]}</p>
    <p>{${$var[i+2]}[name]}</p>
    <p>{${$var[i+3]}[name]}</p>

EOF;

with something like this:

$html=<<<EOF

    <p>{${$var[new_i]}[name]}</p>
    <p>{${$var[new_i]}[name]}</p>
    <p>{${$var[new_i]}[name]}</p>
    <p>{${$var[new_i]}[name]}</p>

EOF;

and preserve functionality of the first piece of code.

Is it possible or not?

share|improve this question
1  
YNT -- please don't put solution in your question. just vote up, and choose what you feel is the accepted answer. –  Neal Jul 20 '12 at 18:05
    
@Neal OK. I just have to wait 15 minutes to be able to accept an answer. –  YNT Jul 20 '12 at 18:08
    
but that doesn't mean you should change your question :-P –  Neal Jul 20 '12 at 18:10

4 Answers 4

up vote 5 down vote accepted

Post-Increment to the rescue!

$html=<<<EOF

    <p>{${$var[$i++]}[name]}</p>
    <p>{${$var[$i++]}[name]}</p>
    <p>{${$var[$i++]}[name]}</p>
    <p>{${$var[$i++]}[name]}</p>

EOF;

Although if you are just going to display $html right after this, it might be better to do:

<?php for($i = 0; $i < $max_i; ++$i):?>
<p><?php echo ${$var[$i]}[name] ?></p>
<?php endfor;?>
share|improve this answer

This is where the incrementor would come in.

$i++ will increment the value by one after any action is taken.

++$i will increment the value by one before any action is taken.

 $html=<<<EOF

     <p>{${$var[$i++]}[name]}</p>
     <p>{${$var[$i++]}[name]}</p>
     <p>{${$var[$i++]}[name]}</p>
     <p>{${$var[$i++]}[name]}</p>

EOF;

Example:

$i = 0;
echo $i++; // echo's 0

$i = 0;
echo ++$i; // echo's 1
share|improve this answer

You could just pass in i++ so that it increments every time it appears.

share|improve this answer
    
This is really elegant. –  iambriansreed Jul 20 '12 at 18:59
$new_i = 0;

$html=<<<EOF

    <p>{${$var[$new_i]}[name]}</p>
    <p>{${$var[++$new_i]}[name]}</p>
    <p>{${$var[++$new_i]}[name]}</p>
    <p>{${$var[++$new_i]}[name]}</p>

EOF;

Using ++ to the left of a variable will increment the value by one before that variable is used.

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3  
why the bad answer? –  Mike Mackintosh Jul 20 '12 at 18:03
3  
@Marcus, not even that.. What exactly are you incrementing? new_i? That's not even a variable. You would get a syntax error. –  Mike Mackintosh Jul 20 '12 at 18:05
1  
.. new_i != $new_i. You need to be very clear on your syntax. –  Mike Mackintosh Jul 20 '12 at 18:11
1  
You should look at your code and understand why it would fail before giving bad advice. –  Mike Mackintosh Jul 20 '12 at 18:17
2  
The reason it's a "bad" answer is that you have the first call different than the subsequent calls, when it can very easily be done more elegantly with an i++ (as this will return i before incrementing). You also used new_i, which was originally intended to be the new variable that would increment on its own. It just seems a little silly, and could have been thought out better. –  Rob Wagner Jul 20 '12 at 18:23

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