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i have a variables like $srange0 , $srange1, $srange2 $srange3.

i am using to declare some value to each value using for loop.

for($i=0;$i<=3;$i++){
  $srange.$i = $i;
}

but its not working ?

is there any alternative solution for this

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2  
That a language provides a feature is not a valid motive to use it. –  Ignacio Vazquez-Abrams Jun 2 '11 at 4:28

4 Answers 4

up vote 6 down vote accepted
for($i=0;$i<=3;$i++){
  $var = 'srange'.$i;
  $$var = $i;
}

But, whenever I see variables like that, I'd use an array instead.

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4  
I shouldn't even say this, but you can do ${'srange'.$i} = $i;. –  Matthew Jun 2 '11 at 4:33
    
@konforce Thanks for that info. –  alex Jun 2 '11 at 4:41
    
@konforce but sometimes dynamic variable names are very helpful if you know how to use them properly –  galymzhan Jun 2 '11 at 4:45
1  
@galymzhan, it is never helpful as a replacement for arrays. And in most cases, arrays suffice. Especially here. –  Matthew Jun 2 '11 at 4:47
    
@konforce sure, this code isn't perfect and suitable demonstration of dynamic variables –  galymzhan Jun 2 '11 at 4:49

Use an array:

$srange = array();
for ($i = 0; $i <= 3; ++$i)
  $srange[$i] = $i;

For the purpose of this particular task, you can also do this:

$srange = range(0, 3);

That also builds the same array as my first code snippet.

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The properway to add these dynamic variables will be like this

for($i=0;$i<=3;$i++){
   $name = 'srange'.$i;
   $$name = $i; 
} 
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Must be helpful to u....

$srange0; $srange1; $srange2; for($i=0;$i<=3;$i++) { $range = "srange".$i; $$range = $i; } echo $srange2."
"; exit;

Enjoy code

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