40

I have string like this in database(actual string contains 100s of word and 10s of variable)

i am a {$club} fan

i echo this string like this

 $club = "Barcelona";
echo $data_base[0]['body'];

My output is i am a {$club} fan. I want i am a Barcelona fan How can i do this?

  • 1
    str_replace() – Eggplant Feb 25 '13 at 11:00
  • 1
    my string contain 20 variable like this. need i use str_replace() fn 20 times? – open source guy Feb 25 '13 at 11:06
  • preg_replace is what you are looking for. – Dipesh Parmar Feb 25 '13 at 11:07
  • You could actually remove { and } from the string and just use double quotes around it to get the values stored in those variables (if I've understood what you are actually doing): echo "My var's value is $var";. This is VERY bad however. Probably it's better to have an array which stores those values, and use a for to replace them. – Eggplant Feb 25 '13 at 11:09
  • 4
    {$club} is valid PHP syntax for a double quote string interpretation. use this to your advantage. – zamnuts Feb 25 '13 at 11:14

11 Answers 11

70

Use strtr It will translate parts of a string.

$club = "Barcelona";
echo strtr($data_base[0]['body'], array('{$club}' => $club));

For multiple values (Demo):

$data_base[0]['body'] = 'I am a {$club} fan.'; // Tests

$vars = array(
  '{$club}'       => 'Barcelona',
  '{$tag}'        => 'sometext',
  '{$anothertag}' => 'someothertext'
);

echo strtr($data_base[0]['body'], $vars);

Program Output:

I am a Barcelona fan.
  • 2
    my string contain 20 variable like this. need i use str_replace() fn 20 times? – open source guy Feb 25 '13 at 11:04
  • That would be the easy way out. You can also use a combination of associative arrays, and a loop. See my code above. – Husman Feb 25 '13 at 11:07
  • @messifan With this solution, make sure to remember to update your associateive array every time you add another variable into a template. – Aleks G Feb 25 '13 at 11:27
  • ok, thanks. $array should be like this array('{$club}' => "Barcelona") double quotes producing error for me – open source guy Feb 25 '13 at 11:29
  • 1
    -1 (ideally) But for multiple times. So this answer allows to inject variables as text. To overcome this, use php.net/strtr – hakre Jan 12 '14 at 10:27
7
/**
 * A function to fill the template with variables, returns filled template.
 * 
 * @param string $template A template with variables placeholders {$varaible}.
 * @param array $variables A key => value store of variable names and values.
 * 
 * @return string  
 */

public function replaceVariablesInTemplate($template, array $variables){

 return preg_replace_callback('#{(.*?)}#',
       function($match) use ($variables){
            $match[1]=trim($match[1],'$');
            return $variables[$match[1]];
       },
       ' '.$template.' ');

}  
  • Best solution without use the global variable. Thanks! – Willian Keller May 19 '16 at 2:21
5

I Would suggest the sprintf() function.

instead of storing i am a {$club} fan use i am a %s fan, so your echo command would go like:

$club = "Barcelona";

echo sprintf($data_base[0]['body'],$club);

OUTPUT : i am a Barcelona fan

That would give you the freedom of use that same code with any other variable (and you don't even have to remember the variable name).

so this code is also valid with the same string:

$food = "French Fries";

echo sprintf($data_base[0]['body'],$food);

OUTPUT : i am a French Fries fan

$language = "PHP";

echo sprintf($data_base[0]['body'],$language);

OUTPUT : i am a PHP fan

  • This is a useful technique, when it is convenient to provide the replacement value(s) that are specific to one string. Note that this would not be convenient for OP - nor for anyone else who has a language-translation dictionary that they wish to apply to a large number of sentences. For example, if there are three sentences .. $a .. $b, .. $c .. $b .., and ..$c .. $a .. $b, there is no convenient way to substitute values into all three sentences. (Where all the $a should become the same translated string.) – ToolmakerSteve Apr 24 at 23:11
4

What you are looking for is nested string interpolation. A theory can be read at this post: http://thehighcastle.com/blog/21/wanted-php-core-function-for-dynamically-performing-double-quoted-string-variable-interpolation

The major problem is that you don't really know all of the variables available, or there may be too many to list.

Consider the following tested code snippet. I stole the regex from mohammad mohsenipur.

$testA = '123';
$testB = '456';
$testC = '789';
$t = '{$testA} adsf {$testB}adf 32{$testC} fddd{$testA}';

echo 'before: '.$t."\n";

preg_match_all('~\{\$(.*?)\}~si',$t,$matches);
if ( isset($matches[1])) {
    $r = compact($matches[1]);
    foreach ( $r as $var => $value ) {
        $t = str_replace('{$'.$var.'}',$value,$t);
    }
}

echo 'after: '.$t."\n";

Your code may be:

$club = 'Barcelona';
$tmp = $data_base[0]['body'];
preg_match_all('~\{\$(.*?)\}~si',$tmp,$matches);
if ( isset($matches[1])) {
    $r = compact($matches[1]);
    foreach ( $r as $var => $value ) {
        $tmp = str_replace('{$'.$var.'}',$value,$tmp);
    }
}
echo $tmp;
  • To clarify, this technique is useful if you have an unknown set of global variables that you wish to substitute into strings. If the set of substitutions is known beforehand, then a straightforward string substitution (with an array of from/to pairs) is more straightforward (see accepted answer). – ToolmakerSteve Apr 24 at 23:26
3
if (preg_match_all('#\$([a-zA-Z0-9]+)#', $q, $matches, PREG_SET_ORDER));
{
    foreach ($matches as $m)
    {
        eval('$q = str_replace(\''.$m[0].'\',$'.$m[1].',$q);');
    }
}

This matches all $variables and replaces them with the value. i didn't include the {}'s but shouldn't be too hard to add them something like this...

if (preg_match_all('#\{\$([a-zA-Z0-9]+)\}#', $q, $matches, PREG_SET_ORDER));
{
    foreach ($matches as $m)
    {
        eval('$q = str_replace(\''.$m[0].'\',$'.$m[1].',$q);');
    }
}

Though it seems a bit slower than hard coding each variable. And it introduces a security hole with eval. That is why my regular expression is so limited. To limit the scope of what eval can grab.

I wrote my own regular expression tester with ajax so i could see as i type if my expression is going to work. I have variables i like to use in my expressions so that i don't need to retype the same bit for each expression.

  • 1
    Given how easy it would be to make a mistake and open a security hole (as you mention), I don't see any justification for using eval simply to accomplish string substitution. – ToolmakerSteve Apr 24 at 23:00
  • True, but there might be a use for something like my answer. The answer above is much better than mine for this purpose. This was just what I came up with 6 years ago. – Robert Russell Apr 25 at 19:23
1

I've found this approach useful at times, if you're not looking

$name = 'Groot';
$string = 'I am {$name}';
echo eval('return "'.$string.'";');
$data = array('name' => 'Groot');
$string = 'I am {$data[name]}';
echo eval('return "'.$string.'";');
$name = 'Groot';
$data = (object)get_defined_vars();
$string = 'I am {$data->name}';
echo eval('return "'.$string.'";');
0

here is my solution:

$club = "Barcelona";

$string = 'i am a {$club} fan';

preg_match_all("/\{\\$([a-zA-Z_\x7f-\xff][a-zA-Z0-9_\x7f-\xff]*)\}/",$string,$matches);

foreach ($matches[0] as $key => $var_name) {
    if (!isset($GLOBALS[$matches[1][$key]])) $GLOBALS[$matches[1][$key]] = 'default value';
    $string = str_replace($var_name, $GLOBALS[$matches[1][$key]], $string);
}
0

You can use a simple parser, that replaces {$key} with a value from a map if it exists. use like $text = templateWith('hello $item}',array('item'=>'world'...)); My first version is:

/**
 * Template with a string and simple map.
 * @param string $template 
 * @param array $substitutions map of substitutions.
 * @return string with substitutions applied. 
 */
function templateWith(string $template, array $substitutions) {
    $state = 0; // forwarding
    $charIn = preg_split('//u', $template, -1, PREG_SPLIT_NO_EMPTY);
    $charOut = array();
    $count = count($charIn);
    $key = array();
    $i = 0;
    while ($i < $count) {
        $char = $charIn[$i];
        switch ($char) {
            case '{': 
                    if ($state === 0) {
                        $state = 1;
                    }
                break;
            case '}':
                if ($state === 2) {
                    $ks = join('', $key);
                   if (array_key_exists($ks, $substitutions)) {
                        $charOut[] = $substitutions[$ks];
                   }
                   $key = array();
                   $state = 0;
                }
                break;
            case '$': if ($state === 1) {
                        $state = 2;
                      }
                  break;
             case '\\':    if ($state === 0) {
                           $i++;
                           $charOut[] = $charIn[$i];
                       }
                 continue;
             default:
                 switch ($state) {
                    default:
                    case 0: $charOut[] = $char;
                        break;
                     case 2: $key[] = $char;
                        break;
                   }
         } 
    $i++;
    }

    return join('', $charOut);
 }
-1

Try preg_replace php function.

http://php.net/manual/en/function.preg-replace.php

<?php
    $club = "barcelona";
    echo $string = preg_replace('#\{.*?\}#si', $club, 'i am a {$club} fan');
?>
  • But this will replace all variables with $club – Jacob Tomlinson Feb 25 '13 at 11:17
  • @JacobTomlinson yes it will.. – Dipesh Parmar Feb 25 '13 at 11:18
  • 3
    @Dipesh the OP needs to replace each variable with its corresponding value. You're clearly misunderstanding the question. – Aleks G Feb 25 '13 at 11:22
-1

you can use preg_replace_callback for get variable name like

$data_base[0]['body'] = preg_replace_callback(
    '#{(.*?)}#', 
    function($m) {
        $m[1]=trim($m[1],'$');
        return $this->$m[1];
    },
    ' '.$data_base[0]['body'].' '
);

Attention this code I wrote is for class($this); you can declare variable in to the class. then use this code for detect variable and replace them like

<?php 
class a{
  function __construct($array){
    foreach($array as $key=>$val){
     $this->$key=$val;
    }

  }
  function replace($str){
   return preg_replace_callback('#{(.*?)}#',function($m){$m[1]=trim($m[1],'$');return $this->$m[1];},' '.$str.' ');
  }   


}

$obj=new a(array('club'=>3523));

echo $obj->replace('i am a {$club} fan');

output:

i am a 3523 fan 
  • Just tried your code on string I am a {club} fan (without $ sign) - got the following: PHP Fatal error: Using $this when not in object context in /tmp/p.php on line 3 – Aleks G Feb 25 '13 at 11:25
  • @AleksG i told in answer this code is for class you can't use it out of class – mohammad mohsenipur Feb 25 '13 at 11:26
  • I've hacked your code about a bit and the problem I've had is that the variables defined like $club are out of scope for the callback function so I end up getting Undefined variable: $club – Jacob Tomlinson Feb 25 '13 at 11:27
  • @JacobTomlinson test edited code – mohammad mohsenipur Feb 25 '13 at 11:28
  • sorry i see one problem in code.it is solved – mohammad mohsenipur Feb 25 '13 at 11:30
-2

Something like this should solve your problem:

$club = "Barcelona";
$var = 'I am a {$club} fan';

$res = preg_replace('/\{\$([a-zA-Z_\x7f-\xff][a-zA-Z0-9_\x7f-\xff]*)\}/e', "$$1", $var);
echo "$res\n";

It's a one-line preg_replace.

Update: with php 5.5 /e modifier is deprecated. You can use callback instead:

$club = "Barcelona";
$var = 'I am a {$club} fan';

$res = preg_replace_callback('/\{\$([a-zA-Z_\x7f-\xff][a-zA-Z0-9_\x7f-\xff]*)\}/',
                             create_function(
                                 '$matches',
                                 'extract($GLOBALS, EXTR_REFS | EXTR_SKIP); return $$matches[1];'),
                              $var);
echo "$res\n";

Note that this uses a hack of importing all global variables. This may not be exactly what you want. Possibly using closures would be a better idea.

  • 2
    eval is a very bad suggestion – David Feb 25 '13 at 11:14
  • @David: I know, this is why I wrote that it's a bad thing to do. – Aleks G Feb 25 '13 at 11:20
  • If it is a bad thing to do is there any point in even posting it? Or perhaps it should have been a comment rather than an answer. – Jacob Tomlinson Feb 25 '13 at 11:29
  • @JacobTomlinson Just because something is a bad thing to do, doesn't mean that it won't accomplish what you need. As long as you understand why it is a bad thing to do and understand how to protect yourself against it, there is not reason not to use a feature in a language. Afterall, if it's really so bad, why is still not deprecated? – Aleks G Feb 25 '13 at 11:33
  • 1
    Yes I appreciate your point. But speaking of deprecated the /e modifier has been deprecated and so I receive the warning The /e modifier is deprecated, use preg_replace_callback instead when running your new code. – Jacob Tomlinson Feb 25 '13 at 11:39

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