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I need a function that could generate a regex. For example if I write

$pat = "My {$var} is {$var2}"

to generate a regex that when I use

preg_match($pat,"My name is Kevin",$matches);

to return

$matches[1] = 'name';
$matches[2] = 'Kevin';

and the the string could be : "My $nameword is $name and i'm $age years old"

And the problem is:

FIG1
<?php
function gen_pattern($string)
{
<--- add code for generating pattern --->
}
?>

FIG2
$pat = gen_pattern('my name is {$X}');
ereg($pat,'my name is moo',$regs);
//$regs[1] == "moo„
([^\s]*)

$pat = gen_pattern('my {$YZ} is {$IJK}');
ereg($pat,'my name is moo',$regs);
//$regs[1] == "name", $regs[2] == "moo"

My homework's description is as follows:

Figure 1 shows a function which can generate a regular expression, usable for the ereg function.

Figure 2 shows how the pattern should work. In the given string, each item {$ABC} represents a placeholder, i.e. {$X} is the single place holder in "my name is {$X}", and there are two place holders in "my {$YZ} is {$IJK}". A place holder can be of any length above zero.

In the resulting pattern, each place holder represents one single word of the text, which has to be added to the result list. I.e. {$X} represents the next word after "my name is". As a result, $regs[1] becomes "moo" if the pattern is used on text "my name is moo". Assume that we have only texts of form [a-z ]* (note the white space).

My Task:

Fill in the green spot in Figure 1. Dont bother with error handling or checking the correct syntax of given string (i.e. "my name is {{}" or similar invalid input will not occur).

And I don't know where to begin.

share|improve this question
3  
the ereg* family of functions is deprecated. You should not use them anymore. use the preg_* family of functions instead. –  Gordon Jun 18 '12 at 9:56
    
nice homework.... –  dynamic Jun 18 '12 at 9:57
    
i know, i'm using preg_match –  Master345 Jun 18 '12 at 9:59
    
This homework is deprecated too ;) –  Boris Guéry Jun 18 '12 at 9:59
    
Nice question, much better than usual homework Qs here. Correctly tagged as homework and well formatted, +1. –  halfer Jun 18 '12 at 11:00

2 Answers 2

up vote 2 down vote accepted

this may work:

function gen_pattern($str){
    $str = preg_replace('/(\{[\$a-zA-Z]+\})/', '(\w+)', $str);
    return '/'.$str.'/';
}
$p = gen_pattern('my {$xx} is {$X}');

preg_match($p, 'my name is moo', $m);

$m will be:

array(3) {
  [0] =>
  string(14) "my name is moo"
  [1] =>
  string(4) "name"
  [2] =>
  string(3) "moo"
}
share|improve this answer
    
wow man, this is insane, you answered so fast ... it works, but i don't understand for the love of god that regex, it seems that is replace something ... i don't know, do you have a tutorial or link for this? thank you –  Master345 Jun 18 '12 at 10:04
    
@RowMinds tutorial... try to look here –  k102 Jun 18 '12 at 10:42
    
and what does it means '(\w+)' , is like "retrive the matched pattern" ? –  Master345 Jun 18 '12 at 11:32
    
\w = "word", means [a-zA-Z] and some other chars which i don't remember. + means one or more, () means "save it" so it can be accessed by $m in preg_match –  k102 Jun 18 '12 at 11:38
    
thank you very much :) –  Master345 Jun 18 '12 at 12:00

Something like this will help you..:

function gen_pattern($string)
{
    return "@".preg_replace("@(\{\$(.*?)\})@msi", "(?P<$2>.*?)", $string)."@";
}

so you will get a result with your variables as keys.

share|improve this answer
    
it doesn't work, byt k102's example fits perfecly :) –  Master345 Jun 18 '12 at 10:12
    
anyway, thanks ! –  Master345 Jun 18 '12 at 10:12
    
hey, please try it now :) if it will not work too, change $2 to $1 in my code. sorry, i didnt tested it, but if it will work, it will give you results with keys as your variable names.. –  Anton Jun 18 '12 at 10:58

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