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I would like to know how I could transform the given string into the specified array:

String

all ("hi there \(option\)", (this, that) , other) another

Result wanted (Array)

[0] => all,
[1] => Array(
    [0] => "hi there \(option\)",
    [1] => Array(
        [0] => this,
        [1] => that
    ),
    [2] => other
),
[2] => another

This is used for a kind of console that I'm making on PHP. I tried to use preg_match_all but, I don't know how I could find parenteses inside parenteses in order to "make arrays inside arrays".

EDIT

All other charaters that are not specified on the example should be treated as String

EDIT 2

I forgot to mention that all parameter's outside the parenteses should be detected by the space character.

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6  
You are trying to build a syntax tree, or parse tree. I think regex is not a proper tool for that. –  Sina Iravanian Feb 4 '13 at 10:29
    
Then, what should I do? –  Cristiano Santos Feb 4 '13 at 10:31
1  
@CristianoSantos Write your own parser. –  Leri Feb 4 '13 at 10:32
1  
@CristianoSantos you should loop through the input string, which adds words to an array until a close bracket is visited or input finishes. But upon visiting an open bracket this method must call itself (a recursive call) and use the returned array. –  Sina Iravanian Feb 4 '13 at 10:34
    
why not simply split with [\s,()]+ –  Anirudha Feb 4 '13 at 10:35

7 Answers 7

up vote 4 down vote accepted

There's no question that you should write parser if you are building syntax tree. But if you just need to parse this sample input regex still might be a tool:

<?php
$str = 'all, ("hi there", (these, that) , other), another';

$str = preg_replace('/\, /', ',', $str); //get rid off extra spaces
/*
 * get rid off undefined constants with surrounding them with quotes
*/
$str = preg_replace('/(\w+),/', '\'$1\',', $str);
$str = preg_replace('/(\w+)\)/', '\'$1\')', $str);
$str = preg_replace('/,(\w+)/', ',\'$1\'', $str);

$str = str_replace('(', 'array(', $str);

$str = 'array('.$str.');';

echo '<pre>';
eval('$res = '.$str); //eval is evil.
print_r($res); //print the result

Demo.

Note: If input will be malformed regex will definitely fail. I am writing this solution just in a case you need fast script. Writing lexer and parser is time-consuming work, that will need lots of research.

share|improve this answer
    
Thanks, I really just need this to work fast. In my case, there's no problem at all if the regex fails. I really just need to throw a general error and not a specific one. =) –  Cristiano Santos Feb 4 '13 at 11:13
    
@CristianoSantos In that case I'd use this script and start reading more about syntax parsers for educational purposes. –  Leri Feb 4 '13 at 11:15
    
It is so going to mess up this string 'all, ("hi, there, I am from SO", (these, that) , other), another' –  nhahtdh Feb 4 '13 at 11:16
    
@PLB nhahtdh is right. It's throwing an error on that. –  Cristiano Santos Feb 4 '13 at 11:20
1  
@CristianoSantos Oh, there were not special characters in question when I was writing this answer. If there're you need to escape them and improve this script for better handling of malformed strings. For dirty job it's ok, for future using purposes big NO. –  Leri Feb 4 '13 at 11:22

The 10,000ft overview

You need to do this with a small custom parser: code takes input of this form and transforms it to the form you want.

In practice I find it useful to group parsing problems like this in one of three categories based on their complexity:

  1. Trivial: Problems that can be solved with a few loops and humane regular expressions. This category is seductive: if you are even a little unsure if the problem can be solved this way, a good rule of thumb is to decide that it cannot.
  2. Easy: Problems that require building a small parser yourself, but are still simple enough that it doesn't quite make sense to bring out the big guns. If you need to write more than ~100 lines of code then consider escalating to the next category.
  3. Involved: Problems for which it makes sense to go formal and use an already existing, proven parser generator¹.

I classify this particular problem as belonging into the second category, which means that you can approach it like this:

Writing a small parser

Defining the grammar

To do this, you must first define -- at least informally, with a few quick notes -- the grammar that you want to parse. Keep in mind that most grammars are defined recursively at some point. So let's say our grammar is:

  • The input is a sequence
  • A sequence is a series series of zero or more tokens
  • A token is either a word, a string or an array
  • Tokens are separated by one or more whitespace characters
  • A word is a sequence of alphabetic characters (a-z)
  • A string is an arbitrary sequence of characters enclosed within double quotes
  • An array is a series of one or more tokens separated by commas

You can see that we have recursion in one place: a sequence can contain arrays, and an array is also defined in terms of a sequence (so it can contain more arrays etc).

Treating the matter informally as above is easier as an introduction, but reasoning about grammars is easier if you do it formally.

Building a lexer

With the grammar in hand you know need to break the input down into tokens so that it can be processed. The component that takes user input and converts it to individual pieces defined by the grammar is called a lexer. Lexers are dumb; they are only concerned with the "outside appearance" of the input and do not attempt to check that it actually makes sense.

Here's a simple lexer I wrote to parse the above grammar (don't use this for anything important; may contain bugs):

$input = 'all ("hi there", (this, that) , other) another';

$tokens = array();
$input = trim($input);
while($input) {
    switch (substr($input, 0, 1)) {
        case '"':
            if (!preg_match('/^"([^"]*)"(.*)$/', $input, $matches)) {
                die; // TODO: error: unterminated string
            }

            $tokens[] = array('string', $matches[1]);
            $input = $matches[2];
            break;
        case '(':
            $tokens[] = array('open', null);
            $input = substr($input, 1);
            break;
        case ')':
            $tokens[] = array('close', null);
            $input = substr($input, 1);
            break;
        case ',':
            $tokens[] = array('comma', null);
            $input = substr($input, 1);
            break;
        default:
            list($word, $input) = array_pad(
                preg_split('/(?=[^a-zA-Z])/', $input, 2),
                2,
                null);
            $tokens[] = array('word', $word);
            break;
    }
    $input = trim($input);
}

print_r($tokens);

Building a parser

Having done this, the next step is to build a parser: a component that inspects the lexed input and converts it to the desired format. A parser is smart; in the process of converting the input it also makes sure that the input is well-formed by the grammar's rules.

Parsers are commonly implemented as state machines (also known as finite state machines or finite automata) and work like this:

  • The parser has a state; this is usually a number in an appropriate range, but each state is also described with a more human-friendly name.
  • There is a loop that reads reads lexed tokens one at a time. Based on the current state and the value of the token, the parser may decide to do one or more of the following:
    1. take some action that affects its output
    2. change its state to some other value
    3. decide that the input is badly formed and produce an error

¹ Parser generators are programs whose input is a formal grammar and whose output is a lexer and a parser you can "just add water" to: just extend the code to perform "take some action" depending on the type of token; everything else is already taken care of. A quick search on this subject gives led PHP Lexer and Parser Generator?

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respect @Jon. Can you link any nice articles on this topic? –  d.raev Feb 4 '13 at 11:10
    
There is no need to define a language, since an extended regular expression can solve this problem. I bet in one expression. I think if the attendant has no clue of formal languages, this answer is even more misleading for him/her. P.S: Wow this solution gets even more complicated for a PHP application, we are not constructing a language here. :D –  Dyin Feb 4 '13 at 11:13
2  
@Dyin: It depends on how you define "need". If you want a parser that is maintainable then you most definitely need a grammar. If you want a regex that works for me (tm) but is totally incomprehensible, subject to breaking down at the slightest provocation and ultimately impossible to extend in the future then you don't necessarily need a grammar. If you disagree please try to prove me wrong by writing such a regex. –  Jon Feb 4 '13 at 11:17
    
How is a regular expression impossible to extend? Truly a regular expression can't tell you where's the syntax error, but the answer should not to implement an LALR or SLR for this. :D Sadly I'm not an expert in extended, recursive regular expressions, but I believe, someone will implement a pattern for this, which solves the problem in 1 step, that is faster. This is a parentheses problem, why would a PHP developer write a lexical and syntactical analyzer for this? –  Dyin Feb 4 '13 at 11:26
3  
@Dyin: I 'm not an expert in regex either, but I know enough to understand that I would never, ever want to do this with regex because a) I consider it impossible to prove that a regex works correctly in all cases (while it is certainly possible to prove that a parser correctly processes a given formal grammar) and b) it is much easier to reason about how a FSM works, so it's much easier to extend and maintain. YMMV. –  Jon Feb 4 '13 at 11:30

As far as I know, the parentheses problem is a Chomsky language class 2, while regular expressions are equivalent to Chomsky language class 3, so there should be no regular expression, which solves this problem.

But I read something not long ago:

This PCRE pattern solves the parentheses problem (assume the PCRE_EXTENDED option is set so that white space is ignored): \( ( (?>[^()]+) | (?R) )* \)

With delimiters and without spaces: /\(((?>[^()]+)|(?R))*\)/.

This is from Recursive Patterns (PCRE) - PHP manual.

There is an example on that manual, which solves nearly the same problem you specified! You, or others might find it and proceed with this idea.

I think the best solution is to write a sick recursive pattern with preg_match_all. Sadly I'm not in the power to do such madness!

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Regex you see in modern languages are not strictly regular, so it can do thing beyond what theoretical regular expression can do. –  nhahtdh Feb 4 '13 at 11:17

First, I want to thank everyone that helped me on this.

Unfortunately, I can't accept multiple answers because, if I could, I would give to you all because all answers are correct for different types of this problem.

In my case, I just needed something simple and dirty and, following @palindrom and @PLB answers, I've got the following working for me:

$str=transformEnd(transformStart($string));
$str = preg_replace('/([^\\\])\(/', '$1array(', $str);
$str = 'array('.$str.');';
eval('$res = '.$str);
print_r($res); //print the result

function transformStart($str){
    $match=preg_match('/(^\(|[^\\\]\()/', $str, $positions, PREG_OFFSET_CAPTURE);
    if (count($positions[0]))
        $first=($positions[0][1]+1);
    if ($first>1){
        $start=substr($str, 0,$first);
        preg_match_all("/(?:(?:\"(?:\\\\\"|[^\"])+\")|(?:'(?:\\\'|[^'])+')|(?:(?:[^\s^\,^\"^\']+)))/is",$start,$results);
        if (count($results[0])){
            $start=implode(",", $results[0]).",";
        } else {
            $start="";
        }
        $temp=substr($str, $first);
        $str=$start.$temp;
    }
    return $str;
}

function transformEnd($str){
    $match=preg_match('/(^\)|[^\\\]\))/', $str, $positions, PREG_OFFSET_CAPTURE);
    if (($total=count($positions)) && count($positions[$total-1]))
        $last=($positions[$total-1][1]+1);
    if ($last==null)
        $last=-1;
    if ($last<strlen($str)-1){
        $end=substr($str,$last+1);
        preg_match_all("/(?:(?:\"(?:\\\\\"|[^\"])+\")|(?:'(?:\\\'|[^'])+')|(?:(?:[^\s^\,^\"^\']+)))/is",$end,$results);
        if (count($results[0])){
            $end=",".implode(",", $results[0]);
        } else {
            $end="";
        }
        $temp=substr($str, 0,$last+1);
        $str=$temp.$end;
    }
    if ($last==-1){
        $str=substr($str, 1);
    }
    return $str;
}

Other answers are helpful too for who is searching a better way to do this.

Again, thank you all =D.

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I will put the algorithm or pseudo code for implementing this. Hopefully you can work-out how to implement it in PHP:

function Parser([receives] input:string) returns Array

define Array returnValue;

for each integer i from 0 to length of input string do
    charachter = ith character from input string.

    if character is '('
        returnValue.Add(Parser(substring of input after i)); // recursive call

    else if character is '"'
        returnValue.Add(substring of input from i to the next '"')

    else if character is whitespace
        continue

    else
        returnValue.Add(substring of input from i to the next space or end of input)

   increment i to the index actually consumed


return returnValue
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1  
So, I really need to parse the string char by char? –  Cristiano Santos Feb 4 '13 at 10:53
    
Well, you can probably extract words first. But you should be cautious about the quotes. I recommend doing it char by char. –  Sina Iravanian Feb 4 '13 at 10:54

I want to know if this works:

  1. replace ( with Array(
  2. Use regex to put comma after words or parentheses without comma

    preg_replace( '/[^,]\s+/', ',', $string )

  3. eval( "\$result = Array( $string )" )

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1  
If you evaluate these and that you'll get undefined constant errors. –  h2ooooooo Feb 4 '13 at 10:33
    
@h2ooooooo: the resulted array has those constants too. So i guess they aren't constants in the first place. –  palindrom Feb 4 '13 at 10:37
    
But my string starts with "all". Wouldn't it give an error on eval? –  Cristiano Santos Feb 4 '13 at 10:42
    
This will trigger an error in all ("hi there", (this, that) , other) another because there's a missing , between ) and another... –  Jefffrey Feb 4 '13 at 10:45
    
@Cristiano Santos see the edit. –  palindrom Feb 4 '13 at 10:47

if the string values are fixed, it can be done some how like this

$ar = explode('("', $st);

$ar[1] = explode('",', $ar[1]);

$ar[1][1] = explode(',', $ar[1][1]);

$ar[1][2] = explode(')',$ar[1][1][2]);

unset($ar[1][1][2]);

$ar[2] =$ar[1][2][1];

unset($ar[1][2][1]);
share|improve this answer
    
Sorry, but they are dynamic =S –  Cristiano Santos Feb 4 '13 at 11:15

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