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Objective: Search through an array of tens of thousands of Chinese sentences in order to locate sentences that exclusively contain characters from a "known characters" array.

For example: Let's say my corpus consists of the following sentences: 1) 我去中国。 2) 妳爱他。 3) 你在哪里? I only "know" or want sentences that exclusively contain these characters: 1) 我 2) 中 3) 国 4) 你 5) 在 6) 去 7) 爱 8) 哪 9) 里. The first sentence would be returned as result because all three of its characters are in my second array. The second sentence would be rejected because I did not ask for 妳 or 他. The third sentence would be returned as a result. The punctuation marks are ignored (as well as any alpha-numeric characters).

I have a working script that does this (below). I'm wondering if this is an efficient way or not. If you are interested, please take a look and suggest changes, write your own, or give some advice. I've gleaned some from this script and checked out some stackoverflow questions, but they didn't address this scenario.

<?php
$known_characters = parse_file("FILENAME") // retrieves target characters
$sentences = parse_csv("FILENAME"); // retrieves the text corpus

$number_wanted = 30; // number of sentences to attempt to retrieve

$found = array(); // stores results
$number_found = 0; // number of results
$character_known = false; // assume character is not known
$sentence_known = true; // assume sentence matches target characters

foreach ($sentences as $s) {

    // retrieves an array of the sentence
    $sentence_characters = mb_str_split($s->ttext);

    foreach ($sentence_characters as $sc) {
        // check to see if the character is alpha-numeric or punctuation
        // if so, then ignore.
        $pattern = '/[a-zA-Z0-9\s\x{3000}-\x{303F}\x{FF00}-\x{FF5A}]/u';
        if (!preg_match($pattern, $sc)) {
            foreach ($known_characters as $kc) {;
                if ($sc==$kc) {
                    // if character is known, move to next character
                    $character_known = true;
                    break;
                }
            }
        } else {
            // character is known if it is alpha-numeric or punctuation
            $character_known = true;
        }
        if (!$character_known) {
            // if character is unknown, move to next sentence
            $sentence_known = false;
            break;
        }
        $character_known = false; // reset for next iteration
    }
    if ($sentence_known) {
        // if sentence is known, add it to results array
        $found[] = $s->ttext;
        $number_found = $number_found+1;
    }
    if ($number_found==$number_wanted)
        break; // if required number of results are found, break

    $sentence_known = true; // reset for next iteration 
}
?>
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1 Answer 1

up vote 0 down vote accepted

It appears to me this should do it:

$pattern = '/[^a-zA-Z0-9\s\x{3000}-\x{303F}\x{FF00}-\x{FF5A}我中国你在去爱哪里]/u';
if (preg_match($pattern, $sentence) {
    // the sentence contains characters besides a-zA-Z0-9, punctuation
    // and the selected characters
} else {
    // the sentence contains only the allowed characters
}

Make sure to save your source code file in UTF-8.

share|improve this answer
    
Nice, I appreciate the simplicity. Is there a point at which a regex becomes too long? For instance, if I'm searching for sentences that only contain characters from a set of 2000 different characters, wouldn't that be pushing it? –  tsroten Apr 20 '12 at 14:36
    
Technically that should work fine, probably better than repeatedly looping through 2000 characters. You'd probably not want to store the literal regex for that though, but build it up dynamically. –  deceze Apr 20 '12 at 14:44
    
Awesome, thanks for the answer, it works great. I'm rather new to regex so I'm very ignorant of what it is capable of. –  tsroten Apr 20 '12 at 15:26

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