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I know there are similar questions here and I have read some of the posts and answers, experimented with some of them, but whether it is my limited knowledge of PHP or the peculiarity of my case, I need to ask this.

I am building a dictionary (id, english, bulgarian, theme_id) and would like to group the search results according to theme_id. I am using "ORDER BY theme_id, id" in my query but I end up displaying the theme with each of the results, while I would like to categorize them as follows:

THEME 1 - result 1 - result 2 THEME 2 - result 3 - result 4 .....

Here is the relevant part of my code: ///////////////////////////////////////////////////////////

while($row = mysql_fetch_array($result)) {
    //$id       = $row['id'];
    $english    = $row['english'];
    $bulgarian  = $row['bulgarian'];
    $theme_id   = $row['theme_id'];

    $theme_name = "theme_".$lang;
    $theme_query= mysql_query("SELECT theme_id,".$theme_name." FROM ".DICTIONARY_THEMES." WHERE theme_id = ".$theme_id."");
    $theme_row  = mysql_fetch_array($theme_query);
    $theme      = $theme_row[$theme_name];

    if($source == "english") {

        foreach($keywords as $keyword) {
            $english = preg_replace("|($keyword)|Ui", "<span style=\"color:#780223\">".$keyword."</span>", $english);
        }

        $print .= "<li class=\"results-row\">".$theme.": ".$english." = ".$bulgarian."</li>";
    }

    elseif($source == "bulgarian") {
        foreach($keywords as $keyword) {
            $bulgarian = preg_replace("|($keyword)|Ui", "<span style=\"color:#780223;\">".$keyword."</span>", $bulgarian);
        }

        $print .= "<li class=\"results-row\">".$theme.": ".$bulgarian." = ".$english."</li>";
    }
}//end while

Please share you competence :)

EDIT: SOLVED, a friend has helped improve my code. /////////////////////////////////////////////////////

while($row = mysql_fetch_array($result)) {
    $english    = $row['english'];
    $bulgarian  = $row['bulgarian'];
    $theme_id   = $row['theme_id'];

    $theme_name = "theme_".$lang;
    $theme_query= mysql_query("SELECT theme_id,".$theme_name." FROM ".DICTIONARY_THEMES." WHERE theme_id = ".$theme_id."");
    $theme_row  = mysql_fetch_array($theme_query);
    $theme      = $theme_row[$theme_name];

    // add all results to an array
    $results[] = array(
        'english'   => $english,
        'bulgarian' => $bulgarian,
        'theme'     => $theme
    );

}//end while

$theme = null;
foreach ($results as $result) {
    if ($theme != $result['theme']) {
        $theme = $result['theme'];
        $print .= "<h3>" . $result['theme'] . "</h3>";
    }

    if ($source == "english") {
        foreach ($keywords as $keyword) {
            $result['english'] = preg_replace("|($keyword)|Ui", "<span style=\"color:#780223\">" . $keyword . "</span>", $result['english']);
        }
        $print .= "<li class=\"results-row\">" . $result['english'] . " = " . $result['bulgarian'] . "</li>";
    } elseif ($source == "bulgarian") {
        foreach ($keywords as $keyword) {
            $result['bulgarian'] = preg_replace("|($keyword)|Ui", "<span style=\"color:#780223;\">" . $keyword . "</span>", $result['bulgarian']);
        }
        $print .= "<li class=\"results-row\">" . $result['bulgarian'] . " = " . $result['english'] . "</li>";
    }
}
share|improve this question
3  
You should consider using PDO to access the database. The mysql_* functions are no longer supported and do not provide you with the ability to prepare statements. – AlexP Oct 17 '12 at 18:26
    
It's hard to tell because your question is difficult to understand, but I don't think you've posted all the relevant code. What's the SQL query you use to put results into $result? You described it a bit in your question but it's hard to tell exactly what's going on here without seeing that query. – sgroves Oct 17 '12 at 18:47
    
Here it is: if($theme_id == "0") { foreach ($keywords as $keyword) { $query = "SELECT * FROM ".DICTIONARY_TABLE." " . "WHERE ".$source." LIKE '%".mysql_escape_string($keyword)."%'". " ORDER BY theme_id, id"; } } – cheeseus Oct 17 '12 at 19:00

Based on your code, you should first add all items to an array and afterwards print that array in a separate function/block.

Right after your second MySQL query, put something like

$output[$theme_id] = mysql_fetch_array( $theme_query );

and move all the following code out of the outer result-while-loop (while($row = mysql_fetch_array($result))).

But in fact I would try to put a MySQL query together, to have an ordered, grouped result with all the selected themes in all languages and without querying the database inside a loop.

Or you use something existing, for example this singleton Lexicon class.

share|improve this answer
    
I think I've done what you advise but I still can't figure out a way to do this. Here's my code now: while($row = mysql_fetch_array($result)) { $english = $row['english']; $bulgarian = $row['bulgarian']; $theme_id = $row['theme_id']; $theme_name = "theme_".$lang; $theme_query= mysql_query("SELECT theme_id,".$theme_name." FROM ".DICTIONARY_THEMES." WHERE theme_id = ".$theme_id.""); $theme_row = mysql_fetch_array($theme_query); $theme = $theme_row[$theme_name]; $results[] = array( 'english' => $english, 'bulgarian' => $bulgarian, 'theme' => $theme ); }//end while – cheeseus Oct 18 '12 at 9:27
    
@cheeseus Please insert any updates to your question above and use the code formatting… – feeela Oct 18 '12 at 9:28
    
There's no room here for all the code... So, here is a link to the whole SEARCH.PHP page printed to PDF. The relevant code starts on Line 144. link – cheeseus Oct 18 '12 at 9:34
1  
The above PDF link doesn't seem to work (file is blank) when opened in the browser. Here's a RAR-ed version: link – cheeseus Oct 18 '12 at 9:43

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