5

I want to export the data from the 3 tables without joins in one .csv file. I am trying with joins but i am not getting the result Which i want.

Below are my table structure

Playlist Songs Rating

CODE

$mysql_host = DB_HOST;
$mysql_user = DB_USER;
$mysql_pass = DB_PASSWORD;
$mysql_db = DB_NAME;

$pre = $wpdb->prefix;

$link = mysql_connect($mysql_host, $mysql_user, $mysql_pass) or die('Could not connect: ' . mysql_error());

mysql_select_db($mysql_db, $link) or die('Could not select database: ' . $mysql_db);

$query = "SELECT plist.*, psong.*, prate.* 
          FROM " . $pre . "foo_playlists As plist 
          LEFT JOIN " . $pre . "foo_songs As psong
          On plist.playlist_name = psong.splaylist_name 
          LEFT JOIN " . $pre . "foo_rating As prate
          On psong.song_id = prate.rsong_id";

$result = mysql_query($query);
$row = mysql_fetch_assoc($result);

$line = "";
$comma = "";

foreach ($row as $name => $value) {
   $line .= $comma . '"' . str_replace('"', '""', $name) . '"';
   $comma = ",";
}
    $line .= "\n";
    $out = $line;
    mysql_data_seek($result, 0);
    while ($row = mysql_fetch_assoc($result)) {
        $line = "";
        $comma = "";
        foreach ($row as $value) {
            $line .= $comma . '"' . str_replace('"', '""', $value) . '"';
            $comma = ",";
        }
        $line .= "\n";
        $out.=$line;
    }
    $csv_file_name = 'songs_' . date('Ymd_His') . '.csv'; # CSV FILE NAME WILL BE table_name_yyyymmdd_hhmmss.csv
    header("Content-type: text/csv");
    header("Content-Disposition: attachment; filename=" . $csv_file_name);
    header("Content-Description:File Transfer");
    header('Content-Transfer-Encoding: binary');
    header('Cache-Control: must-revalidate, post-check=0, pre-check=0');
    header('Pragma: public');
    header('Content-Type: application/octet-stream');
    echo __($out, "foo");

    exit;

I got this result with I want this desired result

How can I do this?

  • Can you explain bit more about the csv . you need Table 1 Table 2 as header and data beneath those ? means you need styled CSV and that's why you tag CSS . right? – diEcho Aug 21 '14 at 4:43
  • without table structure and desired output, we can not help. you can look for fputcsv – diEcho Aug 21 '14 at 4:47
  • 1
    without table structure how can we find the issue? add on sqlfiddle.com – diEcho Aug 21 '14 at 5:37
  • ok i give you my DB structure till than wait – deemi-D-nadeem Aug 21 '14 at 5:45
  • @diEcho Now check my question .... and thanx for the nice tool – deemi-D-nadeem Aug 21 '14 at 6:53
4
+50

Well, your problem is that you can't retrieve all the data at the same time in an only MySQL query, as they are not related data. Your problem is just the output, so, you only will have to relate the 3 set of results in an only array. To do that:

  • Execute the three querys, and save them in three unrelated arrays.

  • Relate them with a key you'll share with all of them.

  • Loop over all the arrays assigning values to a main "output" one.

With that, you'll have the array which you can output to get the CSV you want. For the sake of the example, and due I can't write a valid code with your vars and queries, I wrote the following example. It has the 3 different arrays you'll have to get from your database with mock data, but you can grab the idea. Just copy and paste and you'll have the live example:

<?php

$playlists  = array(
    array(
        'id'    => 1
    ,   'data'  => 'playlist1'
    )
,   array(
        'id'    => 2
    ,   'data'  => 'playlist2'
    )
,   array(
        'id'    => 3
    ,   'data'  => 'playlist3'
    )
);

$songs  = array(
    array(
        'id'    => 1
    ,   'data'  => 'song1'
    )
,   array(
        'id'    => 2
    ,   'data'  => 'song2'
    )
,   array(
        'id'    => 3
    ,   'data'  => 'song3'
    )
,   array(
        'id'    => 4
    ,   'data'  => 'song4'
    )
,   array(
        'id'    => 5
    ,   'data'  => 'song5'
    )
);
$rates  = array(
    array(
        'id'    => 1
    ,   'data'  => 'rating1'
    )
,   array(
        'id'    => 2
    ,   'data'  => 'rating2'
    )
,   array(
        'id'    => 3
    ,   'data'  => 'rating3'
    )
,   array(
        'id'    => 4
    ,   'data'  => 'rating4'
    )
,   array(
        'id'    => 5
    ,   'data'  => 'rating5'
    )
,   array(
        'id'    => 6
    ,   'data'  => 'rating6'
    )
);

// Count all the arrays and get the bigger:
$num        = 0;
$play_num   = count( $playlists );
$num        = ($play_num > $num) ? $play_num : $num;

$song_num   = count( $songs );
$num        = ($song_num > $num) ? $song_num : $num;

$rate_num   = count( $rates );
$num        = ($rate_num > $num) ? $rate_num : $num;


$output = array();
for ( $i = 0; $i<=$num; $i++ ) {
    $output[]   = array(
        'id_playlist'   => !empty( $playlists[$i]['id'] )   ? $playlists[$i]['id']   : ''
    ,   'data_playlist' => !empty( $playlists[$i]['data'] ) ? $playlists[$i]['data'] : ''
    ,   'id_song'       => !empty( $songs[$i]['id'] )       ? $songs[$i]['id']       : ''
    ,   'data_song'     => !empty( $songs[$i]['data'] )     ? $songs[$i]['data']     : ''
    ,   'id_rate'       => !empty( $rates[$i]['id'] )       ? $rates[$i]['id']       : ''
    ,   'data_rate'     => !empty( $rates[$i]['data'] )     ? $rates[$i]['data']     : ''
    );
}

foreach ( $output as $out ) {
    echo implode( ' - ', $out);
    echo '<br>';
}

Output:

1 - playlist1 - 1 - song1 - 1 - rating1
2 - playlist2 - 2 - song2 - 2 - rating2
3 - playlist3 - 3 - song3 - 3 - rating3
  -           - 4 - song4 - 4 - rating4
  -           - 5 - song5 - 5 - rating5
  -           -   -       - 6 - rating6
  • can you please give me some code help in disscussion – deemi-D-nadeem Aug 22 '14 at 7:37
  • sure, what do you need? – Chococroc Aug 22 '14 at 7:41
  • that how can i write a query like so i get this result – deemi-D-nadeem Aug 22 '14 at 7:42
  • i mean queries in array and out put in loop – deemi-D-nadeem Aug 22 '14 at 7:42
  • Ok, you have to fecth the values from DB. I strongly recommend you NOT TO USE php mysql functions, are they are deprecated. Instead, mysqli or PDO, but anyway, you must write 3 queries, one per set of data – Chococroc Aug 22 '14 at 7:44

protected by diEcho Aug 21 '14 at 12:08

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