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ok i have this and it doesn't show all the rows when fetched from mysql database its like this:

  mysql_select_db($database_config, $config);
    $query_cat = "SELECT * FROM cat";
    $cat = mysql_query($query_cat, $config) or die(mysql_error());
    $row_cat = mysql_fetch_array($cat);

    $arr = array("TIT" => $row_cat['title'],
            "DES" => $row_cat['description']);


    foreach($arr as $ar){
    echo $ar;
    }

now it only displays the first row and then stops why is it not displaying all the fields and i don't wanna use while loop for it can anyone explain me the problem??

EDIT: Well basically i want to work it like this

$p = "{TIT}{DES}";
foreach($arr as $k => $p){
$p = str_replace("{".$k."}", $v, $p);
echo $p;
}

Now the problem is not with str_replace its with the loop or database because the database rows are not incrementing and displays only one data.

share|improve this question
    
mysql_fetch_array only fetches one row (php.net/mysql_fetch_array) –  mellamokb May 2 '11 at 16:30
    
something wrong with TIT :-) –  zod May 2 '11 at 16:32
    
i have re edited the question please take a look... –  Keshav Nair May 2 '11 at 16:53

2 Answers 2

up vote 4 down vote accepted

This will always return the first row. you are fetching only once that will return only first row.

Instead you must fetch all the rows using fetch statement in loop

 while($row_cat = mysql_fetch_array($cat)){
       echo $row_cat['title'];
       echo $row_cat['description'];
    }
share|improve this answer

From PHP mysq_fetch_array documentation:

"Returns an array that corresponds to the fetched row and moves the internal data pointer ahead"

As far as I know, you cannot retrieve every row without using a loop. You should do something similar to this:

while($row_cat = mysql_fetch_array($cat)){
  echo $row_cat['title'];
  echo $row_cat['description'];
}
share|improve this answer

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