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I have a database name called ‘sachin’. It consists of 25 tables. I need to show the structure of a verify the structure of a database using php.

Can anyone help??

Here is my code

mysql_connect('localhost','root',''); 
mysql_select_db("sachin"); 

$sql_filename = 'user_db_structure.sql'; 
$sql_contents = file_get_contents($sql_filename); 
$sql_contents = explode(";", $sql_contents); 

print"<pre>"; 
print_r($sql_contents); 
print"</pre>"; 

foreach ($sql_contents as $ks => $vs) 
{ 
    $vs = $vs.';'; mysql_query($vs); 
} 

//$result = mysql_query($sql_contents); 

can any one help???

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closed as unclear what you're asking by Michael Petrotta, xbonez, mario, andrewsi, Rikesh Mar 6 at 6:37

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

3  
What have you tried? We like to see evidence of some effort. –  Michael Petrotta Jun 8 '12 at 5:52

3 Answers 3

You can use the information schema tables in mySQL to get to a tables structure. The following queries will give you a starting point.

SELECT * FROM INFORMATION_SCHEMA.TABLES

SELECT * FROM INFORMATION_SCHEMA.COLUMNS

If you join the two you will get what you are looking for.

Go read the following link:

http://dev.mysql.com/doc/refman/5.0/en/information-schema.html

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You could try Show Tables to show the tables in a database and/or Describe to get information on table columns.

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<?php mysql_connect('localhost','root',''); mysql_select_db("sachin"); $sql_filename = 'user_db_structure.sql'; $sql_contents = file_get_contents($sql_filename); $sql_contents = explode(";", $sql_contents); print"<pre>"; print_r($sql_contents); print"</pre>"; foreach ($sql_contents as $ks => $vs) { $vs = $vs.';'; mysql_query($vs); } //$result = mysql_query($sql_contents); ?> –  Sachin Malmanchi Jun 8 '12 at 6:03
    
here is my code –  Sachin Malmanchi Jun 8 '12 at 6:03
    
Look below. @Zuber Surya has clarified your code. –  nageeb Jun 8 '12 at 6:05
    
Show tables is ok. Have a look at the information_schema tables. They have so much information and it is simple to query and use. –  Namphibian Jun 8 '12 at 8:31

This modified version is working for me

<?php   


if (!mysql_connect('localhost', 'root', '')) {
        echo 'Could not connect to mysql';
        exit;
        }
         $dbname = 'db_name';
        //select db query
            if (!mysql_select_db('db_name')) {
                        echo 'Could not connect to database';
                        exit;
                        } 
        /* $sql = "SHOW TABLES FROM $dbname"; */
        $sql = "SHOW TABLES FROM db_name";
        $result = mysql_query($sql);

                while($tables = mysql_fetch_array($result))
                {               
                    $que_result = mysql_query("select * from $tables[0]");

                    $fields = mysql_num_fields($que_result);
                    $rows   = mysql_num_rows($que_result);
                    $table  = mysql_field_table($que_result, 0);
                    echo "<br/>Your '" . $table . "' table has " . $fields . " fields and " . $rows . " record(s)<br/>";
                    echo "<br/>The table has the following fields:<br/>";
                    for ($i=0; $i < $fields; $i++) {
                        $type  = mysql_field_type($que_result, $i);
                        $name  = mysql_field_name($que_result, $i);
                        $len   = mysql_field_len($que_result, $i);
                        $flags = mysql_field_flags($que_result, $i);
                        echo $type . " | " . $name . "  | " . $len . " | " . $flags . "<br/>";
                    }   

                }

i guess this will your result..!!

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It's coming warning error –  Sachin Malmanchi Jun 8 '12 at 8:09
    
i tested, working fine this modified code –  Zuber Surya Jun 8 '12 at 11:13

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