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I have read multiple question in the internet including this stackoverflow question but none of them working for me. Here is my code:

<?php

$conn1 = mysql_connect("localhost","root","passw0rd") or die(mysql_error());
$conn2 = mysql_connect("localhost","root","passw0rd") or die(mysql_error());

mysql_select_db("asteriskcdrdb",$conn1);
mysql_select_db("pj8v2",$conn2);

$query = "SELECT * FROM cdr";
$result = mysql_query($query,$conn1);

var_dump($result);

$query2 = "SELECT * FROM tb_did_avalaible";
$result2 = mysql_query($query2,$conn2);

var_dump($result2);

?>

When i var_dump the result, it return false. What is the problem here? Thank you.

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1  
have you tried checking the error with echo mysql_error($conn1); ? –  akellehe Nov 12 '10 at 3:09
2  
Did you check the values of $conn1 and $conn2? What is the output from mysql_error after each failed mysql call? –  Matthew Flaschen Nov 12 '10 at 3:11
    
thank for the help. i just figure out the problem. my mistake for not realize it sooner. –  cyberfly Nov 12 '10 at 3:12
    
post your updated code, i guess u just have to mysql_select_db("pj8v2",$conn2); after the first mysql_query –  ajreal Nov 12 '10 at 5:14
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3 Answers 3

You dont need two connections, if both databases are located on the same mysql-server and you access them both as unique user.

You also don't need to select a DB.
Just use the database-name as prefix when specifying the tables:

<?php

mysql_connect("localhost","root","pass") or die(mysql_error());

$query = "SELECT * FROM asteriskcdrdb.cdr";
$result = mysql_query($query)or die(mysql_error());
var_dump($result);

$query2 = "SELECT * FROM pj8v2.tb_did_avalaible";
$result2 = mysql_query($query2)or die(mysql_error());
var_dump($result2);

?>

The real problem in your code is: there can only be one active DB, it should work this way:

<?php

$conn1 = mysql_connect("localhost","root","passw0rd") or die(mysql_error());   
$conn2 = mysql_connect("localhost","root","passw0rd",true) or die(mysql_error());

mysql_select_db("asteriskcdrdb",$conn1);
$query = "SELECT * FROM cdr";
$result = mysql_query($query,$conn1);

var_dump($result);


mysql_select_db("pj8v2",$conn2);
$query2 = "SELECT * FROM tb_did_avalaible";
$result2 = mysql_query($query2,$conn2);

var_dump($result2);

?>

Altough there's no need for 2 connections, you can select both DB's using the same connection.

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Sorry i just figure out the problem. If using same connection parameter, must add true in the connect parameter

$conn1 = mysql_connect("localhost","root","passw0rd") or die(mysql_error());
$conn2 = mysql_connect("localhost","root","passw0rd",true) or die(mysql_error());
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i dont think opening 2 connection is necessary in your situation –  racar Nov 12 '10 at 3:15
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Don't use mysql connector, use mysqli. It is more secure compared to mysql.

the code would be.

$conn1  = new mysqli("localhost","user","password","db1");
$conn2  = new mysqli("localhost","user","password","db2");

$query1 = "select * from table1";
$query2 = "select * from table2";

echo $query1 . "<br />";
echo $query2 . "<br />";

$rs1 = $conn1->query($query1);
$rs2 = $conn2->query($query1);

Also check if the the query is correct. Most of the times the error is in the query and not the syntax.

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If you're going to recommend ditching one connection option in favour of another, then it really should be PDO_MySql –  Phil Nov 12 '10 at 3:56
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