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I have 2 queries and i want to use result of first query in second one.
Following does not work for me:

$id     = $_GET['uid'];
$app_id = $_GET['apid'];
$sql    = "insert into tbl_sc (client_id,status) values ($id,1)";
mysql_query($sql) or die ($sql);
$result = mysql_insert_id();
echo $result;

$sql    = "insert into tbl_ms(m_name, ng_ID, status)
           values ($app_id,$result ,1)";
$result = mysql_query($sql) or die ($sql);

Is there any other way to get same result?

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The return value of mysql_query(), i.e. $result is a resource - what (ie. which data type) do you want to insert into tbl_ms? –  Eugen Rieck Jan 23 '12 at 13:44
    
first $result is only a resource. Unless you want to use that mysql_insert_id().. –  Mihai Iorga Jan 23 '12 at 13:45
3  
@EugenRieck First $result variable here is not a resource. Though second one is. –  shiplu.mokadd.im Jan 23 '12 at 13:47
    
How it should work? Did you try renaming the first $result to $insert_id ? –  shiplu.mokadd.im Jan 23 '12 at 13:48
    
@hia: Do you want the auto-generated by MySQL Primary Key of tbl_sc from the first insert statement to be used in the second insert? –  ypercube Jan 23 '12 at 13:51

5 Answers 5

up vote 2 down vote accepted

You could have used MySQL LAST_INSERT_ID() function. This way all this mess with insert id will be gone.

$sql    = "insert into tbl_sc (client_id,status) values ($id,1)";
if(mysql_query($sql)){
    $sql    = "insert into tbl_ms(m_name, ng_ID, status)
               values ($app_id, LAST_INSERT_ID() ,1)";
    $result = mysql_query($sql);
    if($result){
        // Process your result
    }else{
        // second query failed!
        die (mysql_error());
    }
}else{
    // first query failed!
    die (mysql_error());
}
share|improve this answer
    
This is fine but sometimes, one has to deal with mess anyway. Like if first INSERT succeeds and second fails (and you need to know the last-insert_id in your code, e.g. to retry) –  ypercube Jan 23 '12 at 13:57
    
@ypercube right you are. Updated the code a little bit for that. –  shiplu.mokadd.im Jan 23 '12 at 14:03
    
thanks it worked this way! :) –  Hia Jan 23 '12 at 17:29
    
Thanks for feedback! I found error.. $sql = "insert into tbl_ms(m_name, ng_ID, status) values ('$app_id',$result ,1)"; I had to quote '$app_id'.. while testing i was passing integer and in ap I passed a string And because I was using app debugger I did not see the real error... –  Hia Jan 24 '12 at 8:56

$result contains an SQL resource, not the id.

$insert_id = mysql_insert_id();
$sql = "INSERT INTO tbl_ms(m_name, ng_ID, status) 
        VALUES ($app_id, $insert_id, 1)";

Don't forget to sanitize user input to avoid injection attacks.

share|improve this answer
    
in my case it contains a autogenerated number, and ng_ID is olso int value. –  Hia Jan 23 '12 at 14:20

$result in your code will always contain a boolean, and if it was successful, when used in the next query, this will always be 1. You echod the value you need, but you didn't catch it in a variable so it could be used in the next query.

Try this:

$id = mysql_real_escape_string($_GET['uid']);
$sql = "INSERT INTO tbl_sc
          (client_id, status)
        VALUES
          ($id, 1)";
mysql_query($sql) or die ("MySQL error with query ( $sql ): ".mysql_error());

$app_id = mysql_real_escape_string($_GET['apid']);
$insertId = mysql_insert_id();
$sql = "INSERT INTO tbl_ms
          (m_name, ng_ID, status) 
        VALUES
          ($app_id, $insertId ,1)";
mysql_query($sql) or die ("MySQL error with query ( $sql ): ".mysql_error());

You MUST escape user input before using it in a query - you don't want a visit from Bobby Tables...

share|improve this answer
    
$result in your code will always contain a boolean. Wrong! it'll contain false if no result is found. Otherwise it'll contain result resource. –  shiplu.mokadd.im Jan 23 '12 at 13:50
    
@Shiplu True, if this was a query that returned a result set. It will be boolean for an INSERT... –  DaveRandom Jan 23 '12 at 13:51
    
Hello everybody and thanks for such a quick replay. What it shold do is: first to echo mysql_insert_id() (it sends me back what i need) and then it should register my result in second table. –  Hia Jan 23 '12 at 14:00
    
this one didnot work.. again first querry gives result, but second is not runned... –  Hia Jan 23 '12 at 14:15

In the second query just use

insert into tbl_ms(m_name, ng_ID, status)
           values ($app_id,last_insert_id() ,1)

no need to play this via PHP!

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tryed, its not working.. second querry does not insert any data :( –  Hia Jan 23 '12 at 14:21
    
echo the SQL and post it, best include a DESCRIBE tbl_ms –  Eugen Rieck Jan 23 '12 at 14:26
    
what do you mean by DESCRIBE tbl_ms? –  Hia Jan 23 '12 at 14:54
    
run the SQL "DESCRIBE tbl_ms" against the databse and post the output –  Eugen Rieck Jan 23 '12 at 14:55
    
I checked again my database table. When i run this querrys one by one. it works, but in my combination, its not working. insert into tbl_ms(m_name, ng_ID, status) values (1 ,1 ,1)" inserts given data to database from code... –  Hia Jan 23 '12 at 15:11

Make a variable $insertedID = mysql_insert_id(); just before the second $sql variable ! And in the second $sql query replace the $result with $insertedID

It should solve your problem !

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