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I try next script:

// Insert data into mysql 

$qry="INSERT INTO $tbl_name1 (ID, REFERENCE, CODE, NAME) VALUES (UUID(), '$REFERENCE', '$CODE', '$NAME')";
$result=mysql_query($qry);

$qry2="INSERT INTO $tbl_name2 (PRODUCT) VALUES ('$ID')"; <--- Here is a problem
$result=mysql_query($qry2)

I do not know how two insert the same UUID in two tables simultanoiusly. Please help me! I will appreciate much your support!

DONE!!! THE WORKING SCRIPT:

$q = "SELECT UUID() AS uid";
$res = mysql_query($q) or die('q error: '.mysql_error());
$row = mysql_fetch_assoc($res);

// Insert data into mysql 
$qry="INSERT INTO $tbl_name1 (ID, REFERENCE, CODE, NAME) VALUES ('".$row['uid']."', '$REFERENCE', '$CODE', '$NAME')";
$result=mysql_query($qry) or die('err 034r '.mysql_error());

$qry2="INSERT INTO $tbl_name2 (PRODUCT) VALUES ('".$row['uid']."')";
$result=mysql_query($qry2) or die('gg2345  '.mysql_error());
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why are you not using an auto incremented id - like every one else does? –  Dagon Aug 29 '12 at 10:10

2 Answers 2

up vote 2 down vote accepted

Just do SELECT UUID() before you send the INSERTs and put the values into the statements in PHP. Something like this (untested):

$result = mysql_query("SELECT UUID() AS UUID") or die('SQL error: ' . mysql_error());
$row = mysql_fetch_assoc($result);
$UUID = $row["UUID"];

$qry="INSERT INTO $tbl_name1 (ID, REFERENCE, CODE, NAME) VALUES ('$UUID', '$REFERENCE',   '$CODE', '$NAME')";
$result=mysql_query($qry);

$qry2="INSERT INTO $tbl_name2 (PRODUCT) VALUES ('$UUID ')"; <--- Here is a problem
$result=mysql_query($qry2)

Another way would be the use of a user-defined variable (see SQL Fiddle):

SET @UUID = (SELECT UUID() AS UUID);
INSERT INTO test1 VALUES(@UUID, "foo");
INSERT INTO test1 VALUES(@UUID, "bar");
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TBK: I receive an error to your row $UUID = row["UUID"]; –  Sergiu Costas Aug 29 '12 at 10:24
    
The problem that UUID is automatically associated during INSERT... I do not think it can be selected before INSERT –  Sergiu Costas Aug 29 '12 at 10:30
    
@SergiuCostas: SELECT UUID() is a valid SQL statement in MySQL. It should give you one UUID which you can use for your inserts. Another solution would be a user defined variable - see @UUID in my example. This would be my preferred way, since it would not require you to access the UUID from PHP at any time. –  tbl Aug 29 '12 at 10:48
    
TBK - your answer was close to the right way.... The working script is next: $q = "SELECT UUID() AS uid"; $res = mysql_query($q) or die('q error: '.mysql_error()); $row = mysql_fetch_assoc($res); // Insert data into mysql $qry="INSERT INTO $tbl_name1 (ID, REFERENCE, CODE, NAME) VALUES ('".$row['uid']."', '$REFERENCE', '$CODE', '$NAME')"; $result=mysql_query($qry) or die('err 034r '.mysql_error()); $qry2="INSERT INTO $tbl_name2 (PRODUCT) VALUES ('".$row['uid']."')"; $result=mysql_query($qry2) or die('gg2345 '.mysql_error()); –  Sergiu Costas Aug 29 '12 at 11:37
    
Great, congratulations on getting it working. I fixed the answer, since I had a typo in it (missed a $ in front of row, it must be $UUID = $row["UUID"]). –  tbl Aug 29 '12 at 11:41

Assuming the ID is the table Unique Index you could add before $qry2:

$ID = mysql_insert_id();
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