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I have a PHP script that inserts rows into a table based on selected rows from a MySQL array.

the code to insert the rows into the new table is:

$sql="insert into loaddetails (CaseNo,GrossMass,CaseStatus,Customer)
select `case no`,`gross mass`,`case status`, customer from
availablestock where `case no` = '$val'";

I want to assign all the inserted rows the same ID so that multiple stock items share the same LoadID.

How can I modify my code to do this so all the inserted records share the same ID and the ID is unique to the load.

I thought I could use the code below to get the max id and increment it by one

SELECT max(loadid)+1 from loaddetails

How can I acheive this? I realise my PHP code is not perfect but it is functional, I just need to add the functionality to allow for the rows to be inserted with a common ID to produce a result as below:

enter image description here

Thanks in advance for the assistance.

Regards, Ryan Smith

Complete code is:

<?php
    mysql_connect("localhost", "user", "password")or die("cannot connect");    
    mysql_select_db("databasename")or die("cannot select DB");
    $sql="SELECT `case no`,`customer`,`gross mass`, `case status` from availablestock where transporttypename= 'localpmb'";
    $result=mysql_query($sql);
    $count=mysql_num_rows($result);
?>
<table border=1>
    <tr>
        <td>
            <form name="form1" method="post">
                <table>
                    <tr>
                        <td>#</td>
                        <td>Case Number</td>
                        <td>Customer</td>    
                        <td>Weight</td> 
                        <td>Status</td> 
                    </tr>
<?php
    while($rows=mysql_fetch_array($result)){
?>
                    <tr>
                        <td><input type="checkbox" name=check[]  value="<?php echo $rows['case no']; ?>"></td>
                        <td><?php echo $rows['case no']; ?></td>
                        <td><?php echo $rows['customer']; ?></td>
                        <td><?php echo $rows['gross mass']; ?></td>
                        <td><?php echo $rows['case status']; ?></td>
                    </tr>                                   

<?php
    }
?>
                    <tr>
                        <td><input name="planlocalpmb" type="submit" id="planlocalpmb" value="planlocalpmb"></td>
                    </tr>
                    <?php



                            $check=$_POST['check'];

                        if($_REQUEST['planlocalpmb']=='planlocalpmb'){
 {
                            $sql="insert into loaddetails (CaseNo,GrossMass,CaseStatus,Customer) select `case no`,`gross mass`,`case status`, customer from availablestock where `case no` = '$val'";

                            foreach($check as $key=>$value)
                            {
                            $sql="insert into loaddetails (CaseNo,GrossMass,CaseStatus,Customer) select `case no`,`gross mass`,`case status`, customer from availablestock where `case no` = '$value'";
                            $final=mysql_query($sql);
                            if($final)
                            {
                            echo "<meta http-equiv=\"refresh\" content=\"0;URL=php.php\">";
                            }                                            } 
                                }
                                }
                    // Check if delete button active, start this



// if successful redirect to php.php

mysql_close();
?>
</table>
</form>
</td>
</tr>
</table>
share|improve this question
    
do u want to assign same load id to all rows?? or what is common thing with same load ID?? –  diEcho Oct 3 '11 at 7:04
    
Hi, for all selected rows from the array, when inserted into the new table should have the same loadid. loadid is the common link so one loadid will have multiple cases on it. the loadid represents a physical truck and the cases the stock on the truck. Thanks –  Smudger Oct 3 '11 at 7:30
add comment

2 Answers

up vote 0 down vote accepted
INSERT INTO loaddetails (LoadID, CaseNo, GrossMass, CaseStatus, Customer)
SELECT (SELECT MAX(loadid)+1 FROM loaddetails) LoadID, CaseNo, GrossMass, CaseStatus, Customer
FROM availablestock WHERE CaseNo = '$val'

Make sure LoadID has an index!

You may need to lock the table first. I'm not sure.

I didn't check the rest of your code, but I do notice you have an SQL Injection vulnerability there.

share|improve this answer
    
Hi All, @Ariel. Thanks for the reply and advice. The query you gave me works 100% correctly in PHPMyAdmin. when I insert the query into my PHP code, it no longer works. If I replace the variable in the PHP Code, the rows are inserted into the mysql table however the LoadID field increments by 1 for each row where in mysql all rows are assigned the same ID. Any ideas on how to modify the PHP code so it works? Thanks –  Smudger Oct 3 '11 at 6:50
    
Are you sure you are not doing this insert in a loop? Each cycle through the loop will increment by one. –  Ariel Oct 3 '11 at 7:13
    
Hi All, @Ariel. To be honest I am not entirely sure as I am a real novice however I do think it is being processed in the loop. With the MySQL script you privided, I have got the PHP script to execute the MySQL insert statement. The output however in the MySQL table does not contain a common ID but an incremented ID. I need all the inserted rows to share the same ID. Please advise where I am going wrong. Thanks, Ryan –  Smudger Oct 3 '11 at 7:37
    
@Smudger I apparently didn't notice your last message, so hopefully you got everything working. –  Ariel Jul 12 '12 at 22:16
    
working 100%, thanks Ariel. –  Smudger Jul 13 '12 at 6:42
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You can also try:

INSERT INTO loaddetails 
  (LoadID, CaseNo, GrossMass, CaseStatus, Customer)
SELECT  m.NewLoadId, CaseNo, GrossMass, CaseStatus, Customer
FROM availablestock 
  CROSS JOIN
    ( SELECT MAX(loadid)+1 AS NewLoadId 
      FROM loaddetails
    ) AS m
WHERE CaseNo = '$val'
share|improve this answer
    
Hi All, ypercube. I did try as you advise and it does work from the PHP Script. the issue however is that the output in the mysql table does not have a common id for all inserted rows. As per @Ariel above, this is most likely a result of the loop. How can I modify the PHP to process all rows with the same loadid. Thanks for the help. –  Smudger Oct 3 '11 at 7:50
    
What loop? My answer and @Ariel's one has no loops... –  ypercube Oct 3 '11 at 11:29
    
Ah, you mean that you have many $val values and you process each one with a separate call. –  ypercube Oct 3 '11 at 11:36
    
Hi, I think you are right. How can I acheive my gols of assigning one common id to all inserted rows from $val? –  Smudger Oct 3 '11 at 13:00
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