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I have two tables :table_a (name ,ID) and table_b(Task).

I have an option to insert values from table_a.name into table_b.Task.

But when I want to delete a value from table_a.name and the value is found in table_b.Task ,then table_b.Task value must be updated with the previous value of the deleted value from table_a.name.

Here is the code:

  $delete=$_POST['deletevalue'];
  if(isset($_POST['_submit'])){

$id=mysql_query("SELECT ID FROM table_a WHERE name='$delete'");


$x=mysql_query("SELECT MAX(ID) FROM table_a WHERE ID<$id");

$task=mysql_query("SELECT name FROM table_a WHERE ID=$x");

$query1=mysql_query("delete from table_a where name='$delete'");

$query2=mysql_query("UPDATE table_b SET Stare='$task' WHERE Task='$delete'");

P.S. ID is auto incremeni

When I use this code and display table_b the value that should be updated is blank. Please help me make it work

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Have you tried to debug anything? What is the actual value of $id, $x and $task inside PHP? –  Passerby Sep 5 '12 at 9:36

1 Answer 1

In php, the function mysql_query returns a resultset object.

To fetch the actual value, you need to fetch the value from the resultset. This should help:

$objId=mysql_query("SELECT ID FROM table_a WHERE name='$delete'");
$rowId=mysql_fetch_row($objId);
$id=$rowId[0];

Similarly, you can get the values for the other instances.

As an aside, you can combine these queries:

$id=mysql_query("SELECT ID FROM table_a WHERE name='$delete'");
$x=mysql_query("SELECT MAX(ID) FROM table_a WHERE ID<$id");
$task=mysql_query("SELECT name FROM table_a WHERE ID=$x");

as

$objTask=mysql_query("SELECT a.name FROM table_a a WHERE a.ID=(SELECT MAX(b.ID) from table_a b WHERE b.ID<(SELECT c.ID FROM table_a c WHERE c.name='$delete'))");
$rowTask=mysql_fetch_row($objTask);
$task=$rowTask[0];

This will fetch the value you require.

EDIT: Update and delete statements don't generate any resultsets as output.

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I used your code and I got this error:Warning: mysql_fetch_row() expects parameter 1 to be resource, boolean given in –  Laura Dogariu Sep 5 '12 at 11:18
    
Can you check if the queries mentioned in the original code actually give some output? –  Karan Punamiya Sep 5 '12 at 14:24
    
ok but how can I display the result? if I use echo it doesn't show anything....if I use mysql_fetch_array I get the same error.I tried to display and other values not that complicated like : Select x from y where ID=5 and I can't get to display it.I am new to php so sorry for the trouble –  Laura Dogariu Sep 6 '12 at 6:40

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