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I use ajax to call a php file to do the sql query. When the user press a button, the php file does some queries including one select and two insert. It works fine when the user press the button for the first time. In the second time, only the select query and the first insert query works, the second insert query does not insert anything. I have checked the query, it is all fine. It seems by some reason the second insert query is not executed.

$itemquery = "insert into `Items` values (...)";
if($affected_rows = $db->exec($itemquery) ){
    ...
    $pickupquery = "insert into `Pickup` values (...)";
    if ($affected_rows2 = $db->exec($pickupquery)) {
        echo "success";
    }
    else echo "No pickup is inserted";
}

For the first time I press the button, both query works fine (outputs "success"). Items are inserted into tables. But the second time I press it, only the $itemquery works, the $pickupquery does not insert anything (outputs "No pickup is inserted"). The $pickupquery itself has no problems, but I don't know why it just not work after the first press.

Any ideas?

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closed as too localized by andrewsi, Rob Mensching, tkanzakic, Soner Gönül, nvoigt May 27 '13 at 6:46

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1  
Have you inspected your database directly (using phpMyAdmin, mysql CLI, etc...) after running the first query? –  luiges90 Dec 27 '12 at 1:37
1  
You might get a MySQL error the 2nd time –  Michel Feldheim Dec 27 '12 at 1:42
1  
The Pickup table may have a constraint that fails the second time with the same values. –  Ja͢ck Dec 27 '12 at 1:43
    
Of course, and the $pickupquery won't insert anything after the first press, with no errors, just not inserting anything... –  Kyle Xie Dec 27 '12 at 1:44
1  
Sorry bros, yes, because I set one attribute to be unique but the second time it inserts with the same value which blocks the insert. It is a stupid problem. Thank you all. –  Kyle Xie Dec 27 '12 at 1:51

4 Answers 4

Your SQL syntax is incorrect. It should be

INSERT INTO `Items` (COL_NAMES) VALUES (a, b,...)

for example

INSERT INTO `Items` (`name`, `price`) VALUES ('Beans', 0.40);
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4  
The column names, though advisable, is not required. –  Ja͢ck Dec 27 '12 at 1:42

You could also insert into SQL like this (Though I'm not sure if this is better or worse, but it is easier):

INSERT INTO `Items` SET name='Beans', price='0.40'
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I do not think we have enough information to answer this. It could be a javascript issue, it could be a unique index on the db that prevents the inserting or the same values the second time etc.

To start debugging it you should use Firebug. With Firebug you should copy the link that gets called with Ajax and try to access it directly from the browser. Refresh the page afterwards to see if you get any errors, this should simulate pressing the button 2 times with Ajax.

Check with difebug that the ajax calls are calling the correct page and that it calls it 2 times (1 for each press of the button).

Then check to see if there are any errors in the error files defined for that host.

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up vote 0 down vote accepted

It was a stupid mistake that I set on attribute to unique in the database, and I tried to insert a duplicated value, which caused the problem. There was not any problem for the code.

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