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I have been searching the internet and the jqGrid documentation, but I can't find anything about the format of a JSON response to a create, update, delete (CRUD) operation. Surely there should be a JSON message that is returned from PHP to jqGrid to tell it whether the CRUD operation was successfull? What is the format of this message and how would you code the javascript for the jqGrid to respond to that message? I'm not a very good programmer, so complete code answers would be greatly appreciated.

Thanks

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1 Answer 1

up vote 1 down vote accepted

You don't need to use a response for create, delete and update.

E.g. if you do an create operation you are calling an "ajax operation" which adds your data into a database.

There are now two possibilites:

  1. Create Operation succeeds
    • just return nothing, means empty string
    • (as long as a 200 response is received by jqgrid, everything is fine)
  2. Create Operation failed
    • just throw an Exception with a modified response header

If jqGrid receives an non 200 response code it shows you an error itself!

try {
    // insert something in your db
    // ok = true means everything fine
    // ok = false means something unpredictable happened
    if (!$ok) {
       throw new Exception('error');
    }

} catch (Exception $e) {

    header("Status: 500 Server Error caused by dbinsert jqgrid");
    var_dump($e->getMessage());
}

Sorry for the code, but it was the fastest I get out of my brain now :) I use jqGrid in combination with the Zend Framework and ZF uses 500 Response codes for Exceptions by default (at least my template)

After a successful update/delete/create you have to refetch the whole jqGrid data.

jQuery("#your_jqgrid_id").jqGrid().trigger('reloadGrid');

There is afaik no other mechanism. (Used it last about 6 months ago, maybe that changed)

If you want to implement your own error/success handling, just define your own message in whatever format you want and handle it in the ajax success function callback.

If you need more code and it is not urgent, just drop me a comment.

One additional advice: Don't expect to understand jqGrid immediatly. Take your time, try some things, play with it. It will take some time before you feeling comfortable with it.

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Thanks that helped. Quite annoying though that inline and form editing does not work consistently. Inline editing displays a proper error message as returned by my php, whereas form editing displays a different message. Still have to figure out and play with the javascript side of this. Also having a problem where mysql sometimes fails when you enter a string into a numeric field and sometimes does not (it then just puts a zero into the numeric field). –  Superdooperhero Sep 20 '11 at 20:54
    
that is a problem. You have to do some checks that the data which is inserted matches yout mysql tables. But this can be done in the ajax calls. e.g. you want only a number in a field, then check if it is a number. If my answer satisfies you, please accept it. If you do not accept answers here on stack overflow, your questions will hardly be answered by anyone. (This is the acception rate you) –  evildead Sep 21 '11 at 11:34

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