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I have a test case here where I think I covered pretty much every requirement I could find in the docs to enable viewing the grid row form like when selected in this example. I'm probably too deep into this now but I get no javascript errors/warnings at all to follow up...

I should doubleclick a record and get to view the gridrow but it's blackhole-ing me. I could use some fresh eyes on this issue. Nor the pager icon nor doubleclick seems to work.

Can anyone help me on my way? thanks for any help. If the code does error out when you try it I'm in the middle of trying something out, so I will make sure it's syntax checks out when done.

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You included minimized version of jqGrid 4.1.1 in your demo. To allow other to debug the problem you should use jquery.jqGrid.src.js instead. It would be better to use current version (4.4.1) of jqGrid if it's possible. By the way you use beforeShowForm in definitively wrong way as the callback of jqGrid. Additionally you should eliminate the usage of afterInsertRow, replace if to rowattr (see the answer) and use gridview: true (see the answer). –  Oleg Dec 11 '12 at 0:05
    
Afterinsertrow does work fine though, but thanks for the pointers, I'll check them out! –  Glenn Plas Dec 11 '12 at 8:01
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To be able to help you one need debug your application. Could you replace jquery.jqGrid.js (minimized version if jGrid) to jquery.jqGrid.src.js? The file jquery.jqGrid.src.js is the part of zip file which you downloads here. The afterInsertRow work of cause, but it works much slowly. In case of usage afterInsertRow every row will be placed on the page before calling of afterInsertRow. So the position of all existing (not only new one) elements need be recalculated every time. See above the link about gridview: true. –  Oleg Dec 11 '12 at 8:53
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OK! Till tomorrow, pardon, ... Till today. I need some sleep too. We are really in the same time zone and even not so far of each other. –  Oleg Dec 11 '12 at 23:36
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It's good news! I can't see the error in your code, so I suggested to debug it. The best if the problem is already fixed. Congratulations! –  Oleg Dec 13 '12 at 14:02
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2 Answers 2

up vote 1 down vote accepted

First of all I recommend you to replace jquery.jqGrid.js file which is minimized version of jqGrid 4.1.1 to jquery.jqGrid.src.js from the current jqGrid 4.4.1. In general you should always try to reproduce the same problem in jquery.jqGrid.src.js if you have it in jquery.jqGrid.min.js. jqGrid will be permanently changed, many bug fixes will be fixed and new features will be added. For example jqGrid 4.3.3 have fixed wrong calculation of the grid width in Google Chrome version >=19 described here. It was implemented fixes to support current versions of jQuery 1.6 and many many other things. The version jqGrid 4.1.1 is almost two years old, which is really much in the world of web.

Additionally I would recommend you never use afterInsertRow and always use gridview: true. The reason is the performance of the grid. It's very important to understand that working with elements on the page (the DOM elements) should be other organized as with any other variables known in the computer language. The reason is that if you make changes of one element on the page web browser have to recalculate position style etc of all existing elements on the page. At least the web browser have to verify all elements whether there need be changed. One names such procedure web browser reflow. I recommend you to read the answer where I describe the problem more details. In the same way you should try to reduce any loops in loadComplete or gridComplete where you enumerate all rows and make changes in many rows. In the way the performance of the grid will be reduced in many times. If you would use another style of writing the program it will be exactly clean and good to understand as before and it could work much quickly. In the answer for example you could find one real example of such transformation of the code.

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Great stuff, appreciate it. Your reference links to rewriting code more performant are very interesting and made it more clear to me what exactly you where saying what was wrong. –  Glenn Plas Dec 13 '12 at 15:53
    
@GlennPlas: You are welcome! –  Oleg Dec 13 '12 at 16:12
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What your missing is the following code:

onSelectRow: function (id) {
    $(this).jqGrid('viewGridRow', id, viewParam);
},

Where it should be placed:

$grid.jqGrid({

    ... // Some code attribute

    onSelectRow: function (id) {
        $(this).jqGrid('viewGridRow', id, viewParam);
    },

    ... // Some more code attributes
});

Edit your custom javascript event.js. As soon as you have learned how to use it and apply it, select the row. Then, you should be able to pull a pop up or something else that you want to do. It means you are going to need a lot of reading on the specific onSelectRow attribute.

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I've made many things using onSelectRow, this was the only one that didn't fire (I put it under a doubleclick event later). Thanks for the input. –  Glenn Plas Dec 11 '12 at 8:03
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