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The datepicker in jQueryUI renders with a dynamic position. It renders according to its css if there's enough room for it, but if there isn't enough window space it tries to render on screen. I need it to stay put and render in the same place every time, independent of the screen position or other circumstances. How can this be done with the jQueryUI datepicker? Other implementations of jQuery datepicker seem to have ways of doing this, but I don't see a way of doing it for the UI version.

The answer doesn't seem to be just modifying the css:

.ui-datepicker { width: 17em; padding: .2em .2em 0; (trying top/margin-top/position:relative, etc. here...)}

...since when the datepicker is created it dynamically creates top and left in element style. Haven't found a way around this yet. One approach I saw is to give something like this in the beforeShow option:

beforeShow: function(input,inst){
                                inst.dpDiv.css({ 
                                   'top': input.offsetHeight+ 'px', 
                                   'left':(input.offsetWidth - input.width)+ 'px'
                                               });
                                }

This has some effect but the top and left properties are still being dynamically set after this is run when the datepicker renders. It's still trying to render on screen. How do I get it to always render in the same spot? My next step is probably to go into the datepicker guts and start pulling things out. Any ideas?

Note that the answer (for the UI version) is not in:

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6 Answers 6

up vote 30 down vote accepted

Posting this in hopes that it will help others. At least as of v1.8.1 of datepicker, using 'window.DP_jQuery.datepicker' no longer works, because the pointer(right term?) now is named with a timestamp of its creation - so for example it would now be 'window.DP_jQuery_1273700460448'. So now, rather than using the pointer to the datepicker object, refer to it directly like this:

$.extend($.datepicker,{_checkOffset:function(inst,offset,isFixed){return offset}});

Many thanks for the answer below for getting me what I needed.

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No prob - I'm happy somebody else got something out of this, I remember spending an hour or two figuring this out. –  Purrell Jun 2 '10 at 18:49
    
This works a treat! –  Alastair Pitts Oct 5 '10 at 1:58
1  
Nice one, really helped me! For anyone who needs it you can then change the margins of the datepicker like this: .ui-datepicker { margin-left: -361px; } –  bbeckford Oct 6 '10 at 14:20
    
Didn't work for me. –  Sarah Vessels Jun 18 '12 at 17:50
1  
@mutanic - $(document).ready(function () {put the line here}); –  Adi Apr 2 at 9:00

Edit: JaredC gave an updated answer for later versions of jQuery above. Switching accepted answer to that.

Alright, this is a matter of monkeypatching the feature it has of attempting to always render in the viewport since there's no option provided to enable/disable the feature. Luckily it's uncoupled and isolated in one function so we can just go in and override it. The following code completely disables that feature only:

$.extend(window.DP_jQuery.datepicker,{_checkOffset:function(inst,offset,isFixed){return offset}});

_checkOffset is called when it's opening and it does calculations on the offset and returns a new offset if it would otherwise be outside of the view port. This replaces the function body to just pass the original offset right through. Then you can use the beforeShow setting hack and/or the .ui-datepicker css class to put it wherever you want.

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bind focusin after using datepicker change css of datepicker`s widget wish help

$('input.date').datepicker();
$('input.date').focusin(function(){
    $('input.date').datepicker('widget').css({left:"-=127"});
});
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when you already see an answer accepted, whats the point in answering again. Anyway, Welcome to SO! :) –  LGAP Feb 22 '13 at 9:11

In your css file, for example:

#ui-datepicker-div {
  position: absolute !important;
  top: auto !important;
  left: auto !important;
}

Your important settings, whatever they are, will override the inline defaults.

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1  
that is wrong, inline styles always take priority –  hcharge Feb 22 '13 at 17:12
1  
@hcharge actually, they dont, if you use !important inside the CSS style. Only inline styles having !important themselves can then overwrite the !important coming from CSS - jsfiddle.net/NTCP7 –  FC7 Feb 23 '13 at 12:31
    
While !important is a bit of a CSS hack of last resort, this solution works well and is the easiest to implement. –  Neil Laslett Sep 18 '13 at 1:33

here is a more simple solution

var $picker = $( ".myspanclass" ).datepicker(); // span has display: inline-block
$picker.find('.ui-datepicker').css('margin-left', '-50px');
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earlier i tried giving top, left in beforeShow event of datepicker.js, that's get override by _showDatePicker method of jquery-ui-custom.js . But after timeout the window its working fine. Below is the code

beforeShow : function(input,inst) {
  var offset = coxjs.select("#" + dpId).offset();
                        var height = coxjs.select("#" + dpId).height();
                        var width = coxjs.select("#" + dpId).width();
                        window.setTimeout(function () {
                              coxjs.select(inst.dpDiv).css({ top: (offset.top + height - 185) + 'px', left: (offset.left + width + 50) + 'px' })
                        }, 1);
}
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