I am using window.devicePixelRatio which works on Andriod and Iphone but does not work in IE 10 Windows mobile. any alternative?

For a IE fallback, both desktop and mobile, use:

window.devicePixelRatio = window.devicePixelRatio || 
                          window.screen.deviceXDPI / window.screen.logicalXDPI;
up vote 7 down vote accepted
window.devicePixelRatio = window.devicePixelRatio || 
Math.round(window.screen.availWidth / document.documentElement.clientWidth)

Got it from http://blogs.windows.com/windows_phone/b/wpdev/archive/2012/11/08/internet-explorer-10-brings-html5-to-windows-phone-8-in-a-big-way.aspx

  • 1
    That fallback seems incorrect because availWith and clientWidth are both in dips and because clientWidth is a dynamic value. The CSS unit for devicePixelRatio is dppx. – ryanve Sep 17 '13 at 20:42
  • 3
    devicePixelRatio could be a fractional value, so Math.round is out of place, but whatever. Just don't use the fallback if you're not sure the window is maximized (which means on all desktop clients). Moreover, document.documentElement.clientWidth doesn't include the scrollbar width on desktop browsers. – MaxArt Mar 20 '14 at 8:49
  • @MaxArt, just edit my answer if you are sure. – user960567 Mar 20 '14 at 9:57
  • @user960567 I think a comment is fine. There are a lot of caveats for fallbacks for devicePixelRatio. – MaxArt Mar 20 '14 at 11:18

I found that on a Nokia Lumia 1230 the property window.devicePixelRatio returns 1 even if the value is clearly incorrect. Testing for window.screen.deviceXDPI / window.screen.logicalXDPI returns 1.52083333. So using window.devicePixelRatio first is not a good idea.

I would suggest the following:

function getDevicePixelRatio (){
    var pixelRatio = 1; // just for safety
    if('deviceXDPI' in screen){ // IE mobile or IE
        pixelRatio = screen.deviceXDPI / screen.logicalXDPI;
    } else if (window.hasOwnProperty('devicePixelRatio')){ // other devices
        pixelRatio = window.devicePixelRatio;
    }
    return   pixelRatio ;
}

For some reason, using the best way to test for the presence of the deviceXDPI in the screen object:

    if(screen.hasOwnProperty('deviceXDPI')) {// IE mobile or IE

does not work on this phone.

Actually, none of the previous answers are correct. All tests below were made on Lumia 520 phones having an LCD screen of 480*800:

WP8/IE Mobile 10:

  • window.devicePixelRatio = undefined
  • window.inner/outerWidth/Height = 320*485
  • screen.[avail]Width/Height = 330*549
  • document.body.clientWidth/Height = 320*486
  • screen.device/logicalXDPI = 140/96 = 1.45833..

Expected devicePixelRatio is 480/320 = 1.5 which can be calculated by:

Math.round(screen.availWidth * screen.deviceXDPI / screen.logicalXDPI / 4) * 4 / document.body.clientWidth

(The rounding is needed to get a valid LCD screen size)

WP8.1/IE Mobile 11:

  • window.devicePixelRatio = 1.42177...
  • window.outerWidth/Height = 338*512
  • window.innerWidth/Height = 320*485
  • screen.[avail]Width/Height = 338*563
  • document.body.clientWidth/Height = 320*486
  • screen.device/logicalXDPI = 136/96 = 1.4166..

Expected devicePixelRatio is (once again) 480/320 = 1.5 which can be calculated by:

Math.round(screen.availWidth * window.devicePixelRatio / 4) * 4 / document.body.clientWidth

So even if window.devicePixelRatio is present it will give you the ratio between DOM screen size and LCD screen size, however, the DOM screen size is larger than the available viewport size. If you want to know the exact ratio between CSS pixels and device pixels, then you have to make the calculations above. Also, these calculations are valid in portrait mode. In landscape mode use screen.availHeight instead (DOM screen dimensions do not change on orientation change on IE Mobile).

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.