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I'm currently coding a script in javascript in order to display images into a web page. These images are loaded with an ajax request and a css style is directly applied from jquery. The script works with firefox/Opera/IE, but Google Chrome doesn't display correctly the CSS.

When I debug the HTML page with Google Chrome, the code is correct and the images contain the right css style. If I uncheck and check an attribute in the css editor panel, chrome refreshes the style and displays correctly all the elements.

The code is visible below

function displayCroppedFace(faceData, parentElem) {
    var randomid = Math.floor(Math.random() * Math.pow(2, 32));
    $("#" + parentElem).append("<div id=\"faceImg_border_" + randomid + "\" />");
    $("#faceImg_border_" + randomid).append("<div id=\"faceImg" + randomid + "\" />");
    $("#faceImg" + randomid).attr('class','cropped_model');
    $('#faceImg' + randomid).append('<img id="faceImg' + randomid + '_img" src="' + faceData.image_url + '"/>');
    $('#faceImg' + randomid + '_img').load(function() {
        crop($(this), faceData.x, faceData.y, faceData.w, faceData.h);
    });
}

function crop(imgObj, x, y, width, height) {
    var originalWidth = imgObj.width();
    var originalHeight = imgObj.height();
    var scale_x = imgObj.parent().width() / (width + 20);
    var scale_y = imgObj.parent().height() / (height + 20);


    imgObj.css({
        'position' : 'absolute',
        'display' : 'block',
        'left' : (-x * scale_x - 5) + 'px',
        'top' : (-y * scale_y - 5) + 'px',
        'width' : (originalWidth * scale_x + 10) + 'px',
        'height' : (originalHeight * scale_y + 10) + 'px',
        'z-index' : '10'
    });
}

faceData is a javascript object that contains an image url and four coordinates (x, y, w, h).

Is anybody know what is the problem with Google Chrome and how to do in order to fix this error?

thanks

share|improve this question
    
can you paste your stuff. –  Konga Raju Oct 30 '12 at 9:24
    
Inside your crop function, can you do a console.log(width, height) and see if it is zero? –  Salman A Oct 30 '12 at 10:00
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2 Answers

I guess you are using POST

$.ajax({
type: "GET",
url: "url",
});

Try using "GET"

share|improve this answer
    
I am already using GET. The ajax request returns a JSON that contains an url of an image. This image is loaded from the url when it's displayed. –  reevolt Oct 30 '12 at 9:17
    
Then we have to see the code if you can provide here. –  Jai Oct 30 '12 at 9:42
    
the javascript code is now visible at the top of the page. –  reevolt Oct 30 '12 at 9:51
    
well need to see ajax function too! –  Jai Oct 30 '12 at 9:57
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Problem solved! The error was in CSS. thanks for your responses

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