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Alternative to CSS3 < hr > tag of simple styles with fade out edges if this do not work and a child statement or else statement for standard < hr > tag underneath the hr style as code below.

There is CSS3 < hr > tag of simple styles with fade out edges see a link http://css-tricks.com/simple-styles-for-horizontal-rules.

Is there a fallback if this < hr > simple styles with fade out edges do not work and a standard < hr > kink in instead? I'm using jQuery1.6.4 Please advise?

 hr { border: 0; height: 1px; 
 background-image: -webkit-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0));       
 background-image: -moz-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
 background-image: -ms-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
 background-image: -o-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
 width:100%; 
 }

 .hr { border: 0; height: 1px; 
 background-image: -webkit-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0));       
 background-image: -moz-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
 background-image: -ms-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
 background-image: -o-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
 }
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1 Answer 1

up vote 1 down vote accepted

Maybe you are better off using hr that way if you are worried about a fall back, but you can probably replace the hr with a div with an image inside or as a background if the browser doesn't support css gradients, to be able to detect such feature you can use Modernizr.

once you have modernizr on your html you can test with jQuery if css gradients are available to your client, I normally do it like this, but there might be a better way of doing this using Modernizr js API.

Please let me know if it works for you, and good luck!

HTML

<hr>
<hr>
<hr>
<hr>

CSS

hr {
    border: 0; height: 1px; 
    background-image: -webkit-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0));       
    background-image: -moz-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
    background-image: -ms-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
    background-image: -o-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0));
    background-image: linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0));
    width:100%; 
}

.hr {
    border: 0; height: 1px; 
    background-image: -webkit-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0));       
    background-image: -moz-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
    background-image: -ms-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0)); 
    background-image: -o-linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0));
    background-image: linear-gradient(left, rgba(0,0,0,0), rgba(0,0,0,0.75), rgba(0,0,0,0));
}

.no-js .glossy,
.no-cssgradients .glossy {
    background: url("images/glossybutton.png");
}

.cssgradients .glossy {
    background-image: linear-gradient(top, #555, #333);
}
​

JS

(function($){
if( $('.cssgradients').length == 0 ){
    // no css gradients
    $('hr').each(function(index){
        // replace for image maybe?
    });
}
}(jQuery);

share|improve this answer
    
Thank you r roche and that is brillant. I accept this as a solution. –  Irishgirl May 11 '12 at 19:36
    
Glad this worked out for you @Irishgirl –  rroche May 11 '12 at 21:09
1  
@rroche. You have a small typo in your jsfiddle that will keep it from working correctly. No biggie... You just mis-spelled the '.length' method as '.lenght'. Corrected jsfiddle example is now at jsfiddle.net/HRba8/5. –  Epiphany Nov 18 '12 at 16:55
    
thanks @Epiphany I updated the link and added code to the answer. –  rroche Nov 19 '12 at 9:35

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