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I have a basic table with two columns: name and value. I'd like to shade each row in the table an appropriate percentage of the width based on the size of the value (to essentially create a sideways histogram!). I can write code to calculate the appropriate percentage to set, but I can't figure out the CSS to actually shade each row appropriately. It seems like the whole row can be shaded, but not a percentage. Is that true?

FWIW, I'm using Twitter Bootstrap and I can use jQuery too if need be. This is only running on Chrome so CSS3 & Webkit only is fine! Here's the HTML.

<table class="table">
  <tbody class="lead">              
    <tr> 
      <td>
        Joe
      </td>
      <td>
        10
      </td>
    </tr>              
    <tr> 
      <td>
        Jane
      </td>
      <td>
        20 
      </td>
    </tr>              
    <tr> 
      <td>
        Jim
      </td>
      <td>
        2
      </td>
    </tr>
  </tbody>
</table>

Any tips on how to make this happen? Hope this question makes sense.

share|improve this question
    
Would it work if the solution is CSS3-specific? –  Chris Aug 18 '12 at 18:40
    
You should look at gradients, Im not sure exactly how, but I know that in gradients you can do this, and then use jquery to modify the .attr() –  Brian Wheeler Aug 18 '12 at 18:43
    
CSS3 is totally fine, yep! –  tonic Aug 18 '12 at 18:53

2 Answers 2

up vote 13 down vote accepted

You could use linear-gradients.

If the percentage is 40%:

table{
    background: -webkit-gradient(linear, left top, right top, color-stop(40%,#F00), color-stop(40%,#00F));
    background: -moz-linear-gradient(left center, #F00 40%, #00F 40%);
    background: -o-linear-gradient(left, #F00 40%, #00F 40%);
    background: linear-gradient(to right, #F00 40%, #00F 40%);
}

Demo

So, in JavaScript,

var percentage=40,
    col1="#F00",
    col2="#00F";
var t=document.getElementById('table');
t.style.background = "-webkit-gradient(linear, left top,right top, color-stop("+percentage+"%,"+col1+"), color-stop("+percentage+"%,"+col2+"))";
t.style.background = "-moz-linear-gradient(left center,"+col1+" "+percentage+"%, "+col2+" "+percentage+"%)";
t.style.background = "-o-linear-gradient(left,"+col1+" "+percentage+"%, "+col2+" "+percentage+"%)";
t.style.background = "linear-gradient(to right,"+col1+" "+percentage+"%, "+col2+" "+percentage+"%)";

Demo


If you want to apply this to each row differently:

var col1="#F00",
    col2="#00F";
var els=document.getElementById('table').getElementsByTagName('tr');
for (var i=0; i<els.length; i++) {
    var percentage = Number(els[i].getElementsByTagName('td')[1].firstChild.nodeValue);
    els[i].style.background = "-webkit-gradient(linear, left top,right top, color-stop("+percentage+"%,"+col1+"), color-stop("+percentage+"%,"+col2+"))";
    els[i].style.background = "-moz-linear-gradient(left center,"+col1+" "+percentage+"%, "+col2+" "+percentage+"%)" ;
    els[i].style.background = "-o-linear-gradient(left,"+col1+" "+percentage+"%, "+col2+" "+percentage+"%)";
    els[i].style.background = "linear-gradient(to right,"+col1+" "+percentage+"%, "+col2+" "+percentage+"%)" ;
}

The problem is that setting the background to the tr works well on Firefox and Opera, but on Chrome the gradient is applied to each cell.

This problem can be fixed adding this code (see http://stackoverflow.com/a/10515894):

#table td {display: inline-block;}

Demo

share|improve this answer
    
thanks! however, this shades the entire table. each row needs a different percentage with shaded. how can i adapt this code to do that? –  tonic Aug 18 '12 at 18:53
    
@tonic, just select a tr instead of the whole table. –  Chris Aug 18 '12 at 19:08
    
thanks for the edit @oriol! in the edit you added, i noticed the whole row isn't shaded in the jsfiddle, but just the name cells. is it possible to shade the entire row a certain percent? –  tonic Aug 18 '12 at 19:11
    
@tonic Check my answer for a non-gradient solution. –  Chris Aug 18 '12 at 19:40
    
I'm applying this to an existing table, but when I get to the four lines that begin with els[i].style.background part, IE keeps saying it's an "Invalid Argument". Firefox and Chrome don't seem to have a problem with it (as expected). Anyone have suggestions? –  ADT Dec 19 at 17:57

No need to use gradients. First, create a simple image file with the color that you want to shade your row with. In my case, I created a .png which is fully colored black (black.png in the example below). Now, just use the background-image and background-size properties to color the appropriate part of the row.

Example, HTML:

<table cellspacing = "0px">
    <tr class = "row"><td>Hello Hello</td><td>Bye Bye</td></tr>
</table>

CSS:

.row {
    background-color: white; /*fallback color*/
    background-image: url(black.png);
    background-size: 75% 100%; /*your percentage is the first one (width), second one (100%) is for height*/
    background-repeat: no-repeat;
    color: rgb(0, 140, 200);
    font-weight: bold;
}

Result:

Result

Here's a simple snippet on how to automate this for your example:

var tbl = document.getElementsByClassName("table")[0];
var rws = tbl.rows;
for(var i = 0; i < rws.length; i ++) {
    var percentage = parseInt(rws[i].getElementsByTagName("td")[1].innerHTML, 10);
    rws[i].style.backgroundImage = "black.png";
    rws[i].style.backgroundSize = percentage + "%" + " 100%";
    rws[i].style.backgroundRepeat = "no-repeat";
    rws[i].style.color = "rgb(0, 140, 200)";
}

Little demo: little link.

I hope that helped!

share|improve this answer
    
this is really cool. for some reason though, each cell is shaded 75% of the way (in both columns). unlike your screenshot, it's not spanning the entire width. i'll continue to poke around though since your example seems to work ! –  tonic Aug 18 '12 at 19:58
    
@tonic You're using Chrome, right? –  Chris Aug 18 '12 at 20:03
    
@tonic That's a Chrome's bug which I fixed in the last edit of my answer. –  Oriol Aug 18 '12 at 20:06
    
@tonic You need to add position: relative; display: block; to the rows for this to work with Chrome. This is a known issue when using background-image. Refer to my demo, which works on Chrome, too. –  Chris Aug 18 '12 at 20:07
    
that's correct, chrome –  tonic Aug 18 '12 at 20:07

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