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There have been variations of this question asked but I haven't found quite what I'm looking to do explained to my satisfaction. Here's what I've got: I have a table that has data dynamically input into it based on the log-in credentials of the user. The data in the table is organized by having a (a) or(b) or (c) etc. in front of the ProductID field so that they are organized together. The client wants the background color of the rows with the (a) to be, let's say red. They want the rows with (b) to be blue. (c) to be green. You see the pattern, I assume. I need to know how to do this in either JavaScript or jQuery but I want to minimize the amount of code to use, if possible. I'm not good with either but I can work with sample code and try to get the right results. Can anyone help? Maybe point me in the right direction?

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First of all, how is the data being dynamically loaded? –  thantos Dec 19 '11 at 21:09
1  
And what html does produce (sample/demo/representative mark up is fine)? –  David Thomas Dec 19 '11 at 21:16

2 Answers 2

up vote 0 down vote accepted

Here's what I actually got to work. It uses jQuery's 'contains'. So it looks to see what the login is for the company and then looks to the row of the table with the ID of 'table1 and sees if there is a match for (A) or (B) or (C) and so on. If so, it gives it the background color. I added the bottom-border attribute because the rows ran together when they had the same background color. Hope this helps someone else.

var tempCustomerName;
var CustomerName;   
tempCustomerName = document.getElementById("CustomerName").innerHTML;
CustomerName = tempCustomerName;
if (CustomerName.indexOf('Test Company') != -1) {
$("#table1 tr td").css("border-bottom", "1px solid #000 !important");
$("#table1 tr:contains('(A)')").css("background", "#66CC99");
$("#table1 tr:contains('(B)')").css("background", "#FFCC33");
$("#table1 tr:contains('(C)')").css("background", "#FFFF33");
$("#table1 tr:contains('(D)')").css("background", "#9999FF");
$("#table1 tr:contains('(E)')").css("background", "#3399FF");
$("#table1 tr:contains('(F)')").css("background", "#FF3333");
$("#table1 tr:contains('(G)')").css("background", "#FF9900");
$("#table1 tr:contains('(H)')").css("background", "#66CC99");
$("#table1 tr:contains('(I)')").css("background", "#FFCC33");
$("#table1 tr:contains('(J)')").css("background", "#FFFF33");
$("#table1 tr:contains('(K)')").css("background", "#9999FF");
$("#table1 tr:contains('(L)')").css("background", "#3399FF");
$("#table1 tr:contains('(M)')").css("background", "#FF3333");
$("#table1 tr:contains('(N)')").css("background", "#FF9900");
$("#table1 tr:contains('(O)')").css("background", "#66CC99");
$("#table1 tr:contains('(P)')").css("background", "#FFCC33");
$("#table1 tr:contains('(Q)')").css("background", "#FFFF33");
$("#table1 tr:contains('(R)')").css("background", "#9999FF");
$("#table1 tr:contains('(S)')").css("background", "#3399FF");
$("#table1 tr:contains('(T)')").css("background", "#FF3333");
$("#table1 tr:contains('(U)')").css("background", "#FF9900");
$("#table1 tr:contains('(V)')").css("background", "#66CC99");
$("#table1 tr:contains('(W)')").css("background", "#FFCC33");
$("#table1 tr:contains('(X)')").css("background", "#FFFF33");
$("#table1 tr:contains('(Y)')").css("background", "#9999FF");
$("#table1 tr:contains('(Z)')").css("background", "#3399FF");
}
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Here is a sample solution with jQuery.

$(document).ready(function () {
    var table = $('#foo'),
        rows = table.find('tr'), cells, background, code;        
    for (var i = 0; i < rows.length; i+=1) {
        cells = $(rows[i]).children('td');
        code = $(cells[0]).text().substr(0, 3);        
        switch (code) {
            case '(A)':
                background = '#e29e6e';
                break;
            case '(B)':
                background = '#f9cf80';
                break;
            case '(C)':
                background = '#ffe8c0';
                break;
            default:
                background = '#95704e';
        }
        $(rows[i]).css('background-color', background);
    }
});

With table:

<table id="foo">
    <tr>
        <td>(A) 10x12 Blue Bag</td>
        <td>Val</td>
    </tr>
    <tr>
        <td>(A) 15x12 Red Bag</td>
        <td>Val</td>
    </tr>
    <tr>
        <td>(B) 10x12 T-shirt</td>
        <td>Val</td>
    </tr>
    <tr>
        <td>(A) 10x12 Yellow Bag</td>
        <td>Val</td>
    </tr>
    <tr>
        <td>(C) 10x12 Shoes</td>
        <td>Val</td>
    </tr>
</table>

In this code firstly you're getting all rows into rows variable. After that you're getting every cell in the current row ($(rows[i])) into cells array. After that lets assume that the column on which depends the row background color is the first one. Then we're checking it's value ($(cells[0]).text()) into the switch and after that painting the current row. Hope that that helps.

//The result here: http://jsfiddle.net/cEY7K/6/

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1  
Thank you for the quick response. I think we're on the right track. However, I'm having trouble targeting the row based on the letter. Maybe I can explain a little better how they have their data. In the first column is a Customer Item Code which has a number like: (A) 10x12 Ziplock Bag. I want to be able to key off of just the (A) part of the code because there are others that have that prefix and I want them all to be the same color. They're already grouped together based on the alphabet. So basically, can I target a part of the Customer Item Code and how would I do that? –  djlender Dec 19 '11 at 21:34
    
Hi Tomalak. I'm struggling to see what you did. All I see is that you removed Minko's signature. I've looked at the code side by side and don't see the difference. Can you tell me if you have a solution for being able to key off of the (A) portion of the text string in the cell? I'm up against the clock on this at my work and really need to figure it out quickly. I'm trying myself but not getting very far. Thank you! –  djlender Dec 21 '11 at 13:41
1  
I hope that it's what you're looking for :-) –  Minko Gechev Dec 21 '11 at 18:36

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