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I have a table with table rows, which contain 2 checkboxes in them, one is under the class of student_late, and the other is under the class of student_present.

I want it to do the following:

If the student_present checkbox only is checked, make the tablerow green by adding the class "success".

If the student_present checkbox is checked as well as the student_late checkbox, make the tablerow yellow by adding the class "info".

If no checkbox is checked, make the tablerow red by adding the class "danger".

This is my current CoffeScript:

$(document).ready ->
  return $("tr .student_present").each(->
    if @checked
      $(this).closest("tr").addClass "success"
    else
      $(this).closest("tr").addClass "danger"
  )
  $("tr .student_late").each ->
    $(this).closest("tr").addClass "info"  if @checked

Or for those who prefer JS:

$(document).ready(function() {
  return $("tr .student_present").each(function() {
    if (this.checked) {
      return $(this).closest("tr").addClass("success");
    } else {
      return $(this).closest("tr").addClass("danger");
    }
  });
      return $("tr .student_late").each(function() {
        if (this.checked) {
      return $(this).closest("tr").addClass("info");
    }
  });
});
share|improve this question
    
I think you'll have to add some example markup to this ? –  adeneo Apr 16 '13 at 14:10
    
You have two return statements in your JS ready function. That could be causing some issues. –  cfs Apr 16 '13 at 14:14
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5 Answers 5

up vote 2 down vote accepted

You do not need to use return for document ready. Here is the code that you could use.

$(function() {
    $('table tbody tr').each(function() {
       var $row = $(this);
       var late = $row.find('.student_late')[0].checked;
       var present = $row.find('.student_present')[0].checked;
        if(present && !late) {
            $row.addClass('success');
        } else if(present && late) {
            $row.addClass('info');    
        } else if(!present && !late) {
            $row.addClass('danger');    
        }
    });
});

$(function() is just a shorthand for $(document).ready(function() . Here is JSfiddle of the code working. http://jsfiddle.net/5DUwr/

If you want it to update when you click a checkbox. Use this code

$(function() {
    $('table tbody tr').each(function() {
       var $row = $(this);
       updateRow($row);
    });

    $('table tbody tr input[type="checkbox"]').click(function() {
       var $row = $(this).parents('tr');
       updateRow($row);
    });
});

function updateRow($row) {
       $row.removeClass('success danger info');
       var late = $row.find('.student_late')[0].checked;
       var present = $row.find('.student_present')[0].checked;
        if(present && !late) {
            $row.addClass('success');
        } else if(present && late) {
            $row.addClass('info');    
        } else if(!present && !late) {
            $row.addClass('danger');    
        }   
}

Here is the fiddle http://jsfiddle.net/5DUwr/4/

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Not 100% sure what the problem is here, I've just replicated your code and it seems to work fine (obviously I don't have your HTML, though)... http://jsfiddle.net/VWcXW/

<table>
    <tr>
        <td><input type="checkbox" class="student_present"></input></td>
    </tr>
    <tr>
        <td><input type="checkbox" class="student_present" checked="checked"></input></td>
    </tr>
</table>

$(document).ready(function() {
  return $("tr .student_present").each(function() {
    if (this.checked) {
      return $(this).closest("tr").addClass("success");
    } else {
      return $(this).closest("tr").addClass("error");
    }
  });
      return $("tr .student_late").each(function() {
        if (this.checked) {
               return $(this).closest("tr").addClass("info");
        }
  });
});
share|improve this answer
    
Tried your code, but except for two checkboxes which don't do anything when checked, I can't see anything else –  teenOmar Apr 16 '13 at 14:16
    
Oh, so you're wanting checked events? You made absolutely no mention of that in your question. –  Chris Dixon Apr 16 '13 at 14:17
    
Oh, no sorry I don't need it to change when the actual event is called. Just when the checkbox is already checked –  teenOmar Apr 16 '13 at 14:19
    
On that fiddle, one is already checked, and the class of the parent <tr> on that is "success", the <tr> of the one that isn't checked is "error". jsfiddle.net/VWcXW/1 for the colours. –  Chris Dixon Apr 16 '13 at 14:21
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It works fine for me: http://jsfiddle.net/Ba5qg/

I mean, it's executed once ! It's not binding click event to change the background-color... That you could change with:

$("tr .student_present").on('click', function () {
    if ($(this).is(':checked')) {
        $(this).closest('tr').addClass('success');
        [...]
    }
});

Fiddle code: HTML

<table>
    <tr>
        <td>Paul</td>
        <td><input type='checkbox' name='student_present' class='student_present' checked /></td>
        <td><input type='checkbox' name='student_late' class='student_late' /></td>
    </tr>
    <tr>
        <td>John</td>
        <td><input type='checkbox' name='student_present' class='student_present' /></td>
        <td><input type='checkbox' name='student_late' class='student_late' checked /></td>
    </tr>
</table>

CSS

.success {
    background: green;
}

.error {
    background: red;
}

.info {
    background: yellow;
}

JS You can remove your return statement here !

$(document).ready(function() {
    $("tr .student_present").each(function() {
        if (this.checked) {
            return $(this).closest("tr").addClass("success");
        } else {
            return $(this).closest("tr").addClass("error");
        }
    });
    $("tr .student_late").each(function() {
        if (this.checked) {
            return $(this).closest("tr").addClass("info");
        }
    });
});
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you can add unique ids for your checkboxes i.e. 'chk_001' and eqivalent numbers in the ids of the tr/td tags. Then looping through the checkboxes your can grab the rows you want to change. When you use the same numbers in the tr/td ids (like tr_001 or td_001) you can set the desired classes/styles using getElementById wherever you find the checkbox checked.

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I think this could be achieved easier(Working fiddle):

HTML

<table>
    <tr>
        <td><input class="student_present" type="checkbox" checked="checked">Present</td>
        <td><input class="student_late" type="checkbox">Late</td>
   </tr>
   <tr>
        <td><input class="student_present" type="checkbox">Present</td>
        <td><input class="student_late" type="checkbox" checked="checked">Late</td>
   </tr>
</table>

CSS

.success {
    background: green;
}

.error {
    background: red;
}

.info{
    background: yellow;
}

JS

$(document).ready(function() {
    $(".student_present").closest('tr').addClass('error');
    $(".student_present:checked").closest('tr').toggleClass('success error');
    $(".student_late:checked").closest('tr').addClass(function() {
        if($('.student_present', $(this).closest('tr')).is(':checked')) return 'info';
        else return '';
    });
});
share|improve this answer
    
The problem with your answer is that the background turns yellow even if only the late checkbox is checked. But the late checkbox can only be checked if the present checkbox is already checked –  teenOmar Apr 16 '13 at 14:25
    
Ah missed that, I'll fix it. –  Marcel Gwerder Apr 16 '13 at 14:26
    
Should be ok now. –  Marcel Gwerder Apr 16 '13 at 14:33
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