Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have two textboxes and an add button. When you click add it generates a table below the textboxes with each row having a Remove button. When you click remove it removes the table row but doesn't remove the contents from within the array (at least i don't think).

How do I get it to remove the contents as well? Currently when I click add and then remove a few it messes up my database table by inserting the first one fine but then messing up the rest by either not inserting it, or just adding 1 column.... If i don't remove any it works perfectly fine.

 var $tdRemoveRow = $('<td>').appendTo($tr);
    $('<a>').attr({
        'href': '#',
    'id': 'submit-button'
    }).text("Remove").click(function() {
        $tr.remove();
        return false;
    }).appendTo($tdRemoveRow);

The error must be in the above code somewhere. Does anyone see an issue?

 var locations = [];   
$("#add").click(function() {
    var address = $("#address").val();
    var city = $("#city").val();

    if (address =="" || city =="") {
    $("#locationDeals").text('*Please enter an address and city');
    return false;
} 
else {
codeAddress();
        var $tr = $('<tr>').css({
            'padding': '4px',
            'background-color': '#ddd'
        }).appendTo('#locationDeals');

        var location = [
            address,
            city                
        ];
        locations.push(location);

        for (i = 0; i < 2; i++) {
            var $td = $('<td>').appendTo($tr);
            $('<span>').text(location[i]).appendTo($td);
            $('<input type="hidden">').attr({
                'name': 'loc[' + ctr + '][' + i + ']',
                'value': location[i]
            }).appendTo($td);
        }

        var $tdRemoveRow = $('<td>').appendTo($tr);
        $('<a>').attr({
            'href': '#',
        'id': 'submit-button'
        }).text("Remove").click(function() {
            $tr.remove();
            return false;
        }).appendTo($tdRemoveRow);

        ctr++;

        $("#locationtext").text('');
        return false;
    } 
});
share|improve this question

1 Answer 1

up vote 0 down vote accepted

When removing the row, use .splice to also remove it from the array:

.click(function() {
    $tr.remove();
    locations.splice(locations.indexOf(location), 1);
    return false;
})

Note that this will not behave correctly if location is not inside locations, but with your code this is guaranteed not to be the case.


You shuold decrement the indices in the input names as well (just before removing the tr):

var index = $tr.index();
$("#tableDailyDeals input[type='hidden']").each(function() {
    this.name = this.name.replace(/\[(\d+)\]/, function(str, number) {
      return "[" + (+number > index ? number - 1 : number) + "]";
    });
});
share|improve this answer
    
eurothermwindows.com/ed/inputform.php try it out yourself. i modified the code to your fix. it currently just appends all the results into 1 column on the table generated. look at the daily deals where it asks for special day, name, etc. –  Den Nov 3 '12 at 22:35
    
also, the mysql database yields similar results when i remove the row from the generated html table –  Den Nov 3 '12 at 22:41
    
@pimvb worth mentioning that indexOf is not available in all browsers –  charlietfl Nov 3 '12 at 22:41
    
@Den: This fix should not have an effect on that. It only does something extra when the remove button is clicked. You added the code to the locations part, not the daily deals. Did this not occur without my fix at all? –  pimvdb Nov 3 '12 at 22:59
    
Sorry that was something else. I just fixed that. But your fix doesn't work. I added 3, removed 1, it inputed 2 into the db. 1 of them was correct, the second one only inserted 1 column. No idea why –  Den Nov 3 '12 at 23:02

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.