4

How can I add new data to old ones without duplicate my tables?

logic

  1. I select option, data returns in table
  2. I select different option, data adds to old ones

Issue

When I do second part of my logic it add new table as well, meaning based on how many times i change my selected option it adds new tables.

Screenshot

when i select my first option having 1 table

one

when i select my second option having 2 tables

two

What I want

What I want is when i select my second/third etc. option image 2, only have 1 table include data of all those past and current options and not to make 1 table for each of them.

Code

HTML

<div class="mt-20 options"></div>

JavaScript

<script>
    $(function(){
        $('select[name="options"]').on('change', function() {
            var addressID = $(this).val();
            if(addressID) {
                $.ajax({
                    url: '{{ url('admin/getoptions') }}/'+encodeURI(addressID),
                    type: "GET",
                    dataType: "json",
                    success:function(data) {
                        // $('div.options').empty();

                        $('div.options').append('<div class="mb-20"><h4>Check mark your needed options only</h4></div>'+
                          '<table id="table" class="table table-bordered table-hover table-responsive">'+
                          '<thead>'+
                            '<th width="50" class="text-center">Check</th>'+
                            '<th class="text-center">Title</th>'+
                            '<th class="text-center">Price</th>'+
                          '</thead>'+
                          '<tbody></tbody>'+
                          '</table>');

                        // 2. Loop through all entries
                        var keys = ['title'];
                        data.forEach(function(row) {
                          var $row = $('<tr />');

                          $row.append('<td class="text-center" width="50"><label class="switch switch-small"><input type="checkbox" /><span><input class="form-control" type="text" name="optionID[]" value="'+row['id']+'"></span></label></td>');
                          keys.forEach(function(key) {
                            $row.append('<td>' + row[key] + '</td>');
                          });
                          $row.append('<td class="text-center"><input class="form-control" placeholder="if fill this price, the price will add to product price when user select it." type="number" name="optionPRICE[]"></td>');

                          $('#table tbody').append($row);
                        });
                    }
                });
            }else{
                $('div.options').empty();
            }
        });
    });
</script>

Any idea?

  • Post your HTML also – ellipsis Jan 12 at 12:36
  • @AshayMandwarya updated, all happens in append html is only a div tag – mafortis Jan 12 at 12:37
  • Well, doesn't the append argument show that you willingly add a table? If you don't want that, then why do you do it there? – trincot Jan 12 at 12:38
  • If you don't want a table for every option, just remove the <table> element from the HTML you append...? Create a static table which all rows get appended to. – Rory McCrossan Jan 12 at 12:39
  • @trincot the thing is i don't want to have empty table in my view before selecting any option thats why i load table structure in append. – mafortis Jan 12 at 12:44
1

Here are the steps to take:

  1. Remove the $('div.options').append( ... ) call
  2. Add the following HTML to your static div element, and hide it with style="display:none":

    <div class="mt-20 options" style="display:none">
        <div class="mb-20"><h4>Check mark your needed options only</h4></div>
        <table id="table" class="table table-bordered table-hover table-responsive">
            <thead>
                <th width="50" class="text-center">Check</th>
                <th class="text-center">Title</th>
                <th class="text-center">Price</th>
            </thead>
            <tbody>
            </tbody>
        </table>
    </div>
    
  3. Add code after the data.forEach loop, to unhide the div:

        $('#table tbody').append($row);
    }); // end of loop
    $("div.options").show();  // <---
    
  • this actually works, just a tiny issue in appending. imagine i select option color data appends then i select option size data appends so far so good, but if again i select color by mistake or not. it shows color data again, this basically no have issue till the moment that i want to send those data in backend, that time filtering same id's is hard. is there anyway we avoid this duplicated appends? – mafortis Jan 12 at 12:57
  • 1
    Sure: you should then keep a global variable containing the keys of what should be unique. You can use a plain object (like var keys = {}) and add as property (keys[row[key]] = 1) as you go. When row[key] in keys then you don't add the row. NB: this really is a different question though. – trincot Jan 12 at 13:00
  • if you think this issue isn't relevant to this question i can make new question, would you then help fixing this? or you can just help me here for it? – mafortis Jan 12 at 13:01
  • 1
    A new question would be appropriate, and chances are that someone else will answer it within minutes. Just do us one favour: first search on this site if a similar question has not been asked before. – trincot Jan 12 at 13:02
  • 1
    This could be useful: stackoverflow.com/questions/20742775/… although the answer is not really that good :/ I could not really find a good answer to similar questions, so I would say: ... go for it. – trincot Jan 12 at 13:08
1

First you need to build your table once. But you are appending new tables every success call. That happens in the line:

$('div.options').append('<div class="mb-20">...

That append is actually creating the table and appending it to the div.

Instead you should create the table only one time before the success callback, then just update it with the new data.

$(function(){
    var updateTable =  function() {
        var addressID = $(this).val();
        var data = JSON.parse(addressID);
        
        // show the table div
        $('div.options').show();

        // clear old rows
        $('tbody', myTable).empty();

        // 2. Loop through all entries
        var keys = ['title'];
        data.forEach(function(row) {
          var $row = $('<tr />');
          $row.append('<td class="text-center" width="50"><label class="switch switch-small"><input type="checkbox" /><span><input class="form-control" type="text" name="optionID[]" value="'+row+'"></span></label></td>');

          keys.forEach(function(key) {
            $row.append('<td>' + row[key] + '</td>');
          });
          $row.append('<td class="text-center"><input class="form-control" placeholder="if fill this price, the price will add to product price when user select it." type="number" name="optionPRICE[]"></td>');

          $('tbody', myTable).append($row);
        });
    };
    
    // create and save table for later manipulations
    var myTable = $('<table class="table table-bordered table-hover table-responsive">'+
                      '<thead>'+
                        '<th width="50" class="text-center">Check</th>'+
                        '<th class="text-center">Title</th>'+
                        '<th class="text-center">Price</th>'+
                      '</thead>'+
                      '<tbody></tbody>'+
                      '</table>');
   // append h4
   $('div.options').append('<div class="mb-20"><h4>Check mark your needed options only</h4></div>');
   // append the table
   $('div.options').append(myTable);
   // select event
   $('select[name="options"]').on('change', updateTable);
   updateTable.call($('select[name="options"]').first());
});
{"d":4,"e":5,"f": 6}
<script src="https://cdnjs.cloudflare.com/ajax/libs/jquery/3.3.1/jquery.min.js"></script>
<select name="options">
  <option value="[1,2,3]">Data1</option>
  <option value="[4,5,6]">Data2</option>
</select>
<div class="options"></div>

  • no this shows empty table in my view before i select any option, also refresh data when i select another option – mafortis Jan 12 at 12:49
  • check code updates ... I was still coding ;) – rafaelcastrocouto Jan 12 at 12:50
  • same as before. – mafortis Jan 12 at 12:53
  • 1
    anyway it solved now thank you so much, i will vote-up your answer. and i have new one related to this question maybe you can help there as well? stackoverflow.com/questions/54159941/… – mafortis Jan 12 at 13:21
  • 1
    great! hope you can solve all your issues and good luck! gonna check on that other question later. cya – rafaelcastrocouto Jan 12 at 20:35

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