I would like some help in my code :

When I try to use a variable instead of the key name of the array, my return is NULL, someone could give me an idea of how to use a variable rather than a fixed name.

Thank you.

var json = '[{"id":"8","top_cadastro_clientes_name":"USS SOLUCOES GERENCIADAS LTDA"},{"id":"9","top_cadastro_clientes_name":"AXA - INTER PARTNER ASSIST"},{"id":"10","top_cadastro_clientes_name":"BRASIL ASSISTENCIA SA"},{"id":"11","top_cadastro_clientes_name":"EUROP ASSISTANCE"},{"id":"12","top_cadastro_clientes_name":"MONDIAL SERVICOS LTDA"},{"id":"13","top_cadastro_clientes_name":"PARTICULAR ATIVO"}]';
  
var select = $('select');
var referencedcolumn = 'id';
var referencedfield  = 'top_cadastro_clientes_name';
var opts = $.parseJSON(json);

  $.each( opts, function(key, val) {
    select.append('<option value="'+val.id+'">'+val.id+'-'+val.referencedfield+'</option>');
  
    console.log('why print NULL when i use variable for field???'+val.referencedcolumn);
  });
<select class="form-control" name="select" data-referencedtable="" data-referencedcolumn="" data-referencedfield="">
  <option value="0" selected="selected">Selecione...</option>
</select>

<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

up vote 1 down vote accepted

You're looking for array syntax:

$.each( opts, function(key, val) {
  select.append('<option value="'+val[referencedcolumn]+'">'+val[referencedcolumn]+'-'+val[referencedfield]+'</option>');
  console.log('print id column value: '+val[referencedcolumn]);
});
  • Worked perfectly. I knew it was a stupid thing , did not know that it should use brackets. Thank you so much! – Henrique Van Klaveren Jul 19 '16 at 21:55

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