2

I have a PHP script that returns an object with 4 records:

$obj = array(
    'id'=>$id,
    'idCliente'=>$idCliente,
    'arquivo'=>$arquivo,
    'titulo'=>$titulo,
    'descricao'=>$descricao,
    'data' => $datacadastro
    );

I need to show the records one by one in a HTML. I'm new to jQuery and I'm trying to write this code for 3 days, so I decided to ask.

<div>
    ID:
    IDCliente:
    Arquivo:
    Titulo:
    Descricao:
    Data:
</div>
<div>
    ID:
    IDCliente:
    Arquivo:
    Titulo:
    Descricao:
    Data:
</div>
<div>
    ID:
    IDCliente:
    Arquivo:
    Titulo:
    Descricao:
    Data:
</div>
<div>
    ID:
    IDCliente:
    Arquivo:
    Titulo:
    Descricao:
    Data:
</div>

How to proceed? I have it:

$.ajax ({   type: "POST", 
    dataType : "json",
    cache: false,
    url: "<?php bloginfo('template_url'); ?>/scripts/php_functions.php",
    data: {idClienteDocumentos: idClienteDocumentos, ajax: "true"},
    success: function(result){

I have this code but it's not working.

var campos = ['arquivo', 'idCliente', 'titulo', 'descricao', 'arquivo', 'data'];
var tabela = $('<div id="tabela"></div>');
resultado.forEach(function (linha) {
    var linhaDiv = $('<div></div>');
    linha.forEach(function (campo, index) {
        $('<div></div>').addClass(campos[index]).text(campo).appendTo(linhaDiv);
    });
    linhaDiv.appendTo(tabela);
});
  • You can add HTML to the DOM using methods like .append. You can also create DOM elements in jquery using the < syntax, like $("<div>") – Explosion Pills Aug 4 '14 at 15:41
  • You mean you're looking for a way to translate PHP arrays into JavaScript Object Notation (or JSON)? A function like json_encode would be handy... – Elias Van Ootegem Aug 4 '14 at 15:43
  • Can you show me how it would. Thanks for your help and sorry if my english is not so technical. – Marcos Vinicius Aug 4 '14 at 15:43
  • Is your AJAX call returning the correct JSON and you want to know how to create the HTML? Or have you not even figured out how to send back JSON from PHP? – Juan Mendes Aug 4 '14 at 15:44
  • 2
    Just want to say, being a new user +1 for not just writing another 'how do I code' question and actually posting your source. – Wobbles Aug 4 '14 at 16:05
1

Your PHP script could be:

$obj = array(
    'id'=>$id,
    'idCliente'=>$idCliente,
    'arquivo'=>$arquivo,
    'titulo'=>$titulo,
    'descricao'=>$descricao,
    'data' => $datacadastro
    );
$result = array('results' => $obj);
echo json_encode($result); die;

Your jQuery could be:

$.ajax ({   type: "POST", 
    dataType : "json",
    cache: false,
    url: "<?php bloginfo('template_url'); ?>/scripts/php_functions.php",
    data: {idClienteDocumentos: idClienteDocumentos, ajax: "true"},
    success: function(response){
      console.log(response.results.id)
      $("#main_div").append(response.results.id);
    }
});

This is just an example script, you can modify according to your needs.

If you have multidimensional array then you can iterate through each records via loop as shown below:

Php Code:

$obj[0] = array(
    'id'=>$id,
    'idCliente'=>$idCliente,
    'arquivo'=>$arquivo,
    'titulo'=>$titulo,
    'descricao'=>$descricao,
    'data' => $datacadastro
    );
$obj[1] = array(
    'id'=>$id,
    'idCliente'=>$idCliente,
    'arquivo'=>$arquivo,
    'titulo'=>$titulo,
    'descricao'=>$descricao,
    'data' => $datacadastro
    );
$result = array('results' => $obj);
echo json_encode($result); die;

Jquery:

$.ajax ({   type: "POST", 
        dataType : "json",
        cache: false,
        url: "<?php bloginfo('template_url'); ?>/scripts/php_functions.php",
        data: {idClienteDocumentos: idClienteDocumentos, ajax: "true"},
        success: function(response){
          $.each(response.results, function(i, item) {
           console.log(item.id);
           //You can append data to HTML div
           $("#main_div").append(item.id);
          });
        }
    });
  • Thanks for your help. You have not forgotten the loop? In the console appears only the first array object. Very thanks. This is my very problem, the loop. – Marcos Vinicius Aug 4 '14 at 16:46
  • Please refer edited answer. – Rupali Aug 4 '14 at 17:05
  • WINNNNNNN ... I had some difficulties to run your script because it was missing the php "while" to pick up the items dynamically. I studied the code and implemented your script a bit, I ended up getting solve with the help of 96% of your script. Congratulations and thank you. – Marcos Vinicius Aug 4 '14 at 19:08
0

There are two main problems with the code that you've tried. First, linha.forEach. linha is an object, but forEach iterates over arrays. You want for...in to iterate over objects.

Second, you're never adding tabela to your document. So even if everything else was working perfectly (and it almost is), you'll never see the result.

var campos = ['arquivo', 'idCliente', 'titulo', 'descricao', 'arquivo', 'data'];
var tabela = $('<div id="tabela"></div>');
resultado.forEach(function (linha) {console.log(linha);
var linhaDiv = $('<div></div>');

for(var prop in linha)
{
    $('<div></div>').addClass(''+prop+'').text(prop+': '+linha[prop]).appendTo(linhaDiv);
}

linhaDiv.appendTo(tabela);
tabela.appendTo('html');

DEMO

Now, the only issue with this is that it does not capitalize the label text like you have in your example. If you want that, I'd do it a bit differently...

var tabela = $('<div id="tabela"></div>');
$.each(resultado, function(){console.log(this);
    $(tabela).append("<div>ID:"+this.id+"<br/>IDCliente:"+this.idCliente+"<br/>Arquivo:"+this.arquivo+"<br/>Titulo:"+this.titulo+"<br/>Descricao:"+this.descricao+"<br/>Data:"+this.data+"<br/></div>"); 
});
tabela.appendTo('html');

DEMO

The final thing I'd say is that you have success: function(result){ and then resultado.forEach. You should either have result in both places or resultado in both places.

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