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'm fetching data from a php file with jQuery and I want it to be displayed dynamically in a table. Is there another way of doing this, so that the jQuery itself creates the table rows. This is my attempt..

part from the html file:

<table id="tejbl">
<tr id="naslov">
<td><h3>NAME</h3></td>
<td><h3>FAT</h3></td>
<td><h3>FIBER</h3></td>
<td><h3>SUGARS</h3></td>
</tr>


<tr>
<td id="table_0"></td>
<td id="table_1"></td>
<td id="table_2"></td>
<td id="table_3"></td>
</tr>

</table>

part from the js file:

$('#jedinice_butt').click(function(){
var odabrano = $("#dropdown option:selected").text();

var uneseno = $("#input_jedinica").val();
$('#tablica').show();
//$('#add_button').show();


if(odabrano === "g"){ 
    $.post('name.php', {
        value: value
    }, function (data) {

      $('#table_0').html(data);
    });


    $.post('nutritional_value.php', {
        value: value
    }, function (data) {

      $('#table_1').append( data * (parseFloat(uneseno,10)/100));
    });

    $.post('fiber.php', {
        value: value
    }, function (data) {

        $('#table_2').append(data * (parseFloat(uneseno,10)/100) );
    });

    $.post('sugars.php', {
        value: value
    }, function (data) {

        $('#table_3').append( data * (parseFloat(uneseno,10)/100) );

    });



}

The problem I'm trying to solve is, that once I click the button again it just adds the values in the same 's and I want it to add in a new row.. So basically how do you dynamically add rows for these outputs I tried with a few methods with no success I event tried doing it without the 's in the html file so it's generated from the jQuery but I'm doing something wrong apparently.

share|improve this question

1 Answer 1

up vote 1 down vote accepted

To achieve this, you could modify the DOM.

First get rid of the

<tr>
<td id="table_0"></td>
<td id="table_1"></td>
<td id="table_2"></td>
<td id="table_3"></td>
</tr>

You can dynamically add elements to the document. You could do something like this:

if(odabrano === "g"){ 

$.getJSON("SCRIPT_URL.php?value="+encodeURI(VALUE_VARIABLE),function(data){

    var ttr = document.createElement("tr");
    var dt = ["fat","fiber","sugar"];
    var ttd = document.createElement("td");
    ttd.innerText=data["name"];
    ttr.appendChild(ttd);
    for(var i=0,l=dt.length;i<l;i++){
        var ttd = document.createElement("td");
        ttd.innerText = data[dt[i]] * (parseFloat(uneseno,10)/100);
        ttr.appendChild(ttd);
    }
    $("#tejbl").append(ttr);

});

}

A note for the php-script: Send the data like this:

$results = array();
$results["name"]=$NAME_YOU_JUST_GOT_FROM_SOMEWHERE;
$results["fat"]=$FAT_YOU_JUST_GOT_FROM_SOMEWHERE;
$results["fiber"]=$FIBER_YOU_JUST_GOT_FROM_SOMEWHERE;
$results["sugar"]=$SUGAR_YOU_JUST_GOT_FROM_SOMEWHERE;
//Send it to the client in json format:
echo(json_encode($results));
share|improve this answer
    
I get this error: [12:24:54.296] TypeError: w is null @ localhost/tust/index2.html:141 –  Filkatron May 31 '13 at 10:45
    
Oh, my bad... I have updated the answer, take a look add the post requests to sugars and fibers, i had used the wrong id, it should work now. –  potato25 May 31 '13 at 12:18
    
Thanks for helping me out but I get the same error even with the edited code :S –  Filkatron May 31 '13 at 17:43
    
I read the documentation and it says: Returns null if no matches are found; otherwise, it returns the first matching element. So what could be the reason it returns NULL (why can't it find a match) ? –  Filkatron May 31 '13 at 17:58
    
Hmmm, strange... Try to change the line $.tdf.addedData=0 to $.tdf.addedData=1. If that does not work, could you try to combine the 4 php scripts? –  potato25 Jun 1 '13 at 9:57

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.