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why instead giving data(value) of database give me the [object Object]?

var dataObj = $(this).closest('form').serialize();
    $.ajax({
        type: "POST",
        url: url,
        data: dataObj,
        cache: false,
        dataType: 'json',
        success: function (data) {
            $(".list_name").show().html('');
                $(".list_name").append('<p><a href="" id="result">' + data + '</a></p>');
                $('.list_name p a').click( function(e) {
                                e.preventDefault();
                                $('<b>' + b + '، </b><input type="text" name="hotel[]" value="' + b + '" style="border: none; display: none;" />').appendTo($('.auto_box span'));
                                $(this).remove();
                            return false;
                            });
            });

results url is:(json_encode()) :

[{"name":"333333"},{"name":"\u0633\u0644"},{"name":"\u0633\u0644\u0627\u0633\u06cc"},{"name":"\u0633\u0644\u0627\u0633\u0633"},{"name":"\u0633\u0644\u0627\u0645"}]

update: full code:

$('.auto_complete').keyup(function () {
        var id = '#' + this.id;
        var alt = $(id).attr('alt'); var id = $(this).attr('id'); var name = $(this).attr('name');
        var url = alt + id + '/' + name;
    var dataObj = $(this).closest('form').serialize();
$.ajax({
    type: "POST",
    url: url,
    data: dataObj,
    cache: false,
    dataType: 'json',
    success: function (data) {
        $(".list_name").show().html('');
        for (i in data) {
            var obj = $('<a href="" id="result">' + data[i].name + '</a>');
            obj.click(function(e) {
                            e.preventDefault();
                            $('<b>' + b + '، </b><input type="text" name="hotel[]" value="' + b + '" style="border: none; display: none;" />').appendTo($('.auto_box span'));
                            $(this).remove();
                        return false;
                        });
             var p = $('p');
             p.append(obj);
             $(".list_name").append(p);
        }
   },
        "error": function (x, y, z) {
            // callback to run if an error occurs
            alert("An error has occured:\n" + x + "\n" + y + "\n" + z);
        }
        });

    });  
share|improve this question
    
Because data is an Object, not an Array. I'm not very familiar with this aspect of jQuery, but you could try using data.toString(). –  Chris Morgan Jul 16 '11 at 10:17
    
how must getting data(value) instead [object Object]? –  user847638 Jul 16 '11 at 10:21
    
huh? I cannot comprehend your meaning. –  Chris Morgan Jul 16 '11 at 10:23
    
if i want displaying all names together, how is it?(loop)(not want use of .each()) –  user847638 Jul 16 '11 at 10:31

4 Answers 4

data is not a string, but a JSON object, which is basically a Javascript Object. You access it as you would any JS object/array (looks like your result string is an array)

So you can do something like this: data[1].name

share|improve this answer

data is a list (It is javascript object).
toString( list ) in javascript gives "object Object"

data[0].name will return "333333"

To make a string from a complex object write your own function.

share|improve this answer

It looks like your Ajax call is returning an array of structures. Each element in the array is a name-value pair. Given that data is an array, the first element is data[0] so you might do something like:

var firstElem = data[0];
var firstName = firstElem.name;
alert("The first name is: " + firstName);

If you want to add all of the names into your html, you would need to loop through the array, each time appending the current element.

If you wanted to show all names, you could do

var names = "";

for (var i=0; i<data.length; i++) {
   var elem = data[i];
   names = names + elem.name + ", ";   
}
share|improve this answer
    
if i want displaying all names together, how is it?(loop)(not want use of .each()) –  user847638 Jul 16 '11 at 10:30
    
I'm not sure if the edit above addresses your question, it loops through and creates a comma separated list of names. –  PhilDin Jul 16 '11 at 10:36
    
thank you, how must puting each which separate in tag a<a></a>?(appendTo) –  user847638 Jul 16 '11 at 11:14

I would rewrite it in the following way

var dataObj = $(this).closest('form').serialize();
$.ajax({
    type: "POST",
    url: url,
    data: dataObj,
    cache: false,
    dataType: 'json',
    success: function (data) {
        $(".list_name").show().html('');
        for (i in data) {
            var obj = $('<a href="" id="result">' + data[i].name + '</a>');
            obj.click(function(e) {
                            e.preventDefault();
                            $('<b>' + b + '، </b><input type="text" name="hotel[]" value="' + b + '" style="border: none; display: none;" />').appendTo($('.auto_box span'));
                            $(this).remove();
                        return false;
                        });
             var p = $('p');
             p.append(obj);
             $(".list_name").append(p);
        }
   }
});
share|improve this answer
    
this have error: for (in in data)... –  user847638 Jul 16 '11 at 11:19
    
thanks, it was typo. fixed –  Darhazer Jul 16 '11 at 11:21
    
this not displaying results search? –  user847638 Jul 16 '11 at 11:25
    
i update full code to Ask. please see it and call, what is problem? –  user847638 Jul 16 '11 at 11:33
    
ok. this worked but results is repeated twice. why? –  user847638 Jul 16 '11 at 11:41

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