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I'm trying to INSERT INTO a database using ajax. The table is updated by the php file, but I always get an error in ajax and the page could not be redirected to the results page.

My 'POST' function, in the html page is (it returns always the error alert):

function enviaFormDetalhes() { 
if (confirm("Tem a certeza que quer gravar os dados?")){
$.ajax( {
    type: 'post',
    url: 'php/f_propostas.php?tipo_acao=grava_nova_proposta&id_consulta='+getUrlVars()['id_consulta']+'&id_fornecedor='+getUrlVars()['id_fornecedor'],
    data: $("#form_detalhes_proposta").serialize(),
        success: function(data) {
            alert("Dados gravados com sucesso");
            location.href = 'f_editproposal.html?id_proposta='+data;
        error: function(jqXHR, textStatus, errorThrown) {
            console.log(textStatus, errorThrown);
    } );      
} else {
    return false;

The part of php file is: (This is working good, if I call i directly in the browser it returns me the lastinsertID):

case "grava_nova_proposta":

$ID_Fornecedor = $_GET['id_fornecedor'];
$ID_Consulta = $_GET['id_consulta'];
$DataRececao = $_POST['dt_proposta'];
$RefProposta = $_POST['ref_proposta'];
$DtValidade = $_POST['dt_validade'];
$DtCriacao_loop = gmdate('Y-m-d');
try {
    $sql = "INSERT INTO fornecedores_propostas (
        VALUES (?, ?, ?, ?, ?, ?)";
$q = $conn->prepare($sql);
$q->execute(array($ID_Fornecedor, $ID_Contacto, $ID_ConsultaLoop, $DataRececao, $RefProposta, $DtValidade));
$Ultimo_ID = $conn->lastInsertId('id_proposta');
echo $Ultimo_ID;
share|improve this question
What does the error say? – Juhana May 6 '13 at 10:27
The alert message is: "Data-[object object]" – Mario Cordeiro May 6 '13 at 10:37
Use console.log(data) instead and look in the error console. The console might have related errors anyway. – Juhana May 6 '13 at 10:38
Instead of alert do console.log(data); and check in Firebug and see what that object contains? – Supriti Panda May 6 '13 at 10:39
Okay, I've changed my code to put the console.log (check my message I've edited it). The pages refreshes after the error and I put an alert message to stop the paga refresh and in Chrome I get the message "error" in the console :( – Mario Cordeiro May 6 '13 at 10:46

1 Answer 1


url: 'php/f_propostas.php,
data: tipo_acao=grava_nova_proposta&id_consulta='+getUrlVars()['id_consulta']+'&id_fornecedor='+getUrlVars()['id_fornecedor']+$("#form_detalhes_proposta").serialize(),
share|improve this answer
I've tried that, thakkar, but the same result – Mario Cordeiro May 6 '13 at 10:58
in mozilla firefox in firebug you can see the ajax URL and params which you are please can you check that and is possible can you share? – user2353802 May 6 '13 at 11:18
Is this?: – Mario Cordeiro May 6 '13 at 11:35
no buddy, when your ajax calls your page you will see url with php/f_propostas.php. – user2353802 May 6 '13 at 11:43
you will see URL under "console" tab – user2353802 May 6 '13 at 11:44

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