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i have this script and it works, but not as i expected. I need to assign an array of values with differents names, now all $arr[] are named "valor"


i need


the script

    $query = mysql_query("SELECT valor FROM grafico") or die(mysql_error());

    $arr = array();
    while($row = mysql_fetch_assoc($query)) {
        $arr[] = $row;
    echo json_encode($arr);

in ajax

    <script type="text/javascript">

                url: "chart.php",
                dataType: "json", 
                success: function(json){
                   var msg = "Nome: " + json.valor1+ "\n";
                   msg += "Sobrenome: " + json.valor2 + "\n";



the problem is: I need to create a loop that create uniques names, as value1, value2, value3


$arr['valor1'] = "Evandro";

i tried a loop- for, but i get an error of memory


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2 Answers 2

up vote 2 down vote accepted

Try this:

$query = mysql_query("SELECT valor FROM grafico") or die(mysql_error());

$arr = array();
$i = 1;
while($row = mysql_fetch_assoc($query)) {
    $arr[] = array("valor{$i}" => $row["valor"]);
echo json_encode($arr);

Should work. Alternatively if you want to make it so it works with current callback change the $arr[] = line to the following:

    $arr["valor{$i}"] = $row["valor"];
share|improve this answer
the result is [{"valor1":"20"},{"valor2":"50"}] ?> but the alert doesn't work. It is supposed work, right? – loops Mar 23 '11 at 23:37
You sure it ought to be jQuery("button") and not jQuery("#button")? Also, try alert()-ing json var at the very top of callback function. – Michał Rudnicki Mar 23 '11 at 23:41
the alert works but says valor1: undefined and the same to the valor2. Thanks – loops Mar 23 '11 at 23:43
the problem is the [] --- [{"valor1":"20"},{"valor2":"50"}], but if i remove in the [] in $arr only show the second value {"valor2":"50"} – loops Mar 24 '11 at 0:04
Updated the answer to work with your callback. Just a side note - don't call your variable "valor" ("value" in Spanish, I'm guessing) - it could mean anything. It's like calling your dog "Dog". It's plain to see this is some kind of value. The question is what kind exactly? If it's name, call it "name". If it's user details call it accordingly, etc. – Michał Rudnicki Mar 24 '11 at 10:41
$index = 1;
while($row = mysql_fetch_assoc($query)) {
        $key = 'valor'.index;
        $arr[$key] = $row;

Does that give you a memory error? It shouldn't.

share|improve this answer
Unless you have an unbelievably immense number of return values from your query. – Chris Mar 23 '11 at 23:28

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