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I am trying to use a get to get information from a button and then spit out an array that is . So far, when running this code, the .getJSON isn't called (when I take out the query, it works, but I can't find any problems with the query).

Here is the relevant code:

Javascript:

$.getJSON("/westcoast_map.php", // The server URL
{
    westcoast_id: $('.opener').data('westcoast_id')
}, // Data you want to pass to the server.
function (json) {

    var id = json[0];
    waypts = json[1];
    alert(id);
    console.log(waypts);

});

php script (westcoast_map.php):

<?php
session_start();
require_once "database.php";
db_connect();
require_once "auth.php";
$current_user = current_user();
include_once("config.php");

$westcoast_id    = $_GET['westcoast_id'];
$westcoast_array = array();
$query           = "SELECT city, state FROM users GROUP BY city";
$result = mysql_query($query) or die(mysql_error());
while ($row = mysql_fetch_array($result)) {

    if ($row['city'] != '' && $row['state'] != '') {
        $westcoast_array[$row] = "{location:" . $row['city'] . ", " . $row['state'] . ", stopover:true}";
    }
}
$data = array(
    $westcoast_id,
    $westcoast_array
);
echo json_encode($data);
?>

The button:

<button type="button" class="opener" data-westcoast_id="westcoast_id" onclick="calcRoute();">
    West Coast
</button>
share|improve this question
2  
I'm no PHP guy but it seems to me like you're doing some json formatting here ( $westcoast_array[$row] = "{location:".$row['city'].", ".$row['state'].", stopover:true}"; )-- I don't think you should have to do this--- the json_encode should take care of it. – ek_ny Mar 1 '13 at 21:06
    
PHP guy here… have you browsed to the PHP handler? Any errors? What is the output if you manually feed it $_GET params in the address bar? – Phillip Mar 1 '13 at 21:08
    
I get this: Illegal offset type in <b>/nfs/c09/h04/mnt/139243/domains/crowdsets.com/html/westcoast_map.php</b> on line <b>19</b><br /> and I am trying to export an array within the json array ha (I want json[1] to be the created array – user1072337 Mar 1 '13 at 21:13
    
line 19 is the $westcoast_array[$row] = "{location:".$row['city'].", ".$row['state'].", stopover:true}"; line – user1072337 Mar 1 '13 at 21:15
1  
Looks like you are missing a key to your value for state, try: {location:".$row['city'].", state:".$row['state'].", stopover:true} – Asok Mar 1 '13 at 21:41

Looks to me like you are missing the key to your value for state, try this:

if($row['city'] != '' && $row['state'] != '') {
    $westcoast_array[] = "{
        location:".$row['city'].", 
        state:".$row['state'].", 
        stopover:true
    }";
}

You are also using an array as a key, which you cannot do. Change $westcoast_array[$row] to $westcoast_array[]

share|improve this answer

I'm sorry if I'm wrong, but I think you're making the JSON on your own and using json_encode to encode it again. Try this:

<?php
session_start();
require_once "database.php";
db_connect();
require_once "auth.php";
$current_user = current_user();
include_once("config.php");

$westcoast_id    = $_GET['westcoast_id'];
$westcoast_array = array();
$query           = "SELECT city, state FROM users GROUP BY city";
$result = mysql_query($query) or die(mysql_error());
while ($row = mysql_fetch_array($result)) {

    if ($row['city'] != '' && $row['state'] != '') {
        $westcoast_array[] = array("location" => $row['city'], "state" => $row['state'], "stopover" => true);
    }
}
$data = array(
    $westcoast_id,
    $westcoast_array
);
echo json_encode($data);
?>
share|improve this answer

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