I have 5 input fields, one for each day of the week. They're saved on keyup into a variable, which is working according to console.log.

<script>
    $(document).ready(function(){
        console.log("Ready!");
        $("input[type='text']").keyup(function() {
            console.log("Something changed");

            var mon = $("#mon").val();
            var tue = $("#tue").val();
            var wed = $("#wed").val();
            var thu = $("#thu").val();
            var fri = $("#fri").val();

            console.log("Monday means:" + mon);

            $.ajax({
              type: "post",
              url: "map.php",
              data: 'mon=' + mon + '&tue=' + tue + '&wed=' + wed + '&thu=' + thu + '&fri=' + fri,
              dataType: 'json',
              success: function(data){
                console.log("Your data is:" + data);
              },  
            });
        });
    });
</script>

However, I am failing to return either an "Not working" or what I'm actually after. Shouldn't "Not working" be returned if the API call within the php file failed?

// This is not returning anything
if($_POST['mon']) {
    $mon = $_POST['mon'];

    // Working fine manually entered into the web browser
    $urlMon = "https://maps.googleapis.com/maps/api/geocode/json?address=".$mon."&key=myKey123";
    $jsonMon = json_decode(file_get_contents($urlMon), true);
    $address = $jsonMon['results']['formatted_address'];

    if(isset($address)) {
        echo json_encode($address);
    } else {
        echo json_encode("Not working");
    }
}

I know that the ajax itself is working, because this is working:

// This returns the variable I sent according to the console log.
if($_POST['mon']) {
    $mon = $_POST['mon'];
    echo json_encode($mon);
}

I'm quite new at this, I'm sure I've missed something obvious/done something really wrong.

Thanks in advance

  • Is the AJAX requesting erroring? – chris85 Jun 3 '16 at 12:47
  • First of all, JSON is usually used to pass arrays from PHP to JS, if you are only returning strings, no need to use JSON. Secondly, your syntax to pass datas is not correct, see this post: stackoverflow.com/questions/6085649/ajax-multiple-data – Nicolas P. Jun 3 '16 at 12:47
  • 1
    what is 'results' in PHP line 7? – Ali Sheikhpour Jun 3 '16 at 12:53
  • 2
    It suggests that you need to figure out where in that array the address you want is :) – Patrick Q Jun 3 '16 at 12:58
  • 1
    Yes, that should work (and does for me). – Patrick Q Jun 3 '16 at 13:10
up vote 1 down vote accepted

The reason why you weren't seeing anything from your console.log() call is because you were explicitly telling jQuery to expect a json result. And, even though you were calling json_encode() on your error text, it it was still really just plain text that jQuery wasn't interpreting as json. Since you told it to expect json and it wasn't getting it, the success callback wasn't happening. Remove dataType: 'json', unless you a.) know that you will always get a json response or b.) have an error callback as well.

The reason why we were hitting your error condition is because $jsonMon['results']['formatted_address'] should have been $jsonMon['results'][0]['formatted_address']. You also need to urlencode the address that you are sending to the maps API.

I see two errors:

$address = $jsonMon['results']['formatted_address'];

Should be

$address = $jsonMon['results'][0]['formatted_address'];

to receive the first result.

Second, change

} else {
    echo json_encode("Not working");
}

to

} else {
    echo "Not working";
}

and you should be good.

You have to write like this

$urlMon= file_get_contents("https://maps.googleapis.com/maps/api/geocode/json?address=".$mon."&key=myKey123");
$results = json_decode($urlMon,true);
echo $results['results'][0]['formatted_address'];
  • No I don't? Took that line from another script I have which is working – Algernop K. Jun 3 '16 at 13:10
  • Please check it i have edited my code...now it works.. – sneha Jun 3 '16 at 13:21
  • $jsonMon = json_decode(file_get_contents($urlMon), true); - There's nothing wrong with that part still, that is not the error here – Algernop K. Jun 3 '16 at 14:03

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