Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to dynamically update a value in a Google Charts Gauge, but when I try and use a variable as the value, it breaks.

var data = google.visualization.arrayToDataTable([
    ['Label', 'Value'],
    //Doesn't work:
    ['Barometer', x],
    //Works:
    [x, 28],
    //Works:
    ['Barometer', 28]
    ]);

The problem is the way that I am declaring the variable, I think, because when I just use var x=28, it works fine. Here is the code I am using to get the variable: It uses Jquery to fetch a JSON file, and takes a value from the file:

var x
    $.getJSON('http://pipes.yahoo.com/pipes/pipe.run?_id=467a55b506ba06b9ca364b1403880b65&_render=json&textinput1=40.78158&textinput2=-73.96648&_callback=?',
        function(data){
            x = data.value.items[0].data[1].parameters.pressure.value;
        }
    )

I tried using x = eval(x), but it still didn't wok at all. However, when I used x = eval(x+1-1) or x = x+1-1, the gauge showed up, but the value was NaN.

share|improve this question

1 Answer 1

up vote 1 down vote accepted

OK, solved it.

I ended up defining the variable before loading the Google Charts API, and then, right before defining the variable, I added x = eval(x).

So here is the final, simplified code:

var x
$.getJSON('insert JSON url here WITH QUOTES',
    function(data){
        x = path.to.something.in.JSON.file.here;
    }

google.load('visualization', '1', {
    packages: ['gauge']
});
google.setOnLoadCallback(drawChart);

function drawChart() {

    x = eval(x)
    var Data = google.visualization.arrayToDataTable([
        ['Label', 'Value'],
        ['Gauge', x],
        ]);

    var Options = {
    };

    var Chart = new google.visualization.Gauge(document.getElementById('insertGaugeContainerHere'));
    Chart.draw(Data, Options);
}

In case you're wondering, the final product is located here.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.