0

In my code, how can I get the name of the User that someone clicked on in the marker? Currently my code has:

 function createMarker(point, user, studytopic) {
      var marker = new GMarker(point);
      var currUser = user;
      var html = '<b>' + user + '</b> <br/>' + studytopic + '<br/>' +
      '<a href="javascript:showContactSB()"> Contact ' + user + '</a>' ;
      GEvent.addListener(marker, 'click', function() {
        marker.openInfoWindowHtml(html);
      });
      return marker;
    }

currUser is a global field, however, it's not updated every time I click on a different marker in Google maps. Basically what I'm looking for is a event to fire when a link (id=contactSBLink) within any marker is clicked. I want it to get the Username(which is a link) to pass the user variable to another function. I'm not sure what's the best way to go about to get this?

0

You can pass the user u to the javascript:showContactSB(u). This is an exercise in setting quotes properly:

var u = "'" + user + "'"; 
var html = '<b>' + user + '</b> <br/>' + studytopic + '<br/>' +
    '<a href="javascript:showContactSB(' + u + ')"> Contact ' + user + '</a>' ;

Now, you get the user in the click-function:

function showContactSB(user) {
    alert("Hi " + user);
}

BTW, I would recommend you to upgrade to Google Maps v3.

  • Hi Jiri - I am not passing this showContactSB function. I'd like to send it to another function. However the function does not need to be called in this portion. That's why I wanted to set it up as a global variable. However, the issue with setting up the global variable is that, it doesn't update everytime I click on another marker. Basically what I need is, getUser of every marker that gets clicked. – JK0124 Oct 7 '11 at 14:12
  • I do not completetely understand your problem. In my proposal the function showContactSB(user) is called each time when the user clicks the link. This function gets the data user and can do anything with it, e.g. assign it to a global variable, or anything else. – Jiri Kriz Oct 7 '11 at 14:17

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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