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've looked all over the internet for a simple answer to this, but I can't seem to find one anywhere. I do a simple reverse geocode of a latitude and longitude and I am returned the huge results object. Where do I go from there? Here is what I have so far. Currently zipcode returns "undefined".

geocoder.geocode( {'latLng' : event.latLng}, function(results, status) {
    for(var i; i < results.length; i++){
        for(var j=0;j < results[i].address_components.length; j++){
            for(var k=0; k < results[i].address_components[j].types.length; k++){
                if(results[i].address_components[j].types[k] == "postal_code"){
                    var zipcode = results[i].address_components[j].short_name;
                }
            }
        }
    }
});
share|improve this question
    
looks as though you should have a "for(var i=0" in the beginning there. –  luke_mclachlan Feb 2 at 22:14

4 Answers 4

up vote 3 down vote accepted
for(var i=0; i < results[0].address_components.length; i++)
{
    var component = results[0].address_components[i];
    if(component.types[0] == "postal_code")
    {
        console.log(component.long_name);
    }
}

This is what I got working. Basically it just does a search for postal code in the first address component, since that contains all the information. Remember, console.log() is your friend

share|improve this answer
    
works perfectly, thank you. what I love about this solution is that it returns the first postal_code result, even if there are many insances in the geocoding result. With the code as set out in the question, it spits out each and every instance of the postal_code. –  luke_mclachlan Feb 4 at 18:33

Found this neat function that (http://stackoverflow.com/users/638040/johann) posted as an answer from another stack overflow question.

It will find match the type you ask for and return it.

function extractFromAdress(components, type){
 for (var i=0; i<components.length; i++)
  for (var j=0; j<components[i].types.length; j++)
   if (components[i].types[j]==type) return components[i].long_name;
  return "";
}

Usage:

var postCode = extractFromAdress(results[0].address_components, "postal_code");
var country = extractFromAdress(results[0].address_components, "country");
share|improve this answer

Your issue is that the zipcode variable is a local variable to the function. I've got a working example on this jsfiddle

    var zipcode = null;
function testFunct (results, status) {
for(var i in results){
    var result = results[i];
        for(var j in result.address_components){
            var address_component = result.address_components[j];
            for(var k in address_component.types){
                var addrtype = address_component.types[k];
                if(addrtype  == "postal_code"){
                    zipcode = results[i].address_components[j].short_name;
                    console.log(zipcode);
                    return;
                }

            }
        }
    }

}
share|improve this answer
    
Thanks Jason!I I also just figured out that the last for statement is unnecessary and this works just fine: for(var j=0;j < results[0].address_components.length; j++){ if(results[0].address_components[j].types[0] == "postal_code"){ var zipcode = results[0].address_components[j].short_name; } } –  Colin Jun 7 '12 at 6:20

Your code does the following: If there are for instance two or three answers; it stores the last one in a row in the zipcode variable. Even if it's undefined. You should build in a check to see if the zip code is valid; and than you should return it to your zip code variable. And define the variable outside the function; otherwise it will be stuck in the function.

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.