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I have a sample code:

function getKeyword() {
    var instance = this;
    var googlePattern = /(www\.google\..*)/;

    this.params = function(parameters) {
        var result = [];
        var params = parameters.split("&");
        for(var p in params) {
            var kv = params[p].split("=");
            result[kv[0]] = kv[1];
        }
        return result;
    };

    this.googleKeywords = function(params){
        var query = params["q"];
        var pattern = /"(.*?)"|(\w+)/g;
        return decodeURIComponent(query).replace(/\+/g, " ").match(pattern);
    };

    this.parseReferrer = function(){
        var result = [];
        var pathAndParams = document.referrer.split("?");
        if(pathAndParams.length == 2) {
            var path = pathAndParams[0];
            var params = this.params(pathAndParams[1]);
            if(path.search(googlePattern) > 0) {
                result = this.googleKeywords(params);
            }
        }
        return result;   
    };

    return this.parseReferrer();
}

And then:

<script type="text/javascript">
    if (document.referrer && document.referrer != "") {
        if (document.referrer.search(/google\.*/i) != -1){
            var keyword = getKeyword();
            alert(keyword);
        } else {
            alert('Not search from google');
        }
    } else {
        alert('Not referrer');
    }
    </script>

Ex: when i search with keyword is "iphone 5", result not show alert("iphone 5") ? How to fix it ?

share|improve this question
    
That's some nice looking code. What does it do and what's the problem? –  Niklas Dec 6 '12 at 14:26
    
@Niklas: I am forget set my question, i'm sorry !!! –  haitruonginfotech Dec 6 '12 at 14:29
    
What result does it return, if any? have you tried using console.log to check the return value of each function, to see where it's going wrong? –  Stuart Dec 6 '12 at 14:43
    
Did you already step through the script in the JavaScript debugger of your browser? Stepping through it should allow you to quickly see where your logic is failing. –  Frank van Puffelen Dec 6 '12 at 14:44
    
Can you show a sample value for document.referrer. In a few quick tests I ran it does not contain a value for the q parameter anymore, which your code assumes. A quick search for this parameter turns up some hits that seem quite relevant to your case: google.com/search?q=google+referrer+url+q+parameter –  Frank van Puffelen Dec 6 '12 at 14:50

1 Answer 1

The JavaScript for in construct loops over more than just the entries in the array. If you want to use for in you need to make sure that you're only processing the actual parameters. This is easiest accomplished by checking for hasOwnProperty:

this.params = function(parameters) {
  var result = [];
  var params = parameters.split("&");
  for(var p in params) {
    if (params.hasOwnProperty(p))
    {
      var kv = params[p].split("=");
      result[kv[0]] = kv[1];
    }
  }
  return result;
};

Alternatively you can use a regular for loop over the array:

this.params = function(parameters) {
  var result = [];
  var params = parameters.split("&");
  for(var i=0; i < params.length; i++) {
    var kv = params[i].split("=");
    result[kv[0]] = kv[1];
  }
  return result;
};
share|improve this answer
    
I have test on my site with keyword ex: iphone 5 => result when console.log(keyword) is ...&q=&... => q = null, It's show 'iphone 5' –  haitruonginfotech Dec 7 '12 at 4:37
    
Good to hear. Please click the check mark next to my answer to accept it. –  Frank van Puffelen Dec 7 '12 at 12:32
    
i has read this link: bowdeni.com/how-google-blocks-the-keyword-in-the-referrer/471 => I think Google blocks the keyword in the referrer –  haitruonginfotech Dec 7 '12 at 16:06
    
That was my initial answer: Google does not pass the search term in the q parameter when the user did a secure search (so from HTTPS). But your code also was iterating over the split results in the wrong way. –  Frank van Puffelen Dec 7 '12 at 16:18

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