3

I am looking to display something like:

Hello, you've reached this site by looking for [google keyword(s)]

I'm pretty sure I've seen this done before but I am having troubles figuring out how to grab the keywords that were used to lead a user to my site. Anyone know the answer?

  • 5
    I can't give you the answer, but the following: I really hate when a website welcomes me with my google search term. Sorry, but I know the terms I entered just a few seconds ago. Other than that, good luck finding a valid technical answer. – OregonGhost Apr 29 '09 at 15:51
  • i don't think he wants it for displaying the annoying message. probably wants to store/analyse it. – Peter Perháč Apr 29 '09 at 15:54
  • I'll have to agree with OregonGhost, website that do that annoys me. – marcgg Apr 29 '09 at 15:57
  • 1
    I hear you guys, I'm not a fan of it either. Client gets what client wants though right? – Cawlin May 1 '09 at 16:04
8

You need to get the referring URL and then strip out everything for the "q" query string. This will give you the query that was used to get you to your page.

  • this is gold :) +1 – Peter Perháč Apr 29 '09 at 15:54
  • its not working anymore, google has stopped sending complete information in HTTP_REFERRER – Pankaj Khairnar Apr 5 '13 at 19:05
1

Using the referrer (http://www.netmechanic.com/news/vol4/javascript_no14.htm) you can find where the user comes from. Then it's just a matter of parsing it correctly.


I saw this script :

function getkeywords() {
var x = document.referrer;
var lastparturl = 0;
if (x.search(/google/) != -1) {
lastparturl = x.indexOf("&btnG=Google+Search"); 
x = x.slice(38,lastparturl); 
x = x.concat("via google");
}
else if (x.search(/yahoo/) != -1) {
lastparturl = x.indexOf("&ei=UTF-8&iscqry=&fr=sfp"); 
x = x.slice(63,lastparturl); 
x = x.concat("via yahoo");
}
else if (x.search(/ask.com/) != -1) {
lastparturl = x.indexOf("&search=search&qsrc=0&o=0&l=dir"); 
x = x.slice(25,lastparturl); 
x = x.concat("via ask");
}
else if (x.search(/dogpile/) != -1) {
lastparturl = x.indexOf("/1/417/TopNavigation/Relevance/iq=true/zoom=off/_iceUrlFlag=7?_IceUrl=true"); 
x = x.slice(46,lastparturl); 
x = x.concat("via dogpile");
}
else if (x.search(/altavista/) != -1) {
lastparturl = x.indexOf("&kgs=1&kls=0"); 
x = x.slice(48,lastparturl); 
x = x.concat("via altavista");
}
else { 
x = "no keywords available";
} 
x = x.replace(/+/, " ");
return x; 
}

Here http://www.webmonkey.com/codelibrary/Get_Referrer_Keywords

I'm not sure if it works perfectly, but it worked OK when I reached their website through google.

I also saw that some scripts that you can download do that, for instance : http://webscripts.softpedia.com/script/Search-Engines/Keyword-Grabber-45299.html

Again, this will need to be tested.

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.