19

I can use the below to get the query string.

  var query_string = request.query;

What I need is the raw unparsed query string. How do I get that? For the below url the query string is { tt: 'gg' }, I need tt=gg&hh=jj etc....

http://127.0.0.1:8065?tt=gg

Server running at http://127.0.0.1:8065
{ tt: 'gg' }
31

You can use node's URL module as per this example:

require('url').parse(request.url).query

e.g.

node> require('url').parse('?tt=gg').query
'tt=gg'

Or just go straight to the url and substr after the ?

var i = request.url.indexOf('?');
var query = request.url.substr(i+1);

(which is what require('url').parse() does under the hood)

  • How do I get the raw? request.query == { tt: 'gg' }. I want tt=gg. – Tampa May 17 '12 at 22:46
  • 1
    That's what the answer does. You may want to note that query above is not request.query. The latter is a member added by express. – Pero P. May 17 '12 at 22:48
  • I do not use express. I need to be lightweight – Tampa May 17 '12 at 23:02
  • Sorry, in that case you need to add more code as query is not a member of the request object in the core node library. That's why I thought you were using express. Regardless, the answer just uses the core node modules. – Pero P. May 17 '12 at 23:07
  • @Tampa: what do you even mean by "lightweight"? What do you really want, and how is one thing vs. another lightweight? – Ashe May 18 '12 at 0:40
7

You can use req.originalUrl in express 3.x+. (Older versions can use req.url from node's http module.) This should produce the raw string, excluding the ?:

var query_index = req.originalUrl.indexOf('?');
var query_string = (query_index>=0)?req.originalUrl.slice(query_index+1):'';
// 'tt=gg&hh=jj' or ''

Note that if you have a # to denote the end of the query, it will not be recognized.

If you want to pass the string along to a new URL, you should include the ?:

var query_index = req.originalUrl.indexOf('?');
var query_string = (query_index>=0)?req.originalUrl.slice(query_index):'';
// '&tt=gg&hh=jj' or ''
res.redirect('/new-route'+query_string);
// redirects to '/newroute?tt=gg&hh=jj'
  • 1
    req.url.split('?')[1] would work incorrectly for valid URLs, containing more than one ? symbol. – Alexander Gonchiy Apr 19 '16 at 15:01
  • Hot damn, you're right! But the last ? is always gonna be the start of the query, right? Let me fix that right quick... – Keith Apr 19 '16 at 23:33
  • 1
    Nope, the first ? always marks the start of the query. So I'll switch to indexOf(). – Keith Apr 19 '16 at 23:42
2

Express uses parseurl which stores _parsedUrl in the request object. Original string query can be accessed via request._parsedUrl.query.

  • 1
    This is so much better than manually re-parsing the url. – Shane Hughes Jun 14 '18 at 20:06
  • req.parsedUrl is not part of the documented Express API and is thus subject to change in a future release and break your code. – Mark Stosberg Oct 9 '18 at 10:12
-1

If you want it to be that "lightweight", you have to write it yourself.

var raw = "";
for( key in query_string)
  raw += key + "="+ query_string[key] "&";
if ( raw.indexOf("&") > 0) // To remove the last & since it will produce 'tt=gg&'
   raw = raw.substring(0,raw.length-1);
  • I don't see how reconstructing the query string from a parsed version is lightweight compared to just going to the url string and substr after the ?. – Pero P. May 18 '12 at 0:36
  • @PeroPejovic Me neither. Tampa says he has parsed version in query_string and need it to be converted to raw. From the context, I did assume that he has only the parsed version, not the full URL – Mustafa May 18 '12 at 2:30

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