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I am trying to do some simple pagination. To that end, I'm trying to parse the current URL, then produce links to the same query, but with incremented and decremented page parameters.

I've tried doing the following, but it produces the same link, without the new page parameter.

var parts = url.parse(req.url, true);
parts.query['page'] = 25;
console.log("Link: ", url.format(parts));

The documentation for the URL module seems to suggest that format is what I need but I'm doing something wrong.

I know I could iterate and build up the string manually, but I was hoping there's an existing method for this.

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Is that CoffeeScript? –  Alex Turpin Sep 22 '11 at 15:31
1  
Yes. I'll reformat it to JS to make it more standard for people to help out with. –  Ben Humphreys Sep 22 '11 at 15:34

4 Answers 4

up vote 10 down vote accepted

If you look at the latest documentation, you can see that url.format behaves in the following way:

  • search will be used in place of query
  • query (object; see querystring) will only be used if search is absent.

And when you modify query, search remains unchanged and it uses it. So to force it to use query, simply remove search from the object:

var url = require("url");
var parts = url.parse("http://test.com?page=25&foo=bar", true);
parts.query.page++;
delete parts.search;
console.log(url.format(parts)); //http://test.com/?page=26&foo=bar

Make sure you're always reading the latest version of the documentation, this will save you a lot of trouble.

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This is a good answer, I would consider anyone using it to not use the delete operator as it is really slow. –  Benjamin Gruenbaum Mar 25 '13 at 19:57
1  
Prime example of premature optimization there buddy –  Alex Turpin Mar 26 '13 at 14:45
    
I did not ask you to change the answer, I left a comment. delete is 1000% slower than setting to null or undefined and makes no sense in objects anyway (what does it even mean to remove an object's property, that makes no sense in OO design). In my opinion, setting it to undefined makes much more sense, it still has the property, it is just not defined any more. –  Benjamin Gruenbaum Mar 26 '13 at 14:54
2  
Sorry, didn't mean to come off as aggressive. You are right, if someone is doing something where speed is critical, they might not want to use delete. Thank you for your comment. –  Alex Turpin Mar 26 '13 at 15:25

Simple git for this. To dry out code and get at URL variables without needing to require('url') I used: https://gist.github.com/4542588

This will parse and move the url variables into the req.urlparams variable. It runs early in the request workflow so is available for all expressjs paths.

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Seems to me like it's a bug in node. You might try

// in requires
var url = require('url');
var qs = require('querystring');

// later
var parts = url.parse(req.url, true);
parts.query['page'] = 25;
parts.query = qs.stringify(parts.query);
console.log("Link: ", url.format(parts));
share|improve this answer
1  
It's not a bug, it's clearly documented: nodejs.org/docs/latest/api/url.html –  Alex Turpin Sep 22 '11 at 15:54
    
You're right, but isn't the latest version unstable? I only checked documentation for 0.4.12 –  Marcel M. Sep 22 '11 at 15:59
    
Indeed, but the documentation has improved, and luckily for us, in this case, is consistent with older versions. –  Alex Turpin Sep 22 '11 at 16:16
    
Is is still querystring or changed to require('qs') –  Gupta Jun 1 '12 at 14:18
    
qs if you want visionmedia's query string parser, querystring for nodejs native parser. –  Marcel M. Jun 7 '12 at 16:17

The other answer is good, but you could also do something like this. The querystring module is used to work with query strings.

var querystring = require('querystring');
var qs = querystring.parse(parts.query);
qs.page = 25;
parts.search = '?' + querystring.stringify(qs);
var newUrl = url.format(parts);
share|improve this answer
1  
parts.query will be an Object if url.parse(..., true) is sent. nodejs.org/docs/v0.4.12/api/url.html#url.parse –  Marcel M. Sep 22 '11 at 15:53
1  
you're right. This will work if url.parse(req.url) is used, without the last parameter –  ampersand Sep 22 '11 at 15:55

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