13

I have a string like

def data = "session=234567893egshdjchasd&userId=12345673456&timeOut=1800000"

I want to convert it to a map

 ["session", 234567893egshdjchasd]
 ["userId", 12345673456]
 ["timeout", 1800000]

This is the current way I am doing it,

 def map = [:]

 data.splitEachLine("&"){

   it.each{ x ->

     def object = x.split("=")
     map.put(object[0], object[1])

   }

 }

It works, but is there a more efficient way?

23

I don't know think this is would run any faster, but it does suggest itself in terms of syntactic parsimony:

def data = 'session=234567893egshdjchasd&userId=12345673456&timeOut=1800000'
def result = data.split('&').inject([:]) { map, token -> 
    token.split('=').with { map[it[0]] = it[1] }
    map 
}

Personally, I like Don's answer for readability and maintainability, but depending on context, this may be appropriate.

Edit: This is actually a reformatted one-liner.

  • 3
    +1 for use of fancy GDK methods (inject) and fancy English phrases (syntactic parsimony) – Dónal May 11 '10 at 17:18
  • 2
    you can change the inject innards to token.split('=').with { map << [ (it[0]):it[1] ] } if you really hate readability ;-) – tim_yates May 12 '10 at 9:46
  • I liked this solution - until I found that there is a "collectEntries()" function that can be used to build maps. That is much more readable then the "inject()", see my answer below. – Axel Heider May 13 '16 at 20:12
12

I don't know if this is more efficient, but to my eyes, it's a bit simpler (YMMV)

def data = "session=234567893egshdjchasd&userId=12345673456&timeOut=1800000"
def map = [:]

data.split("&").each {param ->
    def nameAndValue = param.split("=")
    map[nameAndValue[0]] = nameAndValue[1]
}
  • 2
    I wrote a quick and dirty Groovy script (possibly quite flawed) comparing the 3 techniques mentioned and consistently Dons method came up fastest. It grabbed 3 query string of various lengths and timed how long for each method, output eg: Method 1 (ig0774) [124727794, 2236178, 4806756] total: 131770728 Method 2 (Don) [2546134, 1174801, 2227867] total: 5948802 Method 3 (Ted Naleid) [10447068, 1915955, 2840445] total: 15203468 Good enough for my purposes – Steve Feb 8 '12 at 4:36
5

If you're looking for efficient, regular expressions are where it's at:

def data = "session=234567893egshdjchasd&userId=12345673456&timeOut=1800000"
def map = [:]
data.findAll(/([^&=]+)=([^&]+)/) { full, name, value ->  map[name] = value }

println map

prints:

[session:234567893egshdjchasd, userId:12345673456, timeOut:1800000]

If you're not familiar with regular expressions, it might look a little foreign, but it's really not that complicate. It just has two (groups), the first group is any character but a "&" or a "=". The second group is any character besides a "=". The capture groups are on either side of a "=".

1

If you are in a grails controller, then this is nice and simple:

GrailsParameterMap map = new GrailsParameterMap(request)

http://grails.org/doc/latest/api/org/codehaus/groovy/grails/web/servlet/mvc/GrailsParameterMap.html

1

If you use Grails, the best way I find is WebUtils the function fromQueryString.

https://grails.github.io/grails-doc/2.0.x/api/org/codehaus/groovy/grails/web/util/WebUtils.html

1

Here's my effort, which initializes and fills the map in one go, and avoids the inject method which I personally find hard to follow:-

    def map = data.split('&').collectEntries {
        def kvp = it.split('=').collect { string ->
            string = string.trim()
            return string
    }
    [(kvp[0]): kvp.size() > 1 ? kvp[1] ?: '' : '']
    // the null check is almost certainly overkill so you could use :-
    // [(kvp[0]): kvp.size() > 1 ? kvp[1] : '']
    // this just checks that a value was found and inserts an empty string instead of null 
}
1

After some searching, "collectEntries()" is the magic thing to use, it creates a map element. Work just like "collect()" that creates a list. So given

def params = "a1=b1&a2=b2&a3&a4=&a5=x=y"

the one-liner is

map = params.tokenize("&").collectEntries{ 
          it.split("=",2).with{ 
              [ (it[0]): (it.size()<2) ? null : it[1] ?: null ] 
          }
      }

which creates

map = [a1:b1, a2:b2, a3:null, a4:null, a5:x=y]

Depending how you want to handle the cases "a3" and "a4=" you can also use a slightly shorter version

...
[ (it[0]): (it.size()<2) ? null : it[1] ] 
...

and then you get this:

map = [a1:b1, a2:b2, a3:null, a4:, a5:x=y]
0

I wouldn't suggest using split at all.

Split creates a new string, whereas when creating a collection of environment variables, you would probably want a list of maps.

Tokenize both on the initial break (&) and on the nested break (=). While most interpreters will still work, some may run the split literally, and you'll end up with a list of strings, rather than a list of maps.

def data= "test1=val1&test2=val2"
def map = [:]

map = data.tokenize("&").collectEntries {
    it.tokenize("=").with {
        [(it[0]):it[1]]
    }
}

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.