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I defined the recursive domain class in grails:

class Work {

  String code
  String title
  String description
  static hasMany = [subWorks:Work]
  static mappedBy = [subWorks: 'parentWork']

  Work getRootWork(){
    if(parentWork) return parentWork.getRootWork()
      else return this
  }

  boolean isLeafWork(){
    return subWorks.isEmpty()
  }

  boolean isRootWork(){
    return !parentWork
  }

I have a list of Works, but the hierarchy structure is not built yet. The structure looks like:

def works = [new Work(code:'A', title:'TitleA'), 
    new Work(code:'B', title:'TitleB'), 
    new Work(code:'A.1', title:'Titile A.1'), 
    new Work(code:'B.1', title:'Title B.1'),
    new Work(code:'B.2', title:'Title B.2'),
    new Work(code:'B.3', title:'Title B.3'), 
    new Work(code:'B.2.2', title:'Title B.2.2'),
    new Work(code:'B.2.3', title:'Title B.2.3'),
    new Work(code:'A.1.1', title:'Title A.1.1'),
    new Work(code:'A.1.2', title:'Title A.1.2'),]

What I need is to build the hierarchical relationship among these works, based on the code hinted. e.g. A.1 is the first child work of A; B.1.1 is the first child of B.1 work, whose parent is B work. I know that Groovy supports recursive closures to build this kind of hierarchical structure. How do I achieve my goal using Groovy recursive closure, such as the JN2515 Fibonacci number example, in Groovy official documentation? Many thanks!

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2 Answers 2

up vote 3 down vote accepted

like this...?

def root = new Work(code:'*', title:'ROOT')

def build 

build = { p, list ->
  list.groupBy{it.code.split('\\.').first()}.each{ el, sublist ->
    el = sublist[0]        
    el.parentWork = p
    if(sublist.size()>1){
        build(el, sublist[1..-1] )
    }
  }

}
build(root, works.sort{it.code.length()})

if I'm not in error even in this anonim form may work

def root = new Work(code:'*', title:'ROOT')

{ p, list ->
  list.groupBy{it.code.split('\\.').first()}.each{ el, sublist ->
    el = sublist[0]        
    el.parentWork = p
    if(sublist.size()>1){
      call(el, sublist[1..-1] )
    }
  }

}(root, works.sort{it.code.length()})
share|improve this answer
    
Many thanks for the enlightened code. The above code works for the sample list: works. What if I need A.1.2 work belong to A.1; A.2.2 work is the second child of A.2? Just slightly edit my question. –  Yi. Apr 13 '13 at 4:18
    
If you want subWorks in an ordered fashion you have to change your data structure. Look here, grails.org/doc/latest/guide/GORM.html#sets,ListsAndMaps. I think you want to use SortedSet and implement compareTo method in the Work class. –  Fabiano Taioli Apr 13 '13 at 8:21

I am a bit rusty with Grails, but i seem to remember that it managed mapped collections in an intelligent way, such that if you do: work1.parentWork = work2 then work1 in work2.subWorks will verify. If that's the case, all you need to do is set the parentWork for every work, and you don't need to do any complicated computation for this: the parent work of X.Y.Z will be X.Y, and the parent work of X will be none:

def works = [new Work(code:'A', title:'TitleA'),
    new Work(code:'B', title:'TitleB'),
    new Work(code:'A.1', title:'Titile A.1'),
    new Work(code:'B.1', title:'Title B.1'),
    new Work(code:'A.1.1', title:'Title A.1.1')]

def worksByCode = works.collectEntries { [it.code, it] }

works.each {
    if (it.code.contains('.')) {
        def parentCode = it.code[0..it.code.lastIndexOf('.') - 1]
        it.parentWork = worksByCode[parentCode]
    }
}
share|improve this answer
    
It looks also very brilliant! –  Yi. Apr 13 '13 at 7:11

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