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I am new to javascript promises and tried to solve the subsequent problem:

There is a tree with nodes that have a structure like this

node: {id, children:node[]}

one node is received by calling

getNode(id)

where getNode returns a javascript promise

so I get one node object by

getNode(id).then(function(node) {
   id = node.id;
   children = node.children;

})

Now I want to get the whole tree in one object like

treeObject = getTree(rootNodeId)

so that in the end contents of treeObjects should be for example

 {1,children:
         [{2,children
              [{5,null},{6,null},{7,null]},
           {3,children[{8,null},{9,null]}...

??? thanks for any answers!

  • 1
    Sounds like you need a recursive function? – evolutionxbox Oct 21 '17 at 12:40
  • What is children ? – Jonas Wilms Oct 21 '17 at 12:47
  • What issue are you having meeting requirement? – guest271314 Oct 21 '17 at 12:54
  • Is children an array of nodes, or an array of node ids (so that you need to use getNode again)? – Bergi Oct 21 '17 at 15:39
  • node ids. I think Jonas told a good solution. – Wieland Oct 21 '17 at 16:13
3
async function getTree ( id ){
  const node = await getNode(id);
  node.children = await Promise.all( node.children.map(getTree));
  return node;
}

or without async await:

 function getTree ( id ){
  return getNode(id).then(function(node){
   return Promise.all( node.children.map(getTree)).then(function(children){
      node.children = children;
      return node;
   });
 });
}

assuming that children is a list of ids

| improve this answer | |
  • This seems to be a good solution. Unfortunately my browser doesn't support async/await but only Promises. Until now I haven't managed to transform this solution into Promise-only version. Maybe someone could help with this? Thanks for answers in advance! – Wieland Oct 23 '17 at 17:18
  • @Wieland Jonas has updated his answer with a version of the code that doesn't require async. – JLRishe Oct 24 '17 at 5:46
  • @wieland perfect! ;) youre welcome... If this answered your question, feel free to tick the green checkmark... – Jonas Wilms Oct 26 '17 at 5:46

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