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Hi I have a very long list of key value pairs in json key:value, key:value and so on

car <--> wheel
wheel <--> tyre
bed <--> sheets
guitar <--> strings
guitar <--> pickup
tyre <--> rubber

What I want is to group all relations into arrays no matter how distant like this

[car, wheel, tyre, rubber]
[guitar, strings, pickup]
[bed, sheets]

What is an efficient way to do this with Javascript?

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1  
Why the java tag? what does this have to do with programming in the Java programming language? –  Hovercraft Full Of Eels Aug 20 '12 at 22:27
    
tyre -> tire –  elclanrs Aug 20 '12 at 22:28
1  
What do you mean "in json". Do you mean you have an array of single-property objects? And is it actual JSON - a string that will need to be parsed - or an array or object? Please show your actual input. @elclanrs: "tyre" is the correct spelling where I live... –  nnnnnn Aug 20 '12 at 22:29
1  
What would you want to do if the item "truck -> wheel" was added to your sample input above? Can "wheel" be in two output arrays at once? (Also, I don't think people are actually angry about the Java thing - at least I'm not. We're just trying to make sure the appropriate tags apply, which is why I removed the Java tag. If you'd like to put it back that's fine, but perhaps edit your question to ask for a solution in either language...) –  nnnnnn Aug 20 '12 at 22:38
1  
If you really need an efficient algorithm, what you're trying to do is called "partitioning an undirected and unweighted graph". Efficient and correct language agnostic algorithms exist that you don't need to reinvent. –  goat Aug 20 '12 at 23:57

2 Answers 2

First of all, I would store the relationships as arrays so that you can have duplicate "keys." Key methods: an initial dictionary including every word related to each individual word; a recursive chain expander using map and reduce; filtering chains based on equivalency.

Array.prototype.getUnique = function(){
   var u = {}, a = [];
   for(var i = 0, l = this.length; i < l; ++i){
      if(u.hasOwnProperty(this[i])) {
         continue;
      }
      a.push(this[i]);
      u[this[i]] = 1;
   }
   return a;
}
var links = {};
var pairs = [
    ["car", "wheel"],
    ["wheel", "tyre"],
    ["bed", "sheets"],
    ["guitar", "strings"],
    ["guitar", "pickup"],
    ["rubber", "tyre"],
    ["truck", "wheel"],
    ["pickup", "car"]
];
pairs.map(function(pair) {
    links[pair[0]] = links[pair[0]] || [];
    links[pair[1]] = links[pair[1]] || [];

    links[pair[0]].push(pair[1]);
    links[pair[1]].push(pair[0]);
});
var append = function(list) {
    var related = list.map(function(item) {
        return links[item];
    }).reduce(function(listA, listB) {
        return listA.concat(listB);
    }).filter(function(item) {
        // make sure related only includes new links
        return list.indexOf(item) == -1
    }).getUnique();

    return related.length ? append(list.concat(related)) : list.concat(related);
};
var branches = [];
for( var word in links ) {
    branches.push(append(links[word].concat(word)));
}
var compareArrays = function(listA, listB) {
    if( listA.length != listB.length ) return false;
    return listA.map(function(element) {
        if( listB.indexOf(element) == -1 ) return 0;
        return 1;
    }).filter(function(el) {
        return el == 1;
    }).length == listA.length;
};
var _branches = branches;
var chains = branches.filter(function(branch1, i) {     
    var isUnique = _branches.filter(function(branch2) {
        // are they equivalent
        return compareArrays(branch1, branch2);
    }).length == 1; 
    delete _branches[i];
    return isUnique;
});
share|improve this answer
    
this seems to give me 4 empty arrays and an array containing just rubber jsfiddle.net/r4tdN –  user759885 Aug 20 '12 at 22:58
    
thanks for the heads up, it's now fully working - at least with the example. –  matt3141 Aug 20 '12 at 23:04
    
Sometimes the relationships are quite deep. How do I know how many times to loop through match_chain so that it does not miss these out? jsfiddle.net/smghf –  user759885 Aug 20 '12 at 23:29
    
It cycles through all chains including either of the pair in the relationship. I don't understand the issue. –  matt3141 Aug 20 '12 at 23:36
    
jsfiddle.net/smghf "pickup" ends up in two arrays –  user759885 Aug 20 '12 at 23:39

I'd go with a map of words, linking the sets they are currently in. The map (a javascript object) with nearly O(1) runtime for accessing a key should help the performance. Start with the same format as proposed by @matt3141:

var pairs = [
    ["car", "wheel"],
    ["wheel", "tyre"],
    ["bed", "sheets"],
    ["guitar", "strings"],
    ["guitar", "pickup"],
    ["rubber", "tyre"],
    ["truck", "wheel"],
    ["pickup", "car"]
];

var setsByWord = {};
for (var i=0; i<pairs.length; i++) {
    var pair = pairs[i];
    if (pair[0] in setsByWord && pair[1] in setsByWord) {
        // both words are already known
        if (setsByWord[pair[0]] === setsByWord[pair[1]]) {
             ; // We're lucky, they are in the same set
        } else {
             // combine the two sets
             var sets = [setsByWord[pair[0]], setsByWord[pair[1]]];
             var larger = sets[1].length > sets[0].length ? sets[1] : sets[0],
                 smaller = sets[+(larger===sets[0])];
             for (var j=0; j<smaller.length; j++)
                 setsByWord[smaller[j]] = larger;
             Array.prototype.push.apply(larger, smaller);
        }
    } else {
        // add the missing word to the existing set
        // or create a new set
        var set = setsByWord[pair[0]] || setsByWord[pair[1]] || [];
        if (!(pair[0] in setsByWord)) {
            set.push(pair[0]);
            setsByWord[pair[0]] = set;
        }
        if (!(pair[1] in setsByWord)) {
            set.push(pair[1]);
            setsByWord[pair[1]] = set;
        }
    }
}
return setsByWord;

This will split your graph in its connected components (In the setsByWord object these component arrays are indexed by the nodes):

> var results = [];
> for (var word in setsByWord)
>     if (results.indexOf(setsByWord[word])<0)
>         results.push(setsByWord[word]);
> return results;

[
    ["car","wheel","tyre","rubber","truck","guitar","strings","pickup"],
    ["bed","sheets"]
]

If you have a directed graph, and want arrays of all successors by word, you could use this:

var pairs = […],
    graph = pairs.reduce(function(map, pair) {
         (map[pair[0]] || (map[pair[0]] = [])).push(pair[1]);
         return map;
    }, {});

var successors = {};
for (var word in graph) (function getSuccessors(word) {
    if (word in successors)
        return successors[word];
    successors[word] = [true]; // some marker against circles
    return successors[word] = word in graph
        ? [].concat.apply(graph[word], graph[word].map(getSuccessors))
        : [];
})(word);
return successors;

If you are sure to have no circles in the graph and only want lists for the beginners of paths, you might add this:

var results = [];
for (var word in successors)
    for (var i=0; word in successors && i<successors[word].length; i++)
        delete successors[successors[word][i]];
for (var word in successors)
    results.push([word].concat(successors[word]));
return results;

// becomes:
[
   ["bed","sheets"],
   ["guitar","strings","pickup","car","wheel","tyre"],
   ["rubber","tyre"],
   ["truck","wheel","tyre"]
]
share|improve this answer
    
It appears the OP would rather only have the unique sets, you can see how I implemented this with compareArrays, branches.filter, etc. –  matt3141 Aug 21 '12 at 4:53
    
In my first solution the sets are unique, with the second approach this if not a must of course - the OP needs to explain his needs more exact. –  Bergi Aug 21 '12 at 11:29

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