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Suppose I have the following object obj:

obj = {
    'key1' : ['1','2','3'],
    'key2' : ['1','2','9'],
    'key3' : ['1','3','5']
}

How can I transform obj into two arrays that look like the following?

allOfTheKeys = ['key1','key2','key3']

allOfTheArrays = ['1','2','3','5','9']
share|improve this question
    
I've posted a tested right solution –  Edgar Villegas Alvarado May 3 '11 at 4:52
    
not sure if it's right but I ended up using for(var k in obj){ allOfTheKeys.push(k); for (var i = 0; i < obj[k].length; i++){ if (allOfTheArrays.indexOf(obj[k][i]) == -1){ allOfTheArrays.push(obj[k][i]); } } } –  fancy May 3 '11 at 5:21

2 Answers 2

up vote 2 down vote accepted

Something like

allKeys = [];
allElems = [];

for(var k in obj){
   allKeys.push(k);
   for(var e in obj[k]){
      allElem.push(e)
   }
}

Actually, in jQuery you can do it more concisely using each() (warning, this isn't tested code):

jQuery.each(obj,function(key){
    allKeys.push(key); 
    jQuery.each(obj[key],function(elem){
        allElems.push(elem);
    }
});

Okay, you don't want repeats, add in

if(!(elem in allElems)) allElems.push(elem);
share|improve this answer
    
It's wrong. It returns repeated values of the array. –  Edgar Villegas Alvarado May 3 '11 at 5:00
1  
well, that was a clear question, wasn't it? –  Charlie Martin May 3 '11 at 5:01
    
@Charlie What I ended up using was based on your solution. for(var k in obj){allOfTheKeys.push(k);for (var i = 0; i < obj[k].length; i++){if (allOfTheArrays.indexOf(obj[k][i]) == -1){allOfTheArrays.push(obj[k][i]);}}} I'm not sure if I was just implementing your short hand stuff wrong but allElem was returning: _atomics,validators,_path,_parent,_schema,_cast,_markModified,_registerAtomic,d‌​oAtomics,push,$push,nonAtomicPush,$pushAll,$pop,$shift,remove,$pull,pull,$pullAll‌​,toObject,0,1,_atomics,validators,_path,_parent,_schema,_cast,_markModified,_regi‌​sterAtomic,doAtomics,push,$push... etc –  fancy May 3 '11 at 5:14
    
@Charlie, your solution returns ['1','2','3','1','2','9','1','3','5'], cause it doesn't take care of repeated values, that's why I downvoted you. Why did you downvoted me? My solution returns exactly what float asked for –  Edgar Villegas Alvarado May 3 '11 at 5:21
    
@Charlie. Let's stop fighting as children hehehe. Cheers :) –  Edgar Villegas Alvarado May 3 '11 at 5:32

As I saw, other answers return repeated values. Here you have the solution (tested):

var allOfTheKeys = [], allOfTheArrays = [], nonRepeatedElems = {};
for(var key in obj){
   allOfTheKeys.push(key);
   for(var i=0; i< obj[key].length; i++)
      nonRepeatedElems[obj[key][i]] = true;
}
for(var e in nonRepeatedElems )
   allOfTheArrays.push(e);

If someone's wondering what nonRepeatedElems is, it's a hash table for the array values, whose key is the array element value. So I don't get repeated elements.

If you want your values to be ordered, just call allOfTheArrays.sort(); in the end.

EDIT: @float, Here you have a more understandable solution:

var allOfTheKeys = [], allOfTheArrays = [];
for(var key in obj){
   allOfTheKeys.push(key);
   for(var i=0; i< obj[key].length; i++){
      var arrayElem = obj[key][i];
      if(!$.inArray(arrayElem, allOfTheArrays)) //Add to the array if it doesn't exist yet
         allOfTheArrays.push(arrayElem);
   }
}
share|improve this answer
    
Hey, sorry Im kinda new at this, I ended up doing: for(var k in obj){ allOfTheKeys.push(k); for (var i = 0; i < obj[k].length; i++){ if (allOfTheArrays.indexOf(obj[k][i]) == -1){ allOfTheArrays.push(obj[k][i]); } } } Can you give me a quick overview of what this portion of you're code does: for(var i=0; i< obj[key].length; i++) nonRepeatedElems[obj[key][i]] = true; and for(var e in nonRepeatedElems ) allOfTheArrays.push(parseInt(e, 10)); I'm guessing it's a better solution then mine but I dont totally understand it. Thanks! –  fancy May 3 '11 at 5:04
    
That's really just exceedingly complex, don't you think? –  Charlie Martin May 3 '11 at 5:04
    
@Charlie, Just give a simpler solution that works and i'll believe you. Why do you downvote if my solution is right? –  Edgar Villegas Alvarado May 3 '11 at 5:17
    
@float, I'm add an explanation to the solution. Cheers –  Edgar Villegas Alvarado May 3 '11 at 5:24
    
Why is this downvoted? It may not be the best solution, but it's certainly not an "unhelpful" or "incorrect" one. –  Lightness Races in Orbit May 3 '11 at 5:45

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