Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Using jQuery - I would like to compare 2 JSON arrays:

origArray comes from the database/C# API:

var origArray = [   {
        "TypeName": "Single",
        "TypeID": "3121",
        "TypeCount": "2"
        },
    {
        "TypeName": "Double",
        "TypeID": "4056",
        "TypeCount": "2"
        },
    {
        "TypeName": "Family",
        "TypeID": "5654",
        "TypeCount": "4"
        }
];

userArray is gathered from user input:

var userArray = [   {
        "TypeID": "3121",
        "TypeCount": "2"
        },
    {
        "TypeID": "4056",
        "TypeCount": "3"
        },
    {
        "TypeID": "3121",
        "TypeCount": "3"
        }
];

What I would like to do, is loop through the userArray, and "group" by the TypeID, and Sum the TypeCount.

So in the example above:

TypeID: 3121
TypeCount: 5 (ie. 2 + 3)

TypeID: 4056
TypeCount: 3

Meaning there would be a difference of 3 over for TypeID 3121 and 1 over for 4056.

Is there any way of getting that information out of either jQuery or native Javascript (that would work cross-browser)?

Thanks for any help,

Mark

share|improve this question
add comment

5 Answers

up vote 1 down vote accepted

Define a function to group by each array by TypeID and sum TypeCount:

function groupByTypeID (arr) {
    var groupBy = {};
    $.each(arr, function () { 
      var currentCount = groupBy[this.TypeID] || 0; 
      groupBy[this.TypeID] = currentCount + parseInt(this.TypeCount);
    });
    return groupBy;
}

Then, group both arrays, and take their differences:

var userArrayGroups = groupByTypeID(userArray);
var origArrayGroups = groupByTypeID(origArray);

var diff = {};
for (var prop in userArrayGroups) {
  diff[prop] = userArrayGroups[prop] - origArrayGroups[prop];
}

diff will then hold the following:

{
  3121: 3
  4056: 1
}

DEMO.

share|improve this answer
add comment

If you are familiar with C# this js library - linqjs. It contains implementations of all .NET 4.0 LINQ methods and many extra methods.

share|improve this answer
add comment

You can do it with Underscore:

var result = _.chain(userArray)
    .groupBy(function(value) {
      // group by the TypeId
      return value.TypeID;
    })
    .map(function(value) {
      // iterate over every group
      var addition = _.chain(value)
        .pluck("TypeCount") // create an array with TypeCount values
        .reduce(function(memo, num) {
          return Number(memo) + Number(num); // add all the TypeCount values
        })
        .value();

      return {
        "TypeID": value[0].TypeID, // TypeID
        "TypeCount": addition // total addition for this TypeID
      };
    })
    .value();

Working example here: http://livecoding.io/3498441

share|improve this answer
add comment

I'll have a shot at it...

var mergeArray = []
var index;

for (var i = userArray.length - 1; i >= 0; i--) {
    index = findByTypeID(mergeArray, userArray[i].TypeID);
    if(!index){
        mergeArray[index].TypeCount += parseInt(userArray[i].TypeCount)
    } else{
        mergeArray.push({
            "TypeID": userArray[i].TypeID,
            "TypeCount": parseInt(userArray[i].TypeCount)
        });
   }
};

function findByTypeID(arr, id){
    for (var i = arr.length - 1; i >= 0; i--) {  
        if(arr[i].TypeID == id)
             return i;
    };
    return -1;
}

This gives you your desired data structure output inside mergeArray

share|improve this answer
add comment
result = {};
for (var i in userArray) {
    var elem = userArray[i]
    if (!result[elem.TypeID])
      result[elem.TypeID] = elem.TypeCount;
    else
      result[elem.TypeID] += elem.TypeCount;
}

return result;
share|improve this answer
    
This doesn't work -perhaps you could link to a working demo? –  Gabriel Florit Aug 28 '12 at 14:38
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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