0

I have the following structure

var nights = [
    { "2016-06-25": 32, "2016-06-26": 151, "2016-06-27": null },
    { "2016-06-24": null, "2016-06-25": null, "2016-06-26": null },
    { "2016-06-26": 11, "2016-06-27": 31, "2016-06-28": 31 },
];

And I want to transform it to:

{ 
    "2016-06-24": [null], 
    "2016-06-25": [32, null], 
    "2016-06-26": [151, null, 11], 
    "2016-06-27": [null, 31], 
    "2016-06-28": [31] 
}

What's the shortest way to solve this? I have no problems with using Underscore, Lodash or jQuery.

My current code is:

var out = {};
for (var i = 0; i < nights.length; i++) {
    for (var key in nights[i]) {
        if (out[key] === undefined) {
            out[key] = [];
        }
        out[key].push(nights[i][key]);
    }
}

It's similar to Convert array of objects to object of arrays using lodash but that has all keys present in each object.

  • What solution do you have? – Dmitri Pavlutin Jun 23 '16 at 10:09
  • Your object has error. You can't use - in key without " or '. – Mohammad Jun 23 '16 at 10:10
  • @DmitriPavlutin Looping over every object in turn, creating a new one. Too messy & dirty to post here, it's an embarrassment – PeterB Jun 23 '16 at 10:11
  • @Tushar code added to the question – PeterB Jun 23 '16 at 10:20
2

You can do it with the following snippet (no need for lodash etc):

const x = [{ '2016-06-25': 32, '2016-06-26': 151, '2016-06-27': null }, { '2016-06-24': null, '2016-06-25': null, '2016-06-26': null }, { '2016-06-26': 11, '2016-06-27': 31, '2016-06-28': 31 }, ];
let y = {};

x.forEach(obj => {
  Object.keys(obj).forEach(key => {
    y[key] = (y[key] || []).concat([obj[key]]);
  });
});

console.log(y)

  • When I run your snippet it gives me two errors as well as the answer (Chrome, latest) – PeterB Jun 23 '16 at 10:25
  • What errors do you get? I do not get any – George Karanikas Jun 23 '16 at 11:19
  • Same error, appearing twice: { "message": "Script error.", "filename": "", "lineno": 0, "colno": 0 } – PeterB Jun 23 '16 at 11:29
  • I cannot reproduce that, I'm sorry. A short google search though shows that there are other users having the same issue with the snippets in stackoverflow. Try running it in the browser's console by copy pasting. You should not get any error then (as this seems to be an issue with stackoverflow) – George Karanikas Jun 23 '16 at 12:43
0

You could iterate over the array and the over the keys of the object and build a new object with the keys as new keys.

var data = [{ '2016-06-25': 32, '2016-06-26': 151, '2016-06-27': null }, { '2016-06-24': null, '2016-06-25': null, '2016-06-26': null }, { '2016-06-26': 11, '2016-06-27': 31, '2016-06-28': 31 }, ],
    result = {};

data.forEach(function (o) {
    Object.keys(o).forEach(function (k) {
        result[k] = result[k] || [];
        result[k].push(o[k]);
    });
});

console.log(result);

0

Used Typescript -- obviously you can remove the types while working in JavaScript.

Assumption: The array of objects coming into the function will always have the same kind and number of object keys

mapperArrayOfJsonsToJsonOfArrays(inputArrayOfJsons: any): any {
    if (inputArrayOfJsons.length > 0) {
        let resultMap = {};
        let keys: any[] = Object.keys(inputArrayOfJsons[0]);
        keys.forEach((key: any) => {
            resultMap[key] = [];
        });

        inputArrayOfJsons.forEach((element: any) => {
            let values: any[] = Object.values(element);
            let index = 0;
            values.forEach((value: any) => {
                resultMap[keys[index]].push(value);
                index = index + 1;
            });
        });
        return resultMap;
    }
    return {};
}
0

Here is my one-liner. Uses map to map keys into array of objects with properties of the keys. Then maps the original array to only that property and sets it as the value of the property. One issue with this way is that it will only use the properties of the first object in the array. So if other objects have properties that aren't in the first object they will be ignored.

const output = Object.assign({}, ...Object.keys(input[0]).map(props => ({[props]: input.map(prop => prop[props])})))

Edit: the output was in the wrong format, fixed

  • Welcome to SO! It's important to add some explanation to your code instead of just supplying a code-only answer. – technogeek1995 Jul 11 at 15:12
  • 1
    Did my best its a little hard to explain – Vladimir Burnin Jul 11 at 15:28

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