120

I'd like to start using ES6 Map instead of JS objects but I'm being held back because I can't figure out how to JSON.stringify() a Map. My keys are guaranteed to be strings and my values will always be listed. Do I really have to write a wrapper method to serialize?

  • 1
    interesting article on the topic 2ality.com/2015/08/es6-map-json.html – David Chase Apr 4 '18 at 15:58
  • I was able to get this to work. The results are on Plunkr at embed.plnkr.co/oNlQQBDyJUiIQlgWUPVP. The solution uses a JSON.stringify(obj, replacerFunction) which checks to see if a Map object is being passed and converts the Map object to a Javascript object (that JSON.stringify) will then convert to a string. – PatS Apr 10 '18 at 22:05
  • 1
    If your keys are guaranteed to be strings (or numbers) and your values arrays, you can do something like [...someMap.entries()].join(';'); for something more complex you could try something similar using something like [...someMap.entries()].reduce((acc, cur) => acc + `${cur[0]}:${/* do something to stringify cur[1] */ }`, '') – user56reinstatemonica8 May 10 '18 at 8:42
  • @Oriol What if it is possible for key name to be same as default properties? obj[key] may get you something unexpected. Consider the case if (!obj[key]) obj[key] = newList; else obj[key].mergeWith(newList);. – Franklin Yu Nov 20 '18 at 15:20
93

Both JSON.stringify and JSON.parse support a second argument. replacer and reviver respectively. With replacer and reviver below it's possible to add support for native Map object, including deeply nested values

function replacer(key, value) {
  if(value instanceof Map) {
    return {
      dataType: 'Map',
      value: Array.from(value.entries()), // or with spread: value: [...value]
    };
  } else {
    return value;
  }
}
function reviver(key, value) {
  if(typeof value === 'object' && value !== null) {
    if (value.dataType === 'Map') {
      return new Map(value.value);
    }
  }
  return value;
}

Usage:

const originalValue = new Map([['a', 1]]);
const str = JSON.stringify(originalValue, replacer);
const newValue = JSON.parse(str, reviver);
console.log(originalValue, newValue);

Deep nesting with combination of Arrays, Objects and Maps

const originalValue = [
  new Map([['a', {
    b: {
      c: new Map([['d', 'text']])
    }
  }]])
];
const str = JSON.stringify(originalValue, replacer);
const newValue = JSON.parse(str, reviver);
console.log(originalValue, newValue);
  • 9
    This IS the best response so far – Manuel Vera Silvestre Aug 17 '19 at 9:32
  • 1
    Definitely the best answer here. – JavaRunner May 16 '20 at 22:57
  • 1
    Just marked this as correct. While I don't like the fact you have to "dirty up" the data across the wire with a non-standardized dataType, I can't think of a cleaner way. Thanks. – rynop Oct 9 '20 at 18:07
  • 2
    @Pawel what is the reason for using this[key] instead of value? – JimiDini Jan 21 at 14:59
  • 1
    @JimiDini good point, updated. Now if someone wants to declare these as arrow functions it won't mess with the scope – Pawel yesterday
79

You can't directly stringify the Map instance as it doesn't have any properties, but you can convert it to an array of tuples:

jsonText = JSON.stringify(Array.from(map.entries()));

For the reverse, use

map = new Map(JSON.parse(jsonText));
  • 6
    This does not convert to a JSON object, but instead to an Array of arrays. Not the same thing. See Evan Carroll's answer below for a more complete answer. – Sat Thiru May 8 '19 at 14:52
  • 3
    @SatThiru An array of tuples is the customary representation of Maps, it goes well with the constructor and iterator. Also it is the only sensible representation of maps that have non-string keys, and object would not work there. – Bergi May 8 '19 at 16:42
  • Bergi, please note that OP said "My keys are guaranteed to be strings". – Sat Thiru May 10 '19 at 17:20
  • 5
  • @Bergi Stringify doesn't work if the key is an object e.g. "{"[object Object]":{"b":2}}" - object keys being one of the main features of Maps – Drenai Mar 13 '20 at 14:46
67

You can't.

The keys of a map can be anything, including objects. But JSON syntax only allows strings as keys. So it's impossible in a general case.

My keys are guaranteed to be strings and my values will always be lists

In this case, you can use a plain object. It will have these advantages:

  • It will be able to be stringified to JSON.
  • It will work on older browsers.
  • It might be faster.
  • 35
    for the curious-in the latest chrome, any map serializes into '{}' – Capaj Jan 6 '16 at 16:20
  • I have explained here what exactly I meant when I said "you can't". – Oriol Jan 29 '16 at 6:20
  • 9
    "It might be faster" - Do you have any source on that? I'm imagining a simple hash-map must be faster than a full blown object, but I have no proof. :) – Lilleman Feb 11 '16 at 18:01
  • 1
    @Xplouder That test uses expensive hasOwnProperty. Without that, Firefox iterates objects much faster than maps. Maps are still faster on Chrome, though. jsperf.com/es6-map-vs-object-properties/95 – Oriol Mar 18 '16 at 13:49
  • 1
    True, seems that Firefox 45v iterates objects away faster than Chrome +49v. However Maps still wins vs objects in Chrome. – Xplouder Mar 18 '16 at 19:52
18

While there is no method provided by ecmascript yet, this can still be done using JSON.stingify if you map the Map to a JavaScript primitive. Here is the sample Map we'll use.

const map = new Map();
map.set('foo', 'bar');
map.set('baz', 'quz');

Going to an JavaScript Object

You can convert to JavaScript Object literal with the following helper function.

const mapToObj = m => {
  return Array.from(m).reduce((obj, [key, value]) => {
    obj[key] = value;
    return obj;
  }, {});
};

JSON.stringify(mapToObj(map)); // '{"foo":"bar","baz":"quz"}'

Going to a JavaScript Array of Objects

The helper function for this one would be even more compact

const mapToAoO = m => {
  return Array.from(m).map( ([k,v]) => {return {[k]:v}} );
};

JSON.stringify(mapToAoO(map)); // '[{"foo":"bar"},{"baz":"quz"}]'

Going to Array of Arrays

This is even easier, you can just use

JSON.stringify( Array.from(map) ); // '[["foo","bar"],["baz","quz"]]'
17

Using spread sytax Map can be serialized in one line:

JSON.stringify([...new Map()]);

and deserialize it with:

let map = new Map(JSON.parse(map));
  • 1
    This'll work for a one-dimensional Map, but not for an n-dimensional map. – mattsven May 12 '20 at 19:01
7

Stringify a Map instance (objects as keys are OK):

JSON.stringify([...map])

or

JSON.stringify(Array.from(map))

or

JSON.stringify(Array.from(map.entries()))

output format:

// [["key1","value1"],["key2","value2"]]
4

Below solution works even if you have nested Maps

function stringifyMap(myMap) {
    function selfIterator(map) {
        return Array.from(map).reduce((acc, [key, value]) => {
            if (value instanceof Map) {
                acc[key] = selfIterator(value);
            } else {
                acc[key] = value;
            }

            return acc;
        }, {})
    }

    const res = selfIterator(myMap)
    return JSON.stringify(res);
}
  • Without testing your answer, I already appreciate how it brings attention to the problem of nested Maps. Even if you successfully convert this to JSON, any parsing done in the future has to have explicit awareness that the JSON was originally a Map and (even worse) that each sub-map (it contains) was also originally a map. Otherwise, there's no way to be sure that an array of pairs isn't just intended to be exactly that, instead of a Map. Hierarchies of objects and arrays do not carry this burden when parsed. Any proper serialization of Map would explicitly indicate that it is a Map. – Lonnie Best Nov 30 '19 at 6:53
  • More about that here. – Lonnie Best Nov 30 '19 at 9:06
4

A Better Solution

    // somewhere...
    class Klass extends Map {

        toJSON() {
            var object = { };
            for (let [key, value] of this) object[key] = value;
            return object;
        }

    }

    // somewhere else...
    import { Klass as Map } from '@core/utilities/ds/map';  // <--wherever "somewhere" is

    var map = new Map();
    map.set('a', 1);
    map.set('b', { datum: true });
    map.set('c', [ 1,2,3 ]);
    map.set( 'd', new Map([ ['e', true] ]) );

    var json = JSON.stringify(map, null, '\t');
    console.log('>', json);

Output

    > {
        "a": 1,
        "b": {
            "datum": true
        },
        "c": [
            1,
            2,
            3
        ],
        "d": {
            "e": true
        }
    }

Hope that is less cringey than the answers above.

  • I'm not sure that many will be satisfied with extending the core map class just to serialize it to a json... – vasia Apr 5 '20 at 21:36
  • 1
    They don't have to be, but it's a more SOLID way of doing it. Specifically, this aligns with the LSP and OCP principles of SOLID. That is, the native Map is being extended, not modified, and one can still use Liskov Substitution (LSP) with a native Map. Granted, it's more OOP than a lot of novices or staunch Functional Programming people would prefer, but at least it's beset upon a tried & true baseline of fundamental software design principles. If you wanted to implement Interface Segregation Principle (ISP) of SOLID, you can have a small IJSONAble interface (using TypeScript, of course). – Cody Apr 5 '20 at 22:47
4

Given your example is a simple use case in which keys are going to be simple types, I think this is the easiest way to JSON stringify a Map.

JSON.stringify(Object.fromEntries(map));

The way I think about the underlying data structure of a Map is as an array of key-value pairs (as arrays themselves). So, something like this:

const myMap = new Map([
     ["key1", "value1"],
     ["key2", "value2"],
     ["key3", "value3"]
]);

Because that underlying data structure is what we find in Object.entries, we can utilize the native JavaScript method of Object.fromEntries() on a Map as we would on an Array:

Object.fromEntries(myMap);

/*
{
     key1: "value1",
     key2: "value2",
     key3: "value3"
}
*/

And then all you're left with is using JSON.stringify() on the result of that.

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