125

I know I'm not supposed to mutate the input and should clone the object to mutate it. I was following the convention used on a redux starter project which used:

ADD_ITEM: (state, action) => ({
  ...state,
  items: [...state.items, action.payload.value],
  lastUpdated: action.payload.date
})

for adding an item - I get the use of spread to append the item in the array.

for deleting I used:

DELETE_ITEM: (state, action) => ({
  ...state,
  items: [...state.items.splice(0, action.payload), ...state.items.splice(1)],
  lastUpdated: Date.now() 
})

but this is mutating the input state object - is this forbidden even though I am returning a new object?

3
  • 1
    Quick question. Splice returns the items that you removed. Is that your intention? If not you should be using slice, which also abides by the no mutations law. – m0meni Jan 3 '16 at 23:15
  • Well in this example I'm splicing the two sections of the array together into a new array - with the item I wanted to remove left out. Slice also returns the removed item right? Only it does so without mutating the original array so that would be the better approach? – CWright Jan 3 '16 at 23:20
  • @AR7 as per your suggestion: items: [...state.items.slice(0, action.payload.value), ...state.items.slice(action.payload.value + 1 )] using slice now instead of splice so as to not mutate the input - is this the way to go or is there a more concise way? – CWright Jan 3 '16 at 23:29
221

No. Never mutate your state.

Even though you're returning a new object, you're still polluting the old object, which you never want to do. This makes it problematic when doing comparisons between the old and the new state. For instance in shouldComponentUpdate which react-redux uses under the hood. It also makes time travel impossible (i.e. undo and redo).

Instead, use immutable methods. Always use Array#slice and never Array#splice.

I assume from your code that action.payload is the index of the item being removed. A better way would be as follows:

items: [
    ...state.items.slice(0, action.payload),
    ...state.items.slice(action.payload + 1)
],
5
  • this doesn't work if we're dealing with the last element in the array, also the use of ... in the second statement will double the content of your state – Thaenor Sep 20 '17 at 16:30
  • 4
    Please prove that with a jsfiddle/codepen example. The snippet arr.slice(arr.length) should always produce an empty array no matter what the contents of arr. – David L. Walsh Sep 21 '17 at 1:37
  • 1
    @david-l-walsh sorry for the confusion, I must've made a typo or something when testing this example. It works wonders. My only question is: why the need of the spread operator ... in the second part - ...state.items.slice(action.payload + 1) – Thaenor Sep 21 '17 at 10:14
  • 6
    Array#slice returns an array. To combine the two slices into a single array, I've used the spread operator. Without it, you would have an array of arrays. – David L. Walsh Sep 21 '17 at 22:45
  • 5
    that makes sense. Thank you very much for clarifying (and sorry for the confusion at first). – Thaenor Sep 22 '17 at 10:53
162

You can use the array filter method to remove a specific element from an array without mutating the original state.

return state.filter(element => element !== action.payload);

In the context of your code, it would look something like this:

DELETE_ITEM: (state, action) => ({
  ...state,
  items: state.items.filter(item => item !== action.payload),
  lastUpdated: Date.now() 
})
3
  • 1
    Does the filter produce a new array? – chenop Oct 19 '17 at 10:50
  • 6
    @chenop Yes, the Array.filter method returns a new array. developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… – Steph M Oct 20 '17 at 16:33
  • 5
    Note that if there are duplicates, this will remove ALL of them. To use filter to remove a specific index, you can use e.g. arr.filter((val, i) => i !== action.payload ) – erich2k8 Jun 25 '18 at 19:05
23

The ES6 Array.prototype.filter method returns a new array with the items that match the criteria. Therefore, in the context of the original question, this would be:

DELETE_ITEM: (state, action) => ({
  ...state,
  items: state.items.filter(item => action.payload !== item),
  lastUpdated: Date.now() 
})
1
  • .filter() is not an ES2015 method, but has been added in the prior version ES5. – morkro Nov 29 '17 at 18:10
9

Another one variation of the immutable "DELETED" reducer for the array with objects:

const index = state.map(item => item.name).indexOf(action.name);
const stateTemp = [
  ...state.slice(0, index),
  ...state.slice(index + 1)
];
return stateTemp;
0
0

The golden rule is that we do not return a mutated state, but rather a new state. Depending on the type of your action, you might need to update your state tree in various forms when it hits the reducer.

In this scenario we are trying to remove an item from a state property.

This brings us to the concept of Redux’s immutable update (or data modification) patterns. Immutability is key because we never want to directly change a value in the state tree, but rather always make a copy and return a new value based on the old value.

Here is an example of how to delete a nested object:

// ducks/outfits (Parent)

// types
export const NAME = `@outfitsData`;
export const REMOVE_FILTER = `${NAME}/REMOVE_FILTER`;

// initialization
const initialState = {
  isInitiallyLoaded: false,
  outfits: ['Outfit.1', 'Outfit.2'],
  filters: {
    brand: [],
    colour: [],
  },
  error: '',
};

// action creators
export function removeFilter({ field, index }) {
  return {
    type: REMOVE_FILTER,
    field,
    index,
  };
}

export default function reducer(state = initialState, action = {}) {
  sswitch (action.type) {  
  case REMOVE_FILTER:
  return {
    ...state,
    filters: {
    ...state.filters,
       [action.field]: [...state.filters[action.field]]
       .filter((x, index) => index !== action.index)
    },
  };
  default:
     return state;
  }
}

To understand this better, make sure to check out this article: https://medium.com/better-programming/deleting-an-item-in-a-nested-redux-state-3de0cb3943da

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