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I'm new to React and I am creating an application where I am using a quite big state with frequent updates. Using useState() I understand it will replace the whole object on every update. If that means it will make a full copy of the object, there will be a severe performance hit in m case. If it is some lazy evaluation, I think I might be fine, hence my question.

Contrary, if I would use the old class based setState() method, I could update only the necessary parts of the state. For instance, my data structure looks something like this:

{
    'data0': { ... some not very deep object ...},
    'data1': { ... },
    'data2': { ... },
    ...,
    'dataN': { ... },
}

where I can potentially have thousands of data objects. As the data objects are quite small, replacing them when needed is not that much of a performance hit, which is perfectly doable with setState() in a class, but how is this going to work if using the useState() hook?

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U can spread previous state with usestate and u will get same result as setstate

Usestate([
 ...state,
    Data6
])
  • I understand that will give me the same result, but will it be as efficient? Does the ...state practise some lazy evaluation technique rather than copy all data in the object? Oh, and I'm using it on an object, not an array, if that matters. – Johan Jan 14 at 20:46

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