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so when you initialize an array, you can assign multiple values to it in one spot:

int array [] = {1,3,34,5,6}

but what if the array is already initialized and I want to completely replace the values of the elements in that array in one line


int array [] = {1,3,34,5,6}
array [] = {34,2,4,5,6}

doesn't seem to work...

is there a way to do so?

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3 Answers 3

up vote 22 down vote accepted

There is a difference between initialization and assignment. What you want to do is not initialization, but assignment. But such assignment to array is not possible in C++.

Here is what you can do:

#include <algorithm>

int array [] = {1,3,34,5,6};
int newarr [] = {34,2,4,5,6};
std::copy(newarr, newarr + 5, array);

However, in C++0x, you can do this:

std::vector<int> array = {1,3,34,5,6};
array = {34,2,4,5,6};

Of course, if you choose to use std::vector instead of raw array.

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Links to online demos don't work –  Muhammad Annaqeeb Mar 23 '14 at 18:51
std::copy(std::begin(newarr), std::end(newarr), std::begin(array)); would be better, wouldn't it? –  Matt Cruikshank May 12 at 21:01
@MattCruikshank: Yes. But that wasn't possible in C++03. –  Nawaz May 13 at 3:19
Better to use std::array instead of std::vector when it's fixed size. –  o11c Jun 24 at 0:26

You have to replace the values one by one such as in a for-loop or copying another array over another such as using memcpy(..) or std::copy


for (int i = 0; i < arrayLength; i++) {
    array[i] = newValue[i];

Take care to ensure proper bounds-checking and any other checking that needs to occur to prevent an out of bounds problem.

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const static int newvals[] = {34,2,4,5,6};

std::copy(newvals, newvals+sizeof(newvals)/sizeof(newvals[0]), array);
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