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Every now and then I need to call new[] for built-in types (usually char). The result is an array with uninitialized values and I have to use memset() or std::fill() to initialize the elements.

How do I make new[] default-initialize the elements?

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4 Answers 4

36

int* p = new int[10]() should do.

However, as Michael points out, using std::vector would be better.

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  • 6
    You can also the c++11 uniform initialization syntax: new int[10]{}. May 22, 2015 at 19:27
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    @Fernando: You can now, thanks for pointing this out. You'd have had a hard time finding a compiler that accepted that in May 2010, though. :)
    – sbi
    May 23, 2015 at 6:49
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Why don't you just use std::vector? It will do that for you, automatically.

std::vector<int> x(100); // 100 ints with value 0
std::vector<int> y(100,5); // 100 ints with value 5

It is also important to note that using vectors is better, since the data will be reliably destructed. If you have a new[] statement, and then an exception is subsequently thrown, the allocated data will be leaked. If you use an std::vector, then the vector's destructor will be invoked, causing the data to be properly deallocated.

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  • 4
    I totally agree that vector is often better, but still I want new[]. +1 anyway.
    – sharptooth
    Mar 22, 2010 at 14:57
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This relatively old topic can now be enhanced by another variant. I was using bool, because there is a quite strange specialization for vector<bool>

#include <memory>
...
unique_ptr<bool[]> p{ new bool[count] {false} };

this can now be accessed with the operator[]

p[0] = true;

just like std::vector<T> this is exception safe.

(I suppose this wasn't possible back at 2010 :) )

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Primitive type default initialization example:

int* p = new int[5];          // gv gv gv gv gv (gv - garbage value)
int* p = new int[5]();        // 0  0  0  0  0 
int* p = new int[5]{};        // 0  0  0  0  0  (Modern C++)
int* p = new int[5]{ 1,2,3 }; // 1  2  3  0  0  (Modern C++)

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