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#include <iostream>

int main()
    int a;
    int *p = &a;
    std::cout << *p << "\n";

In this program, when I leave a uninitialized and try getting the output of the pointer, it gives me -2. But when I initialize a with a value, printing *p gives me that value. Why does it give -2 when I leave a uninitialized?

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The question could also be why not ? Undefined Behavior. –  JBL Jun 7 '13 at 7:24
John Bradshaw Layfield, is that you? –  Judas Jun 7 '13 at 7:29
Nasal demons! –  BoBTFish Jun 7 '13 at 7:32

3 Answers 3

up vote 6 down vote accepted

Because using uninitialized variables, whether direct or indirect (through a pointer or reference), is undefined behavior[1][2][3].

[1] This basically means that those uninitialized variables would have indeterminate values.
[2] I'm sure you'll never like undefined behavior anywhere in your code.
[3] Golden rule: beware of undefined behavior.

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a is allocated on stack. It contains whatever was there by chance, when it got allocated. Unlike global, local variables in C are not implicitly initialized to 0 (or anything else).

Probably if you run program multiple times, it will give different value (or not).

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it is illegal in c++ to assign a pointer to a undefined value . a is uninitialized . When you are dereferencing it , it just points to a garbage value .

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