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So I made an uninitialized array in C++ and tried printing the last element to see what the output would be. Every element in an uninitialized array should have the value of 0 (right?), but the output I got was something else. This is what the main function looked like:

int main() {
    int i[5];
    cout << i[4] << '\n';
}

Running this outputs 1606416656 (same number every time) with a line break. However, changing '\n' to endl changes the output to 0 with a line break.

Why is that?

Also, trying to print i[3] instead of i[4] correctly outputs 0 even with '\n'. Why?

I did some research and read somewhere that '\n' doesn't "flush the buffer" while endl does. What does this "flushing the stream" actually mean, and is this what's affecting the output?

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1  
Read this article isocpp.org/wiki/faq/input-output#endl-vs-slash-n –  Mantosh Kumar Apr 4 at 11:00
    
int i[5]={}; will initialize your elements to 0. –  user1810087 Apr 4 at 11:06

3 Answers 3

up vote 0 down vote accepted

Your assumption that an newly created array on the stack is initialized with zero does not hold. Therefore your output is random. Changing the program reorders the memory layout and so you see different results.

int main() {
    int i[5];
    for (int k = 0; k < 5; ++k)
        i[k] = 0;
    cout << i[4] << '\n';
}

should give you always the expected result regardless of using '\n' or endl

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Thanks! Your answer made it clear why the value stored in the variable was different when I changed '\n' to endl. –  zenith Apr 4 at 11:30

Every element in an uninitialized array should have the value of 0 (right?)

No, they have an indeterminate value. Using the values gives undefined behaviour, which is why you get unpredictable output.

What does this "flushing the stream" actually mean, and is this what's affecting the output?

When you write to the stream, the output is stored in a memory buffer, and not necessarily sent to the final destination (the console, or a file, or whatever) straight away; this can give a large performance benefit, but can also mean that you don't see the final output when you want to. Flushing the stream pushes the data you've written to the final destination.

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"to the final destination": not quite. It pushes the data to the OS; most OS's also have internal buffering: the OS will (or should) make it look like the data was pushed to the final destination to other programs on the same machine, but if the system crashes, you still have no guarantee that the information has arrived at the final destination. –  James Kanze Apr 4 at 11:08
    
Thanks for the extensive explanation! My presumption was that the uninitialized values would've been 0's since printing all the other elements in the array gave just 0's. But turns out they were just coincidental values, they could've been anything. And the actual reason for affecting the output was not the use of flushing, but the memory layout that was changed when rewriting the code, as my accepted answer explained. –  zenith Apr 4 at 12:00

Your array remains uninitalized. Whatever value you get is coincidental. std::endl puts newline character and flushes the output stream buffer. That is the difference of std::endl manipulator and printing just a newline character.

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Thanks for the answer (although it didn't quite give an explanation to my main question). I now realize that the elements in an uninitialized array are coincidental and not necessarily just 0's. –  zenith Apr 4 at 11:35
    
@zenith Well, flushing the buffer is additional task done by std::endl. This means, whatever you push thoruh for printing to std::cout that remains buffered until full. Flushing makes the actual print to happen. –  Debasish Jana Apr 4 at 11:59
    
You're right, but flushing is not what changed the output from 1606416656 to 0 in my program. –  zenith Apr 4 at 12:28
    
@zecith Yes, but contents are unpredictable because of the uninitialized contents, so contents may vary. –  Debasish Jana Apr 4 at 13:03

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