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char input1;
std::cout << "input1 : ";
std::cin >> input1;

int input2;
std::cout << "input2 : ";
std::cin >> input2;

std::cout << input1 << std::endl;
std::cout << input2 << std::endl;

return 0;

I wrote 'a' at input1 and 'a' at input2.

Ouput is like this.
input1 : a
input2 : a
a
-858993460

I'm curious...'a' charter is 97 in dec. why does it print -858993460? 'a' is not converted to 97 automatically? why?

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1  
'a' is 97 in dec? –  Luchian Grigore Nov 13 '12 at 14:20
1  
@LuchianGrigore I assume OP means the character literal 'a', using ASCII. –  rightføld Nov 13 '12 at 14:24
    
check this answer: stackoverflow.com/a/2410227/516486 –  wenuxas Nov 13 '12 at 14:25
10  
There's a very simple rule you need to follow when using streams: Always check whether input succeeded before you use the values. You failed that, hence the funny results. –  sbi Nov 13 '12 at 14:34

5 Answers 5

up vote 18 down vote accepted

a, as a string, is not convertible to an int by the rules std::cin follows. Consider this: a is not a valid integer in base 10. std::cin will fail to convert the string "a" to an int.

The reason it prints -858993460 is because the int is not initialized, so it could print anything, or nothing, or do whatever it desires (look up undefined behaviour).

Try something like this instead:

char input2_chr;
std::cin >> input2_chr;
int input2 = input2_chr;
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4  
Also, -858993460 is simply 0xCCCCCCCC which is the value your debugger assigned to an uninitialized int. Try using a release build and you will see that the value will change (the variable won't be initialize and contain whatever was at that memory location before). –  emartel Nov 13 '12 at 14:28
1  
I fail to see how it would either kill me or get me pregnant.. –  Default Nov 13 '12 at 14:29
2  
@sbi I'm a dude. That would be some seriously undefined behaviour –  Default Nov 13 '12 at 14:33
1  
@Let_Me_Be and why is failing to parsing an int not an exceptional case? What would you return from a function int parse_int(string) if the conversion fails? –  rightføld Nov 13 '12 at 14:36
4  
@jrok You can simply enable exceptions instead. –  R. Martinho Fernandes Nov 13 '12 at 14:38

I think the input simply failed, and the value you're seeing is the result of undefined behavior (input2 was never written to).

If you try to read an integer, the character 'a' is not valid so it wouldn't be accepted by the >> operator.

You seem to somehow expect that the input should convert the character to the ASCII code for that character in order to give you the integer-typed result you requested. This reasoning is not supported by the language.

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Not undefined behavior, but the value has an indeterminate state because it was never set. Now accessing a value of indeterminate state is undefined behavior. –  Loki Astari Nov 13 '12 at 15:06

In the first, you asked to input a character, so you got the first non-whitespace character in the stream. In the second, you asked to input an integer, so the stream skips whitespace (as it always does with >>) and attempted to parse an integer. Since "a" cannot be the start of an integral value, the stream set an error status (the failbit) and returned, without modifying input2. When you output the uninitialized variable, you have undefined behavior. (You should never use a variable you've input without first checking whether the input succeeded or not.)

From what you describe, it sounds like you are trying to input some binary format. To do that, you must open the stream in binary mode, ensure that it is imbued with the "C" locale, and then use istream::get or istream::read. (Of course, you have to know what the binary format is that you are reading, in order to be able to convert the unformatted bytes you read into the actual information you need.)

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As e.g. Aardvard already has answered, you're seeing an arbitrary original value, in the C++ standard called an indeterminate value, because the input operation failed and input2 was not assigned a new value.

To output a decimal representation of the value of a char variable, simply convert it to int in order to direct the output stream to treat as integer.

The easiest way to convert it to int is to encourage an implicit promotion by using the variable in an expression, such as simply adding a + sign in front of it:

#include <iostream>
using namespace std;

int main()
{
    char const  ch  = 'a';
    cout << "'" << ch << "' = " << +ch << endl;
}

Output:

'a' = 97
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Because you are reading an integer at input2. a isn't an integer. Therefore nothing will be read, and the original value of input2 will be maintained.

In this case, it will be some random value, cause input2 isn't initialized.

You can check whether the read succeeded by checking cin.good()

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