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This is my test code

#include<iostream>
using namespace std;
int main() 
{
uint8_t a;
while(1)
{
    cin>>a;
    if(a == 0) break;
    cout<<"Input is "<<a<<endl;
}
}  

When I execute (with my inputs), this is what I get

1
Input is 1
2
Input is 2
12
Input is 1
Input is 2
0
Input is 0
3  
Input is 3

Problem1: It takes input 12 as two separate inputs

Problem2: Condition if a==0 doesn't work

What might be the problems?

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2  
Short answer: yes, it is a bug in the spec :( –  Matthieu M. Jul 3 '12 at 10:48

2 Answers 2

up vote 4 down vote accepted

uint8_t is a typedef for an unsigned char. This means that one character will be read from cin.

When "0" is read it is actually the ascii value of the character '0' commonly 48, which is not zero hence the equality check fails.

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Thanks for the info. I want to know if we have any datatype to store small numbers. –  jaffa Jul 3 '12 at 10:29
    
@neeradkumar, you can use uint8_t to store small numbers but not to read it using cin. –  hmjd Jul 3 '12 at 10:33
1  
I want to read numbers from cin in my code. I guess I can take input to a int and then equal it to a uint8_t ? –  jaffa Jul 3 '12 at 10:35
1  
yes, but check the that value of the read uint16_t or int can fit in a uint8_t before assigning. –  hmjd Jul 3 '12 at 10:36
2  
uint8_t v = static_cast<uint8_t>(i); where the value of i is a valid value (0 - 255) for a uint8_t. –  hmjd Jul 3 '12 at 10:52

uint8_t is the same as a char, so trying to extract one from cin probably just gives you the next character to be typed.

The values to receive are then not character-translated-to-int, but the ascii values of the inputs. When you type 0 you're getting ascii \0 rather than int zero, so your test for zero isn't triggered. Try if( a == '0') to see what I mean.

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Thanks for the reply. if( a == '\0') doesn't work. But if(a == 48) works –  jaffa Jul 3 '12 at 10:32
    
My bad. Should have been if(a == '0'). Updated my answer. –  RobH Jul 3 '12 at 10:35

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