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in c++, is it okay to compare an int to a char because of implicit type casting? Or am I misunderstanding the concept?

For example, can I do

int x = 68;
char y;
std::cin >> y;
//Assuming that the user inputs 'Z';
if(x < y) 
{
 cout << "Your input is larger than x";
}

Or do we need to first convert it to an int?

so

 if(x < static_cast<int>(y)) 
{
 cout << "Your input is larger than x";
}
share|improve this question
2  
Beware that it is permissible that sizeof(int) == 1 and that char is unsigned, in which case both sides get converted to unsigned int. That's unusual, though. – Kerrek SB Apr 5 '14 at 16:24
1  
Please avoid magic numbers, write what you mean: Not 68 but 'D'. Also, even if sizeof(int)>1, beware of implementation defined signedness of char. – Deduplicator Apr 5 '14 at 16:29
up vote 1 down vote accepted

Yes you can compare an int to some char, like you can compare an int to some short, but it might be considered bad style. I would code

if (x < (int)y) 

or like you did

if (x < static_cast<int>(y))

which I find a bit too verbose for that case....

BTW, if you intend to use bytes not as char consider also the int8_t type (etc...) from <cstdint>

Don't forget that on some systems, char are signed by default, on others they are unsigned (and you could explicit unsigned char vs signed char).

share|improve this answer
    
Never knew that to be bad style. Just that generally comparing different type values is error-prone. – Deduplicator Apr 5 '14 at 16:32
3  
Gratuitous casts (especially C-style ones) are often considered bad style. – Alan Stokes Apr 5 '14 at 16:34
    
@Alan: Hm, my comment was in line with you, while i posted. Later edits to the answer though changed that. Damn. – Deduplicator Apr 5 '14 at 17:07

The problem with both versions is that you cannot be sure about the value that results from negative/large values (the values that are negative if char is indeed a signed char). This is implementation defined, because the implementation defines whether char means signed char or unsigned char.

The only way to fix this problem is to cast to the appropriate signed/unsigned char type first:

if(x < (signed char)y)

or

if(x < (unsigned char)y)

Omitting this cast will result in implementation defined behavior.

Personally, I generally prefer use of uint8_t and int8_t when using chars as numbers, precisely because of this issue.

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Your code will compile and work, for some definition of work.

Still you might get unexpected results, because y is a char, which means its signedness is implementation defined. That combined with unknown size of int will lead to much joy.

Also, please write the char literals you want, don't look at the ASCII table yourself. Any reader (you in 5 minutes) will be thankful.

Last point: Avoid gratuituous cast, they don't make anything better and may hide problems your compiler would normally warn about.

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The code you suggest will compile, but I strongly recommend the static_cast version. Using static_cast you will help the reader understand what do you compare to an integer.

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