Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

For example:

short a = 10;
int b = a & 0xffff;

Similarly if I want to convert from int to short, how do I do using bitwise operators? I don't want to use the usual casting using (short).

share|improve this question
    
Related: size of int, long, etc. –  Drux Apr 3 '14 at 6:20
1  
There is nothing to do here; it's simply int b = a; or short a = b;. –  Oliver Charlesworth Apr 3 '14 at 6:22
1  
Why don't you want to use a cast? –  EJP Apr 3 '14 at 6:23

4 Answers 4

If you want sign extension:

int b = a;

If you don't (i.e. negative values of a will yield (weird) positive values of b)

// note that Standard Conversion of shorts to int happens before &
int b = a & std::numeric_limits<unsigned short>::max();
share|improve this answer

Doing bit-operations on signed types may not be a good idea and lead to surprising results: Bitwise operation on signed integer. Why do you need bit-operations?

short int2short(int x) {
    if (x > std::numeric_limits<short>::max()) {
        // what to do now? Throw exception, return default value ...
    }
    else if (x < std::numeric_limits<short>::min()) {
        // what to do now? Throw exception, return default value ...
    } else
    {
        return static_cast<short>(x);
    }
} 

This could generalized into a template method and also have policies for the error cases.

share|improve this answer

Why not using (short)? That's the easiest way and gets what you want.

Unless it's an interview problem, then you need to assume how many bits a short and a int contains. If the number is positive, just using bitwise AND. If the number is negative, flip it to positive number, and do bitwise AND. After AND, you need to change the highest bit to 1.

share|improve this answer

you are wrong ... because you did not take in mind the sign ...

short a; // 16bit
int b; // 32 bit

// 16 bit -> 32 bit
b=a; if (int(b&0x00008000)!=0) b|=0xFFFF0000; else b&=0x00007FFF;

// 32 bit -> 16 bit

a=short(b&0x0000FFFF);
  • of course if your 32bit number does not fit into 16 bits then the result will be wrong
share|improve this answer
    
FWIK the assumption short a; // 16bit may be flawed. –  Drux Apr 3 '14 at 6:21
    
There's no guarantee that short or int are those sizes, both have to be at least 16 bits but that's as far as the standard goes. –  user657267 Apr 3 '14 at 6:22
    
thats why I stated that 16 bit ,32 bit ... because in C++ the int bit wide has tendency to change ... (I still remember when int was 16 bit and short 8 bit ...) –  Spektre Apr 3 '14 at 6:24
1  
b = a already does the sign extension, and (short) already does the masking. You don't need all this. –  EJP Apr 3 '14 at 6:24
2  
@Spektre On all compilers that adhere to the language specification. –  EJP Apr 3 '14 at 6:25

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.