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Is this safe:

int main()
{
    boost::int16_t t1 = 50000; // overflow here.
    boost::uint16_t t2 = (boost::uint16_t)t1;
    std::cout << t1 << " "  << t2 <<  std::endl;
}

To be even more specific: I'm storing this data in a table which is using signed types in its schema, is it safe to store, and retrieve this data in this manner?

Thanks!

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1  
@sbi, a signed to unsigned cast (for example) with the same width is safe and completely well-defined, regardless of what syntax you use. –  Matthew Flaschen Nov 22 '10 at 9:30
1  
I agree, using a recast templates with primitive types seems like a ridiculous overkill to me. –  teukkam Nov 22 '10 at 9:34
2  
@Matthew, @teukkam: It might be safe looking at the code right now. But let that code ripe a decade, with a few dozen maintainers changing stuff here and there. Then the C-style cast might prevent the compiler from indicating a problem that had entered during maintenance which it would emit a diagnostic for had you been using a static_cast. Oh, and try to grep your code for C-style casts. I once had to work with someone who had to find such casts because they would blow due to alignment issues on a new platform a 2MLoC code base needed porting to. Weeks of fun. You live, you learn. –  sbi Nov 22 '10 at 9:49
1  
@sbi: Completely agree on the issues with C-style casts being a headache during maintenance and automated source reviews / analyses. –  Schedler Nov 22 '10 at 10:38
1  
@sbi: I think that your statement, "I can say without even looking that C-style casts are never safe", is over-broad. I don't think that there is a strict difference between vector<Foo>(10) vs. uint16_t(t1) vs. int16_t(50000) vs (uint16_t)t1. The vector has the user-friendly property that different inputs always produce defined behavior and (barring an exception) outputs that are "different" in some sense. So I think you do have to look at the cast to know whether it's safe or not. –  Steve Jessop Nov 22 '10 at 21:09

3 Answers 3

up vote 4 down vote accepted

No, I believe this is implementation defined. From the C++ draft standard, §4.7/3

If the destination type is signed, the value is unchanged if it can be represented in the destination type (and bit-field width); otherwise, the value is implementation-defined.

This applies to the first statement. int16_t is signed, and it can not represent 50000. So the value of t1 depends on the implementation.

Once you know t1, t2 is guaranteed by §4.7/2 to be the lowest uint16_t congruent modulus 2^16 to t1. Basically, t1 mod 2^16.

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I'd say it's safe, but why not using an uint16_t without going through this misleading cast?

Types exists for communication also, not only for the sake of compilation process.

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Assigning a number that cannot be represented in a signed type is implementation-defined. The next conversion however has a standard defined behaviour. So the outcome of the function is implementation defined, if that is safe or not, is a subjective matter. But portable across platforms or compilers it is not.

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