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I have a unsigned char*. Typically this points to a chunk of data, but in some cases, the pointer IS the data, ie. casting a int value to the unsigned char* pointer (unsigned char* intData = (unsigned char*)myInteger;), and vice versa.

However, I need to do this with a float value, and it keeps giving me conversion errors.

unsigned char* data;
float myFloat = (float)data;

How can I do this?

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You can't, at least not easily. Without some magical hacks, this will never contain valid information, unless the input Is in the correct IEEE format. –  Richard J. Ross III Sep 12 '12 at 23:31
    
@RichardJ.RossIII unless you know something sneaky that I don't (which is not that unlikely considering this is C++) you can do it pretty easily. –  Seth Carnegie Sep 12 '12 at 23:35
    
Is sizeof(unsigned char *) equal to sizeof(float) on your platform? If not, what are you expecting this to do, exactly? (Never mind the horribly undefinedness of the behavior in general...) –  Nemo Sep 12 '12 at 23:36

4 Answers 4

up vote 2 down vote accepted

If your compiler supports it (GCC does) then use a union. This is undefined behavior according to the C++ standard.

union {
    unsigned char* p;
    float f;
} pun;

pun.p = data;
float myFloat = pun.f;

This works if sizeof(unsigned char *) == sizeof(float). If pointers are larger than floats then you have to rethink your strategy.

See wikipedia article on type punning and in particular the section on use of a union.

GCC allows type punning using a union as long as you use the union directly and not typecasting to a union... see this IBM discussion on type-pun problems for correct and incorrect ways of using GCC for type punning.

Also see wikipedia's article on strong and weak typing and a well researched article on type punning and strict aliasing.

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This is not an uncommon use of unions, however in C++ this results in undefined behavior on two counts: First it accesses an inactive member of a union (i.e., it accesses a member other than the one that was last set). Second, if it works as expected then it violates strict aliasing, accessing an object of one type (unsigned char*) through a glvalue of an unrelated type (float). –  bames53 Sep 13 '12 at 2:39
    
Doesn't strict aliasing involve referencing the same memory location with pointers to fundamentally different types? That's not what's going on here. See this SO question stackoverflow.com/questions/2906365/…. –  amdn Sep 13 '12 at 2:48
    
The strict aliasing rule is "If a program attempts to access the stored value of an object through a glvalue of other than one of the following types the behavior is undefined:" (3.10p10) This code is accessing the stored value of an unsigned char * object through a glvalue of type float. This case is not covered by any of the types listed by the strict aliasing rule. –  bames53 Sep 13 '12 at 2:59
2  
I see you are right, so although it might be common and a compiler might support it, it is undefined behavior. –  amdn Sep 13 '12 at 3:06
    
@bames53: thanks for your comments, I've edited my answer to include your input. –  amdn Sep 13 '12 at 3:40

The only correct way to use a given variable to store other data is to copy the data byte-wise:

template <typename T>
void store(unsigned char * & p, T const & val)
{
    static_assert(sizeof(unsigned char *) >= sizeof(T));

    char const * q = reinterpret_cast<char const *>(&val);
    std::copy(q, q + sizeof(T), reinterpret_cast<char *>(&p));
}

Usage:

unsigned char * p;
store(p, 1.5);
store(p, 12UL);

The matching retrieval function:

template <typename T>
T load(unsigned char * const & p)
{
    static_assert(sizeof(unsigned char *) >= sizeof(T));

    T val;
    char const * q = reinterpret_cast<char const *>(&p);
    std::copy(q, q + sizeof(T), reinterpret_cast<char *>(&val));

    return val;
}

Usage:

auto f = load<float>(p);
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I think that your load declaration is off. You don't specify a return value. –  Richard J. Ross III Sep 12 '12 at 23:50
    
@RichardJ.RossIII: Thanks, fixed! –  Kerrek SB Sep 12 '12 at 23:51

bit_cast:

template <class Dest, class Source>
inline Dest bit_cast(Source const &source) {
    static_assert(sizeof(Dest)==sizeof(Source), "size of destination and source objects must be equal");
    static_assert(std::is_trivially_copyable<Dest>::value, "destination type must be trivially copyable.");
    static_assert(std::is_trivially_copyable<Source>::value, "source type must be trivially copyable");

    Dest dest;
    std::memcpy(&dest, &source, sizeof(dest));
    return dest;
}

Usage:

char *c = nullptr;
float f = bit_cast<float>(c);
c = bit_cast<char *>(f);
share|improve this answer
unsigned char* data;
float myFloat = *(float*)data;
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Aren't you forgetting an &? If the float data is in the pointer itself you should write &data. –  Matteo Italia Sep 12 '12 at 23:37
1  
This would be undefined behaviour, even if written correctly. –  Kerrek SB Sep 12 '12 at 23:38
    
I would bet this is not what the OP actually wants - they just did not know how to ask the question –  Adrian Cornish Sep 12 '12 at 23:38
4  
@AdrianCornish: actually he stated it pretty clearly... "the pointer IS the data, ie. casting a int value to the unsigned char* pointer [...] I need to do this with a float value". –  Matteo Italia Sep 12 '12 at 23:39
1  
I downvoted because this does not at all solve the described problem. This accesses the pointed-to data as though it were a float when the question is how to access the pointer as though it were a float. It's the difference between float f = *(float*)data; and float f = *(float*)&data;. Also these casts have undefined behavior and should not be used. –  bames53 Sep 13 '12 at 2:33

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