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What is the Java equivalent of following C++ code?

 float f=12.5f;
 int& i = reinterpret_cast<int&>(f);
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Did you check if the code runs successfully?? it should be int& i = r_c<int&>(f) –  Thrustmaster Jan 1 '10 at 17:06
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It is not really translatable into any language. It is interpreting the bits of the float as an int!!! What does that mean? Because the representation of floating point is undefined by the standard it only has meaning if you understand what floating point representation is used by your compiler/hardware here and know that this maps to the Java floating point representation. –  Loki Astari Jan 1 '10 at 17:31
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In addition to what Martin York said, it is technically performing an implementation-defined mapping from float reference to int reference. Strictly speaking, there's no guarantee that the resulting int reference will alias the same object. –  jalf Jan 1 '10 at 17:52
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1 Answer

up vote 22 down vote accepted
float f = 12.5f;
int i = Float.floatToIntBits(f);
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+1 ........... :) –  Prasoon Saurav Jan 1 '10 at 16:34
    
thanks man!!!!! –  ivorykoder Jan 1 '10 at 16:35
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Out of curiosity, what is the difference between what you posted and a int i = (int)f;? –  Alberto Zaccagni Jan 1 '10 at 16:35
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@Montecristo : (int) f in Java is like static_cast<int>(f) in C++. –  missingfaktor Jan 1 '10 at 16:39
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Note the C++ version uses int reference. Thus modifying the float will cause the int to change (in some undefined way). The Java version does not provide that functionality. Every change to 'f' must be followed by a call to floatToIntBits(). –  Loki Astari Jan 1 '10 at 17:35
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