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I'm just going through perlxstut and I found there newSVnv in EXAMPLE 5 and EXAMPLE 6 but I think that newSVuv should be more appropriate. Curiously newSVnv works too. What's going on?

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I think it uses NVs (Perl's equivalent of a C double) instead of UVs (normally an unsigned int), because (depending on OS and compilation options), some of the values in a struct statfs might be 64-bit even though Perl is using 32-bit ints. newSVnv works because the C compiler knows how to cast any integer type to a double.

You should be able to replace newSVnv with newSVuv for any member of statfs that will fit in a UV, and have it work just fine. Perl converts between its numeric types automatically as needed.

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So it means that newSVnv is considered safer version of newSVuv in Perl sense for Perl's automatic conversion? –  Hynek -Pichi- Vychodil Sep 28 '10 at 23:07
    
I'm not sure what you mean by "safer". There's no automatic conversion with the newSV*v functions (other than that done by the C compiler). If you pass a long long to newSVuv, then you get whatever happens when your C compiler casts a long long to unsigned int. A double has a greater range than any integer type, so you don't have to worry about a value that won't fit. –  cjm Sep 28 '10 at 23:38
    
that is incorrect; many systems have 8 byte doubles (with 53 bites of precision) and 8 byte integers. storing them in a double can lose precision. –  ysth Sep 29 '10 at 2:05
    
@ysth, that's why I said "range" and not "precision". You might lose precision when converting a large integer type to a double, but it won't be out of range. –  cjm Sep 29 '10 at 2:21

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