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In my assignment, it says "Do not add long int or long long private members to accomplish this as there is no guarantee that either can actually store larger numbers than an int." I know that int has a maximum of 2^31-1 and long long has a maximum of 2^63-1. So can someone give me an example to me why the given sentence is true?

Thanks in advance!

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Actually it's (2**32)-1 and (2**64)-1. –  Joachim Pileborg Nov 19 '12 at 2:37
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If you need size guarantees, use the types defined in cstdint. You won't risk relying on implementation defined behavior, and it's easier to understand what the code means when reading it. en.cppreference.com/w/cpp/types/integer –  Reuben Morais Nov 19 '12 at 2:42
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@JoachimPileborg: your limits are correct for unsigned integers; the poster's are correct for signed integers. –  Jonathan Leffler Nov 19 '12 at 2:44

2 Answers 2

up vote 7 down vote accepted

It means exactly what it says. There's no guarantee that a long long can store more numbers than an int. It's at least as big, but it can be the same.

I know that int has a maximum of 2^31-1 and long long has a maximum of 2^63-1

This can be true for some platform, with some compiler, but it's not always the same. C++ doesn't guarantee either.

3.9.1 Fundamental types [basic.fundamental]

2) There are five standard signed integer types : “signed char”, “short int”, “int”, “long int”, and “long long int”. In this list, each type provides at least as much storage as those preceding it in the list. [...] (emphasis mine)

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But I thought long long can store any value in the range of –9,223,372,036,854,775,808 to 9,223,372,036,854,775,807 –  user44322 Nov 19 '12 at 2:37
    
@user44322 what's your reference for that? –  Luchian Grigore Nov 19 '12 at 2:37
    
    
I think in C++11, long long is guaranteed to be bigger or something. –  chris Nov 19 '12 at 2:41
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@chris "at least" - added the reference. –  Luchian Grigore Nov 19 '12 at 2:41

The C standard specifies two relevant criteria:

  • sizeof(char) ≤ sizeof(short) ≤ sizeof(int) ≤ sizeof(long) ≤ sizeof(long long) ≤ sizeof(uintmax_t)

    This is specified indirectly in ISU/IEC 9899:2011, §6.2.5 Types, ¶8: For any two integer types with the same signedness and different integer conversion rank (see 6.3.1.1), the range of values of the type with smaller integer conversion rank is a subrange of the values of the other type.

  • The minimum permitted value for the maxima of the types (ISO/IEC 9899:2011, §5.2.4.2.1 Sizes of integer types <limits.h>):

    • SCHAR_MAX ≥ 127 // 27-1
    • SHRT_MAX ≥ 32,767 // 215-1
    • INT_MAX ≥ 32,767 // 215-1
    • LONG_MAX ≥ 2,147,483,647 // 231-1
    • LLONG_MAX ≥ 9,223,372,036,854,775,807 // 263-1

The quote is formally correct; it is possible to devise systems where long does not store a larger range than int — indeed, this is the case on most 32-bit systems (all the ones I know of), and also true on Windows 64. It is less likely to be accurate w.r.t long long; I know of no system where sizeof(int) == sizeof(long long) (and, because of the inequality quoted, sizeof(int) == sizeof(long)). On most Unix 64-bit systems, sizeof(int) == 4, sizeof(long) == 8, and sizeof(long long) == 8; on Windows 64, sizeof(long) == 4 and only long long (or __int64) is a 64-bit type.

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The common combinations even have names, as you're aware from a previous answer of yours: stackoverflow.com/a/384672/5987 –  Mark Ransom Nov 20 '12 at 2:04
    
I am indeed aware of the names; I decided not to use them here, though maybe that was a mistake. –  Jonathan Leffler Nov 20 '12 at 2:11

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