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I was writing a program in C++ to find all solutions of ab = c, where a, b and c together use all the digits 0-9 exactly once. The program looped over values of a and b, and ran a digit-counting routine each time on a, b and ab to check if the digits condition was satisfied.

However, spurious solutions can be generated when ab overflows the integer limit. I ended up checking for this using code like:

unsigned long b, c, c_test;
...
c_test=c*b;         // Possible overflow
if (c_test/b != c) {/* There has been an overflow*/}
else c=c_test;      // No overflow

Is there a better way of testing for overflow? I know that some chips have an internal flag that is set when overflow occurs, but I've never seen it accessed through C or C++.

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6  
Information which may be useful on this subject: Chapter 5 of "Secure Coding in C and C++" by Seacord - http://www.informit.com/content/images/0321335724/samplechapter/seacord_ch05.pd‌​f SafeInt classes for C++ - http://blogs.msdn.com/david_leblanc/archive/2008/09/30/safeint-3-on-codeplex.as‌​px - http://www.codeplex.com/SafeInt IntSafe library for C: - [blogs.msdn.com/michael_howard/archiv –  Michael Burr Oct 13 '08 at 23:28
    
Seacord's Secure Coding is a great resource, but don't use IntegerLib. See blog.regehr.org/archives/593. –  jww Sep 26 '11 at 0:53
7  
The gcc compiler option -ftrapv will cause it to generate a SIGABRT on (signed) integer overflow. See here. –  nibot Oct 17 '12 at 20:12
    
@SamWatkins Huh? The onus is, as usual, on the programmer to make sure the code behaves properly. That's the deal. –  Daniel Fischer May 26 '13 at 10:37
1  
It does not answer the overflow question, but another way to come at the problem would be to use a BigNum library like GMP to guarantee you always have enough precision. You will not have to worry about overflow if you allocate enough digits up front. –  wrdieter Sep 14 '13 at 2:00
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29 Answers

There is a way to determine whether an operation is likely to overflow, using the positions of the most-significant one-bits in the operands and a little basic binary-math knowledge.

For addition, any two operands will result in (at most) one bit more than the largest operand's highest one-bit. For example:

bool addition_is_safe(uint32_t a, uint32_t b) {
    size_t a_bits=highestOneBitPosition(a), b_bits=highestOneBitPosition(b);
    return (a_bits<32 && b_bits<32);
}

For multiplication, any two operands will result in (at most) the sum of the bits of the operands. For example:

bool multiplication_is_safe(uint32_t a, uint32_t b) {
    size_t a_bits=highestOneBitPosition(a), b_bits=highestOneBitPosition(b);
    return (a_bits+b_bits<=32);
}

Similarly, you can estimate the maximum size of the result of a to the power of b like this:

bool exponentiation_is_safe(uint32_t a, uint32_t b) {
    size_t a_bits=highestOneBitPosition(a);
    return (a_bits*b<=32);
}

(Substitute the number of bits for your target integer, of course.)

I'm not sure of the fastest way to determine the position of the highest one-bit in a number, here's a brute-force method:

size_t highestOneBitPosition(uint32_t a) {
    size_t bits=0;
    while (a!=0) {
        ++bits;
        a>>=1;
    };
    return bits;
}

It's not perfect, but that'll give you a good idea whether any two numbers could overflow before you do the operation. I don't know whether it would be faster than simply checking the result the way you suggested, because of the loop in the highestOneBitPosition function, but it might (especially if you knew how many bits were in the operands beforehand).

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35  
and of course you could rename highestOneBitPosition to log :) –  Oliver Hallam Jan 25 '10 at 18:14
13  
Yes, it's the same operation as log2, but that wouldn't necessarily be as obvious to someone who didn't have a mathematical background. –  Head Geek Feb 4 '10 at 20:19
14  
Doesn't this algorithm underestimate the safe answers? 2^31 + 0 would detect as unsafe since highestOneBitPosition(2^31) = 32. (2^32 - 1) * 1 would detect as unsafe since 32 + 1 > 32. 1 ^ 100 would detect as unsafe since 1 * 100 > 32. –  clahey Apr 15 '10 at 17:51
2  
according to your multiplication_is_safe 0x8000 * 0x10000 would overflow (bit positions are 16 + 17 = 33 which is > 32), although it doesn't because 0x8000 * 0x10000 = 0x80000000 which obviously still fits into a unsigned 32 bit int. This is just one out of may examples for which this codes does not work. 0x8000 * 0x10001, ... –  GT_mh Aug 9 '13 at 9:46
3  
@GT_mh: Your point? As I said, it's not perfect; it's a rule-of-thumb that will definitively say when something is safe, but there's no way to determine whether every calculation would be okay without doing the full calculation. 0x8000 * 0x10000 isn't "safe," by this definition, even though it turns out to be okay. –  Head Geek Aug 9 '13 at 22:19
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I see you're using unsigned integers. By definition, in C (don't know about C++), unsigned arithmetic does not overflow ... so, at least for C, your point is moot :)

With signed integers, once there has been overflow, Undefined Behaviour has occurred and your program can do anything (for example: render tests inconclusive). 

#include <limits.h>
int a = <something>;
int x = <something>;
a += x;              /* UB */
if (a < 0) {         /* unreliable test */
  /* ... */
}

To create a conforming program you need to test for overflow before generating said overflow. The method can be used with unsigned integers too

#include <limits.h>
int a = <something>;
int x = <something>;
if ((x > 0) && (a > INT_MAX - x)) /* `a + x` would overflow */;
if ((x < 0) && (a < INT_MIN - x)) /* `a + x` would underflow */;
/* ... same thing for subtraction, multiplication, and division */
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31  
Unsigned integers don't strictly overflow in C++ either (ISO/IEC 14882:2003 3.9.1.4). My use of 'overflow' in the question was the more colloquial meaning, intended to include the well-defined wrapping of unsigned types, since I was interested in unsigned ints representing mathematical positive integers, not positive integers mod 2^32 (or 2^64). The distinction between overflow as a deviation from mathematical infinite-sized integer behaviour, and overflow as an undefined behaviour in the language seems rarely to be made explicit. –  Chris Johnson Oct 3 '09 at 18:47
7  
That test doesn't need to be x >= 0 - x > 0 will suffice (if x == 0, then x + a can't overflow for obvious reasons). –  caf Apr 26 '10 at 0:20
1  
@pmg, is there a supporting quote from the standard? –  Pacerier Sep 22 '13 at 17:39
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Some compilers provide access to the integer overflow flag in the CPU which you could then test but this isn't standard.

You could also test for the possibility of overflow before you perform the multiplication:

if ( b > ULONG_MAX / a ) // a * b would overflow
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4  
...or use numeric_limits<TYPE>::max() –  Jonas Gulle Oct 13 '08 at 23:15
3  
Don't forget to handle a=0 -- division breaks then. –  Thelema Jul 3 '09 at 14:24
3  
@Thelema: "Don't forget to handle a=0" - and INT_MIN / -1. –  jww Jun 19 '11 at 5:56
    
What if b == ULONG_MAX / a? Then it can still fit, given that a divides ULONG_MAX without residual. –  the swine Apr 8 at 15:17
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Warning: GCC can optimize away an overflow check when compiling with -O2. The option -Wall will give you a warning in some cases like

if (a + b < a) { /* deal with overflow */ }

but not in this example:

b = abs(a);
if (b < 0) { /* deal with overflow */ }

The only safe way is to check for overflow before it occurs, as described in the CERT paper, and this would be incredibly tedious to use systematically.

Compiling with -fwrapv solves the problem but disables some optimizations.

We desperately need a better solution. I think the compiler should issue a warning by default when making an optimization that relies on overflow not occurring. The present situation allows the compiler to optimize away an overflow check, which is unacceptable in my opinion.

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1  
Note that compilers may only do this with signed integer types; overflow is completely defined for the unsigned integer types. Still, yes, it's quite a dangerous trap! –  SamB Feb 2 '12 at 3:39
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The simplest way is to convert your unsigned longs into unsigned long longs, do your multiplication, and compare the result to 0x100000000LL.

You'll probably find that this is more efficient than doing the division as you've done in your example.

Oh, and it'll work in both C and C++ (as you've tagged the question with both).


Just been taking a look at the glibc manual. There's a mention of an integer overflow trap (FPE_INTOVF_TRAP) as part of SIGFPE. That would be ideal, apart from the nasty bits in the manual:

FPE_INTOVF_TRAP Integer overflow (impossible in a C program unless you enable overflow trapping in a hardware-specific fashion).

A bit of a shame really.

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Heh... what I didn't say was that I'm asking this question in preparation for writing a program to solve a problem with larger numbers, in which I'm already using long long int. Since long long int is not (allegedly) in the C++ standard, I stuck with the 32-bit version to avoid confusion. –  Chris Johnson Oct 13 '08 at 23:59
1  
Ah - that would be a subtly different question then. ;-) –  Andrew Edgecombe Oct 14 '08 at 0:30
    
I'd advise using ULONG_MAX which is easier to type and more portable than hard-coding 0x100000000. –  jw013 Jan 16 '13 at 20:39
5  
This doesn't work when long and long long are the same size (e.g. on many 64-bit compilers). –  interjay Apr 10 '13 at 8:48
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For unsigned integers, just check that the result is smaller than one of the arguments :

unsigned int r, a, b;
r = a+b;
if (r < a)
{
    // overflow
}

For signed integers you can check the signs of the arguments and of the result. integers of different signs can't overflow, and integers of same sign overflow only is the result is of different sign :

signed int r, a, b, s;
r = a+b;
s = a>=0;
if (s == (b>=0) && s != (r>=0))
{
    // overflow
}
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Well the first method would also work for signed integers, wouldn't it? char result = (char)127 + (char)3; would be -126; smaller than both operands. –  primfaktor Dec 13 '12 at 9:55
1  
Oh I see, the problem is the fact that it's undefined for signed types. –  primfaktor Dec 13 '12 at 10:01
6  
-1 overflow of signed numbers results in undefined behavior (hence the test is too late to be actually useful). –  Voo Dec 16 '12 at 19:48
2  
This works only for addition, not for multiplication. –  jamesdlin Apr 22 '13 at 7:39
    
@primfaktor it doesn't work for signed int: char((-127) + (-17)) = 112. For signed int you must check the sign bit of the arguments and result –  Lưu Vĩnh Phúc Feb 19 at 11:46
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Here's a great book chapter on the issue: CERT C Secure Coding - 'Ensure the operations on signed integers do not result in overflow.

It gives a two's complement version that is architecture dependent version and an architecture independent version.

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If you have a datatype which is bigger than the one you want to test (say a you do a 32-bit add and you have a 64-bit type). Then this will detect if an overflow occured. My example is for an 8-bit add. But can be scaled up.

uint8_t x, y;   /* give these values */
const uint16_t data16   = x + y;
const bool carry        = (data16 > 0xff);
const bool overflow     = ((~(x ^ y)) & (x ^ data16) & 0x80);

It is based on the concepts explained on this page: http://www.cs.umd.edu/class/spring2003/cmsc311/Notes/Comb/overflow.html

For a 32-bit example, 0xff becomes 0xffffffff and 0x80 becomes 0x80000000 and finally uint16_t becomes a uint64_t.

NOTE: this catches integer addition/subtraction overflows, and I realized that your question involves powers. In which case, division is likely the best approach. This is commonly a way that calloc implementations make sure that the params don't overflow as they are multiplied to get the final size.

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Would the anonymous down-voter 5 years after the posting care to explain? –  Evan Teran Oct 31 '13 at 15:42
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I see that a lot of people answered the question about overflow, but I wanted to address his original problem. He said the problem was to find ab=c such that all digits are used without repeating. Ok, that's not what he asked in this post, but I'm still think that it was necessary to study the upper bound of the problem and conclude that he would never need to calculate or detect an overflow (note: I'm not proficient in math so I did this step by step, but the end result was so simple that this might have a simple formula).

The main point is that the upper bound that the problem requires for either a, b or c is 98.765.432. Anyway, starting by splitting the problem in the trivial and non trivial parts:

  • x0 == 1 (all permutations of 9, 8, 7, 6, 5, 4, 3, 2 are solutions)
  • x1 == x (no solution possible)
  • 0b == 0 (no solution possible)
  • 1b == 1 (no solution possible)
  • ab, a > 1, b > 1 (non trivial)

Now we just need to show that no other solution is possible and only the permutations are valid (and then the code to print them is trivial). We go back to the upper bound. Actually the upper bound is c ≤ 98.765.432. It's the upper bound because it's the largest number with 8 digits (10 digits total minus 1 for each a and b). This upper bound is only for c because the bounds for a and b must be much lower because of the exponential growth, as we can calculate, varying b from 2 to the upper bound:

    9938.08^2 == 98765432
    462.241^3 == 98765432
    99.6899^4 == 98765432
    39.7119^5 == 98765432
    21.4998^6 == 98765432
    13.8703^7 == 98765432
    9.98448^8 == 98765432
    7.73196^9 == 98765432
    6.30174^10 == 98765432
    5.33068^11 == 98765432
    4.63679^12 == 98765432
    4.12069^13 == 98765432
    3.72429^14 == 98765432
    3.41172^15 == 98765432
    3.15982^16 == 98765432
    2.95305^17 == 98765432
    2.78064^18 == 98765432
    2.63493^19 == 98765432
    2.51033^20 == 98765432
    2.40268^21 == 98765432
    2.30883^22 == 98765432
    2.22634^23 == 98765432
    2.15332^24 == 98765432
    2.08826^25 == 98765432
    2.02995^26 == 98765432
    1.97741^27 == 98765432

Notice, for example the last line: it says that 1.97^27 ~98M. So, for example, 1^27 == 1 and 2^27 == 134.217.728 and that's not a solution because it has 9 digits (2 > 1.97 so it's actually bigger than what should be tested). As it can be seen, the combinations available for testing a and b are really small. For b == 14, we need to try 2 and 3. For b == 3, we start at 2 and stop at 462. All the results are granted to be less than ~98M.

Now just test all the combinations above and look for the ones that do not repeat any digits:

    ['0', '2', '4', '5', '6', '7', '8'] 2^84 = 7056
    ['1', '2', '3', '4', '5', '8', '9'] 2^59 = 3481
    ['0', '1', '2', '3', '4', '5', '8', '9'] 2^59 = 3481 (+leading zero)
    ['1', '2', '3', '5', '8'] 3^8 = 512
    ['0', '1', '2', '3', '5', '8'] 3^8 = 512 (+leading zero)
    ['1', '2', '4', '6'] 2^4 = 16
    ['0', '1', '2', '4', '6'] 2^4 = 16 (+leading zero)
    ['1', '2', '4', '6'] 4^2 = 16
    ['0', '1', '2', '4', '6'] 4^2 = 16 (+leading zero)
    ['1', '2', '8', '9'] 2^9 = 81
    ['0', '1', '2', '8', '9'] 2^9 = 81 (+leading zero)
    ['1', '3', '4', '8'] 4^3 = 81
    ['0', '1', '3', '4', '8'] 4^3 = 81 (+leading zero)
    ['2', '3', '6', '7', '9'] 6^3 = 729
    ['0', '2', '3', '6', '7', '9'] 6^3 = 729 (+leading zero)
    ['2', '3', '8'] 3^2 = 8
    ['0', '2', '3', '8'] 3^2 = 8 (+leading zero)
    ['2', '3', '9'] 2^3 = 9
    ['0', '2', '3', '9'] 2^3 = 9 (+leading zero)
    ['2', '4', '6', '8'] 2^8 = 64
    ['0', '2', '4', '6', '8'] 2^8 = 64 (+leading zero)
    ['2', '4', '7', '9'] 2^7 = 49
    ['0', '2', '4', '7', '9'] 2^7 = 49 (+leading zero)

None of them matches the problem (which can also be seen by the absence of '0', '1', ..., '9').

The example code that solves it follows. Also note that's written in python, not because it needs arbitrary precision integers (the code doesn't calculate anything bigger than 98 million), but because we found out that the amount of tests is so small that we should use a high level language to make use of its built-in containers and libraries (also note: the code has 28 lines).

    import math

    m = 98765432
    l = []
    for i in xrange(2, 98765432):
        inv = 1.0/i
        r = m**inv
        if (r < 2.0): break
        top = int(math.floor(r))
        assert(top <= m)

        for j in xrange(2, top+1):
            s = str(i) + str(j) + str(j**i)
            l.append((sorted(s), i, j, j**i))
            assert(j**i <= m)

    l.sort()
    for s, i, j, ji in l:
        assert(ji <= m)
        ss = sorted(set(s))
        if s == ss:
            print '%s %d^%d = %d' % (s, i, j, ji)

        # Try with non significant zero somewhere
        s = ['0'] + s
        ss = sorted(set(s))
        if s == ss:
            print '%s %d^%d = %d (+leading zero)' % (s, i, j, ji)
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Although it has been two years, I felt I might as well add my penithworth for a really fast way to detect overflow for at least additions, which might give a lead for multiplication, division and power-of

The idea is that exactly because the processor will just let the value wrap back to zero and that C/C++ is to abstracted from any specific processor, you can:

uint32_t x, y;
uint32_t value = x + y;
bool overflow = value < (x | y);

This both ensures that if one operand is zero and one isn't, then overflow won't be falsely detected, and is significantly faster than a lot of NOT/XOR/AND/test operations as previously suggested.

Edit: As pointed out, this approach although better than other more elaborate ways is still optimisable. The following is a revision of the original code containing the optimisation:

uint32_t x, y;
uint32_t value = x + y;
bool overflow = value < x; // Alternatively "value < y" should also work
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1  
Actually bool overflow = value < x is already sufficient. –  hirschhornsalz Jun 6 '12 at 11:11
    
I disagree due to computation theory.. consider the following: y > x, value overflows, y is only bigger than x due to the sign bit being set (1 + 255, for example, for unsigned chars) testing value and x would result in overflow = false - hence the use of logical or to prevent this broken behaviour.. –  DX-MON Jul 20 '12 at 20:40
    
The test works for the numbers you give (x:=1, y:=255, size = uint8_t): value will be 0 (1+255) and 0<1 is true. It works indeed for every number pair. –  hirschhornsalz Jul 20 '12 at 21:33
    
Hmm, you make a good point. I still stick on the side of safety using the or trick though as any good compiler would optimise it out provider you are indeed correct for all inputs, including non-overflowing numbers such as "0 + 4" where the result would not be overflow. –  DX-MON Jul 22 '12 at 0:39
3  
If there is an overflow, than x+y>=256 and value=x+y-256. Because y<256 always holds true, (y-256) is negative and so value < x is always true. The proof for the non overflowing case is quite similar. –  hirschhornsalz Jul 22 '12 at 1:21
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clang now support dynamic overflow checks for both signed and unsigned integers. See -fsanitize=integer switch. For now it is only one C++ compiler with fully supported dynamic overflow checking for debug purpose.

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You can't access the overflow flag from C/C++.

Some compilers allow you to insert trap instructions into the code. On GCC the option is -ftrapv (but I have to admit that I've never used it. Will check it after posting).

The only portable and compiler independent thing you can do is to check for overflows on your own. Just like you did in your example.

Edit:

Just checked: -ftrapv seems to do nothing on x86 using the lastest GCC. Guess it's a left over from an old version or specific to some other architecture. I had expected the compiler to insert an INTO opcode after each addition. Unfortunately it does not do this.

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Maybe it varies: -ftrapv seems to work fine using GCC 4.3.4 on a Cygwin box. There's an example at stackoverflow.com/questions/5005379/… –  Nate Kohl Feb 15 '11 at 15:45
    
You both are right. -ftrapv do the job but only for signed integers –  ZAB Oct 31 '13 at 7:11
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CERT has developed a new approach to detecting and reporting signed integer overflow, unsigned integer wrapping, and integer truncation using the "as-if" infinitely ranged (AIR) integer model. CERT has published a technical report describing the model and produced a working prototype based on GCC 4.4.0 and GCC 4.5.0.

The AIR integer model either produces a value equivalent to one that would have been obtained using infinitely ranged integers or results in a runtime constraint violation. Unlike previous integer models, AIR integers do not require precise traps, and consequently do not break or inhibit most existing optimizations.

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Another interesting tool: http://embed.cs.utah.edu/ioc/

This is a patched clang compiler, which adds checks to the code at compile time. So you get output looking like this:

CLANG ARITHMETIC UNDEFINED at <add.c, (9:11)> :
Op: +, Reason : Signed Addition Overflow, 
BINARY OPERATION: left (int32): 2147483647 right (int32): 1
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This patch is now merged to clang codebase among other sanitizers, see my answer. –  ZAB Oct 31 '13 at 7:00
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Here is a "non-portable" solution to the question. The Intel x86 and x64 CPUs have the so-called EFLAGS-register ( http://en.wikipedia.org/wiki/EFLAGS ), which is filled by the processor after each integer arithmetic operation. I will skip a detailed description here. The relevant flags are the "Overflow" Flag (mask 0x800) and the "Carry" Flag (mask 0x1). To interpret them correctly, one should consider if the operands are of signed or unsigned type.

Here is a practical way to check the flags from C/C++. The following code will work on Visual Studio 2005 or newer (both 32 and 64 bit), as well as on GNU C/C++ 64 bit.

#include <cstddef>
#if defined( _MSC_VER )
#include <intrin.h>
#endif

inline size_t query_intel_x86_eflags( const size_t query_bit_mask )
{
#if defined( _MSC_VER )
    return __readeflags() & query_bit_mask;
#elif defined( __GNUC__ )
    // this code will work only on 64-bit GNU-C machines;
    // Tested and does NOT work with Intel C++ 10.1!
    size_t eflags;
    __asm__ __volatile__(
        "pushfq \n\t"
        "pop %%rax\n\t"
        "movq %%rax, %0\n\t"
        :"=r"(eflags)
        :
        :"%rax"
        );
    return eflags & query_bit_mask;
#else
#pragma message("No inline assembly will work with this compiler!")
    return 0;
#endif
}

int main(int argc, char **argv)
{
    int x = 1000000000;
    int y = 20000;
    int z = x * y;
    int f = query_intel_x86_eflags( 0x801 );
    printf( "%X\n", f );
}

If the operands were multiplied without overflow, you would get a return value of 0 from query_intel_eflags( 0x801 ), i.e. neither the carry nor the overflow flags are set. In the provided example code of main(), an overflow occurs and the both flags are set to 1. This check does not imply any further calculations, so it should be quite fast.

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Starting with Clang 3.4, there are now (non-portable, though maybe gcc will do the same eventually) checked arithmetic builtins. For the example in OP's question, it would work like that:

unsigned long b, c, c_test;
if (__builtin_umull_overflow(b, c, &c_test))
{
    // there has been an overflow
}
else
{
    // there hasn't been an overflow
}

The documentation doesn't specify whether c_test contains the overflowed result if an overflow occurred. I would assume that the result is undefined (though likely to be the overflowed result).

The builtins lower to what's best for the platform, so on most platforms this would just check the overflow flag.

There is a __builtin for each arithmetic operation that can overflow (addition, subtraction, multiplication), with signed and unsigned variants, and normal size and long long sizes. The syntax for the name is __builtin_[us](operation)(ll?)_overflow, so for a checked signed long long integer addition, it would be __builtin_saddll_overflow. They return non-zero if the result overflowed. The full list is linked on the page.

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This link points out a solution more general than the one discussed by CERT (it is more general in term of handled types), even if it requires some GCC extensions (I don't know how widely supported they are).

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Calculate the results with doubles. They have 15 significant digits. Your requirement has a hard upper bound on c of 108 — it can have at most 8 digits. Hence, the result will be precise if it's in range, and it will not overflow otherwise.

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You can't access the overflow flag from C/C++.

I don't agree with this. You could write some inline asm and use a jo (jump overflow) instruction assuming you are on x86 to trap the overflow. Of course you code would no longer be portable to other architectures.

look at info as and info gcc.

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4  
inline assembler is no C/C++ feature and platform independent. On x86 you can use the into instruction istead of branches btw. –  Nils Pipenbrinck Oct 13 '08 at 23:32
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I needed to answer this same question for floating point numbers, where bit masking and shifting does not look promising. The approach I settled on works for signed and unsigned, integer and floating point numbers. It works even if there is no larger data type to promote to for intermediate calculations. It is not the most efficient for all of these types, but because it does work for all of them, it is worth using.

Signed Overflow test, Addition and Subtraction:

  1. Obtain the constants that represent the largest and smallest possible values for the type, MAXVALUE and MINVALUE.

  2. Compute and compare the signs of the operands.

    a. If either value is zero, then neither addition nor subtraction can overflow. Skip remaining tests.

    b. If the signs are opposite, then addition cannot overflow. Skip remaining tests.

    c. If the signs are the same, then subtraction cannot overflow. Skip remaining tests.

  3. Test for positive overflow of MAXVALUE.

    a. If both signs are positive and MAXVALUE - A < B, then addition will overflow.

    b. If the sign of B is negative and MAXVALUE - A < -B, then subtraction will overflow.

  4. Test for negative overflow of MINVALUE.

    a. If both signs are negative and MINVALUE - A > B, then addition will overflow.

    b. If the sign of A is negative and MINVALUE - A > B, then subtraction will overflow.

  5. Otherwise, no overflow.

Signed Overflow test, Multiplication and Division:

  1. Obtain the constants that represent the largest and smallest possible values for the type, MAXVALUE and MINVALUE.

  2. Compute and compare the magnitudes (absolute values) of the operands to one. (Below, assume A and B are these magnitudes, not the signed originals.)

    a. If either value is zero, multiplication cannot overflow, and division will yield zero or an infinity.

    b. If either value is one, multiplication and division cannot overflow.

    c. If the magnitude of one operand is below one and of the other is greater than one, multiplication cannot overflow.

    d. If the magnitudes are both less than one, division cannot overflow.

  3. Test for positive overflow of MAXVALUE.

    a. If both operands are greater than one and MAXVALUE / A < B, then multiplication will overflow.

    b. If B is less than one and MAXVALUE * B < A, then division will overflow.

  4. Otherwise, no overflow.

Note: Minimum overflow of MINVALUE is handled by 3, because we took absolute values. However, if ABS(MINVALUE) > MAXVALUE, then we will have some rare false positives.

The tests for underflow are similar, but involve EPSILON (the smallest positive number greater than zero).

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On POSIX systems at least, the SIGFPE signal can be be enabled for floating point under/overflows. –  Chris Johnson May 24 '12 at 22:04
    
While converting to floating point and back works, it is (according to my testing on a 32bit machine) much slower than the other solutions. –  JanKanis Mar 11 at 1:43
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Try this macro to test the overflow bit of 32-bit machines (adapted the solution of Angel Sinigersky)

#define overflowflag(isOverflow){   \
size_t eflags;                      \
asm ("pushfl ;"                     \
     "pop %%eax"                    \
    : "=a" (eflags));               \
isOverflow = (eflags >> 11) & 1;}

I defined it as a macro because otherwise the overflow bit would have been overwritten.

Subsequent is a little application with the code segement above:

#include <cstddef>
#include <stdio.h>
#include <iostream>
#include <conio.h>
#if defined( _MSC_VER )
#include <intrin.h>
#include <oskit/x86>
#endif

using namespace std;

#define detectOverflow(isOverflow){     \
size_t eflags;                      \
asm ("pushfl ;"                     \
    "pop %%eax"                     \
    : "=a" (eflags));               \
isOverflow = (eflags >> 11) & 1;}

int main(int argc, char **argv) {

    bool endTest = false;
    bool isOverflow;

    do {
        cout << "Enter two intergers" << endl;
        int x = 0;
        int y = 0;
        cin.clear();
        cin >> x >> y;
        int z = x * y;
        detectOverflow(isOverflow)
        printf("\nThe result is: %d", z);
        if (!isOverflow) {
            std::cout << ": no overflow occured\n" << std::endl;
        } else {
            std::cout << ": overflow occured\n" << std::endl;
        }

        z = x * x * y;
        detectOverflow(isOverflow)
        printf("\nThe result is: %d", z);
        if (!isOverflow) {
            std::cout << ": no overflow ocurred\n" << std::endl;
        } else {
            std::cout << ": overflow occured\n" << std::endl;
        }

        cout << "Do you want to stop? (Enter \"y\" or \"Y)" << endl;

        char c = 0;

        do {
            c = getchar();
        } while ((c == '\n') && (c != EOF));

        if (c == 'y' || c == 'Y') {
            endTest = true;
        }

        do {
            c = getchar();
        } while ((c != '\n') && (c != EOF));

    } while (!endTest);
}
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Inline assembly lets you check the overflow bit directly. If you are going to be using C++, you really should learn assembly.

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4  
Inline assembly ties you to one architecture and causes the compiler to shutdown many optimizations. It should be generally avoided. –  James Curran Oct 13 '08 at 23:15
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A clean way to do it would be to override all operators (+ and * in particular) and check for an overflow before perorming the operations.

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Except that you can't override operators for builtin types. You'd need to write a class for that and rewrite client code to use it. –  Blaisorblade May 1 '10 at 17:02
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@MSalters: Good idea.

If the integer calculation is required (for precision), but floating point is available, you could do something like:

uint64_t foo( uint64_t a, uint64_t b ) {
    double   dc;

    dc = pow( a, b );

    if ( dc < UINT_MAX ) {
       return ( powu64( a, b ) );
    }
    else {
      // overflow
    }
}
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The simple way to test for overflow is to do validation by checking whether the current value is less than the previous value. For example, suppose you had a loop to print the powers of 2:

long lng; int n; for (n = 0; n < 34; ++n) { lng = pow (2, n); printf ("%li\n", lng); }

Adding overflow checking the way that I described results in this:

long signed lng, lng_prev = 0;
int n;
for (n = 0; n < 34; ++n)
  {
    lng = pow (2, n);
    if (lng <= lng_prev)
      {
        printf ("Overflow: %i\n", n);
        /* Do whatever you do in the event of overflow.  */
      }
    printf ("%li\n", lng);
    lng_prev = lng;
  }

It works for unsigned values as well as both positive and negative signed values.

Of course, if you wanted to do something similar for decreasing values instead of increasing values, you would flip the <= sign to make it >=, assuming the behaviour of underflow is the same as the behaviour of overflow. In all honesty, that's about as portable as you'll get without access to a CPU's overflow flag (and that would require inline assembly code, making your code non-portable across implementations anyway).

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To expand on Head Geek's answer, there is a faster way to do the addition_is_safe;

bool addition_is_safe(unsigned int a, unsigned int b)
{
    unsigned int L_Mask = std::numeric_limits<unsigned int>::max();
    L_Mask >>= 1;
    L_Mask = ~L_Mask;

    a &= L_Mask;
    b &= L_Mask;

    return ( a == 0 || b == 0 );
}

This uses machine-architecture safe, in that 64-bit and 32-bit unsigned integers will still work fine. Basically, I create a mask that will mask out all but the most significant bit. Then, I mask both integers, and if either of them do not have that bit set, then addition is safe.

This would be even faster if you pre-initialize the mask in some constructor, since it never changes.

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This is not correct. Carry might bring bits from lower positions that will cause overflow. Consider adding UINT_MAX + 1. After masking, a will have the high bit set, but 1 will become zero and therefore the function will return true, addition is safe - yet you are headed directly for overflow. –  the swine Apr 8 at 15:04
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It depends what you use it for. Performing unsigned long(DWORD) addition or Multiplication the best solution is to use ULARGE_INTEGER.

ULARGE_INTEGER is a structure of two DWORDs. The full value can be accessed as "QuadPart" while the hi DWORD is accessed as "HighPart" and the low DWORD is accessed as "LowPart"

For example:

DWORD My Addition(DWORD Value_A,DWORD Value_B) { ULARGE_INTEGER a,b;

   b.LowPart = Value_A;  // a 32 bit value(up to 32 bit)
   b.HighPart = 0;
   a.LowPart = Value_B;  // a 32 bit value(up to 32 bit)
   a.HighPart = 0;

   a.QuadPart += b.QuadPart;

   // if  a.HighPart
   // Then a.HighPart contains the overflow(carry)

   return (a.LowPart + a.HighPart)

// any overflow is stored in a.HighPart(up to 32 bits)

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Unfortunately, this is a Windows-only solution. Other platforms do not have ULARGE_INTEGER. –  Mysticial Oct 3 '13 at 23:48
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Another variant of solution using assembler is an external procedure. This example for unsigned integer multiplication using g++ and fasm under linux x64.

This procedure multiplies two unsigned integer arguments (32 bits) (according to specification they will are in edi and esi registers) and returns the result or 0 if an overflow has occured.

format ELF64

section '.text' executable 

public u_mul

u_mul:
  MOV eax, edi
  mul esi
  jnc u_mul_ret
  xor eax, eax
u_mul_ret:
ret

test:

extern "C" unsigned int u_mul(const unsigned int a, const unsigned int b);

int main() {
    printf("%u\n", u_mul(4000000000,2));//0
    printf("%u\n", u_mul(UINT_MAX/2,2));//ok
    return 0;
}

link program with asm object file. In my case in Qt Creator add it to LIBS in a .pro file

P.S. Sorry for my English

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#include <stdio.h>
#include <stdlib.h>

#define MAX 100 

int mltovf(int a, int b)

{

    if (a && b) return abs(a) > MAX/abs(b);
    else return 0;

}

main()

{

    int a, b;

    for (a = 0; a <= MAX; a++)
         for (b = 0; b < MAX; b++) {

        if (mltovf(a, b) != (a*b > MAX)) 
            printf("Bad calculation: a: %d b: %d\n", a, b);

    }

}
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protected by Yu Hao Oct 4 '13 at 0:35

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