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I'm trying to convert the string to int with stringstream, the code down below works, but if i use a number more then 1234567890, like 12345678901 then it return 0 back ...i dont know how to fix that, please help me out

std:: string number= "1234567890";

int Result;//number which will contain the result

std::stringstream convert(number.c_str()); // stringstream used for the conversion initialized with the contents of Text

if ( !(convert >> Result) )//give the value to Result using the characters in the string
    Result = 0;

printf ("%d\n", Result);
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You don't need the .c_str() there. –  chris Jul 25 '12 at 22:05
1  
Why did you tag this C? –  Luchian Grigore Jul 25 '12 at 22:06
2  
12345678901 is too large for an int, hence the conversion fails. –  Daniel Fischer Jul 25 '12 at 22:06
    
Hint: try #include <limits> and std::cout << std::numeric_limits<int>::max() << std::endl; –  aschepler Jul 25 '12 at 22:07

5 Answers 5

up vote 0 down vote accepted

Hm, lots of disinformation in the existing four or five answers.

An int is minimum 16 bits, and with common desktop system compilers it’s usually 32 bits (in all Windows version) or 64 bits. With 32 bits it has maximum 232 distinct values, which, setting K=210 = 1024, is 4·K3, i.e. roughly 4 billion. Your nearest calculator or Python prompt can tell you the exact value.

A long is minimum 32 bits, but that doesn’t help you for the current problem, because in all extant Windows variants, including 64-bit Windows, long is 32 bits…

So, for better range than int, use long long. It’s minimum 64 bits, and in practice, as of 2012 it’s 64 bits with all compilers. Or, just use a double, which, although not an integer type, with the most common implementation (IEEE 754 64-bit) can represent integer values exactly with, as I recall, about 51 or 52 bits – look it up if you want exact number of bits.

Anyway, remember to check the stream for conversion failure, which you can do by s.fail() or simply !s (which is equivalent to fail(), more precisely, the stream’s explicit conversion to bool returns !fail()).

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OP didn't specify Windows, so although it was evident that the platform wasn't ILP64 it could have been either LP64 or LLP64, meaning long was a feasible answer. –  ecatmur Jul 25 '12 at 22:32
    
Also, OP's code is checking the fail status: if ( !(convert >> Result) ) –  ecatmur Jul 25 '12 at 22:33
1  
@ecatmur: thanks for pointing out the checking in the OP's code. I didn't look very closely at the code at all. You correctly identified what I considered to be disinformation in your answer, namely the advice to use long, which, since long is just 32 bits on the most common system (Windows), is ungood: if more than 32 bits are needed, use a type that guarantees more than 32 bits, and not one that might or might not have more. –  Cheers and hth. - Alf Jul 25 '12 at 22:38

the maximum number an int can contain is slightly more than 2 billion. (assuming ubiquitios 32 bit ints)

It just doesn't fit in an int!

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should i use long instead or what? –  user1552972 Jul 25 '12 at 22:08
1  
Depends on the compiler. Sometimes a long is 32 bit (windows!). long long will be 64 bit almost everywhere. –  user180326 Jul 25 '12 at 22:11
1  
@user1552972: You won't get a useful answer about what you should do unless you tell us what your requirements are. (And, in this case, it would help to know what platform you're using.) –  David Schwartz Jul 25 '12 at 22:12

The largest unsigned int (on a 32-bit platform) is 2^32 (4294967296), and your input is larger than that, so it's giving up. I'm guessing you can get an error code from it somehow. Maybe check failbit or badbit?

int Result;
std::stringstream convert(number.c_str());
convert >> Result;
if(convert.fail()) {
    std::cout << "Bad things happened";
}
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If you're on a 32-bit or LP64 64-bit system then int is 32-bit so the largest number you can store is approximately 2 billion. Try using a long or long long instead, and change "%d" to "%ld" or "%lld" appropriately.

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Or int64_t if you want to be really explicit. –  chris Jul 25 '12 at 22:12
    
i used long long amd tried int64_t same... –  user1552972 Jul 25 '12 at 22:19
    
it return -539222987 –  user1552972 Jul 25 '12 at 22:21
    
change "%d" to "%ld" or "%lld". –  ecatmur Jul 25 '12 at 22:26

The (usual) maximum value for a signed int is 2.147.483.647 as it is (usually) a 32bit integer, so it fails for numbers which are bigger.

if you replace int Result; by long Result; it should be working for even bigger numbers, but there is still a limit. You can extend that limit by factor 2 by using unsigned integer types, but only if you don't need negative numbers.

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tried that,but it return now:-539222987 –  user1552972 Jul 25 '12 at 22:21
    
it seems that you are experiencing overflows which suggest that the type you use just isn't big enough. Check for the actual size by printing sizeof(int) or sizeof(long). The result is the number of bytes that this type can store. For the input "1234567890", which is rougly 2^34 you'll need a type with at least 5 bytes (usually you'll only get 8 as the next bigger thing after int) –  stefan Jul 25 '12 at 22:26

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