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In C++ I have only seen this done by converting the string object into an array of characters. The tutorials with an array are a bit hard for me to understand. But I want to do the conversion without the array.

I do have an idea how to do it: the string is "1234". After that I convert this text to an integer this way:

if (symol4 == "4") int_var += 4 * 1;
if (symol3 == "3") int_var += 3 * 10;
if (symol3 == "2") int_var += 2 * 100;
if (symol3 == "1") int_var += 1 * 1000; //Don't worry, I'm familiar with cycles, this code is only for explaining my algorithm

I hope you can understand the idea.

But I don't know if this is the best way. I don't know if there is a library that has a function that allows me to do that (I won't be surprised if there is one).

I don't know if not using a char array is a good idea. But that's a different question that I'm going to ask later.

What's the best way to convert a string to an integer, double, etc WITHOUT using an array of characters.

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4  
But string is by definition an array of characters! –  littleadv Jan 20 '12 at 21:42
    
are you referring to std::string ? Because otherwise string is indeed an array of characters. –  Hari Jan 20 '12 at 21:43
    
littleadv, I know. But I want to do that without another array of characters. –  AlexSavAlexandrov Jan 20 '12 at 21:43
    
It seems that you want to treat each digit as a (sub)string? A digit is just one character. –  UncleBens Jan 20 '12 at 21:47

6 Answers 6

up vote 8 down vote accepted

boost::lexical_cast to the rescue: int result = boost::lexical_cast<int>(input)

If you don't want to rely on boost, you can use a stringstream, something like:

std::stringstream ss;
int result;
ss << input;
ss >> result;

but that's rather roundabout imo

And no don't use atoi - that function was flawed even back in C and it hasn't gotten better with time. It returns 0 when an error happened while parsing - which has the obvious problem how you distinguish an error from parsing the string "0".

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I like "And no don't use atoi"! –  Krizz Jan 20 '12 at 21:49
    
I think the question is saying he wants to take 1234 and break that up into 4 ints, 4, 30, 200 and 1000. –  Jesse Good Jan 20 '12 at 21:51
    
boost::lexical_cast it is. Thanks! –  AlexSavAlexandrov Jan 20 '12 at 21:58
1  
int result = ((std::stringstream()<<input) >> output).str(); –  Mooing Duck Jan 20 '12 at 22:19

I really can't get what your pasted code is about, but in C++ the best way to convert string to integer or float is to use stringstream.

const char* str = "10 20.5";
std::stringstream ss(str);
int x;
float y;

ss >> x >> y;
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There is a function atoi which you can use. This converts it to a character array, but you don't have to do the math involved with indexing the array in a for loop.

#include <stdlib.h>
...
String number = "1234";    
int value = atoi(number.c_str());
std::cout << number;
...

For the atoi nay sayers, hopefully he'll understand this >.>

#include <boost/lexical_cast.hpp>

try {
    int x = boost::lexical_cast<int>( "123" );
} catch( boost::bad_lexical_cast const& ) {
    std::cout << "Error: input string was not valid" << std::endl;
}

The best way is the most efficient way, I don't think you'll find a better alternative to this, or using a character array.

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2  
atoi in a question tagged for c++? I hope not. The design problems with THAT function are numerous. –  Voo Jan 20 '12 at 21:44
    
Too C-ish for c++ tag. –  Krizz Jan 20 '12 at 21:45

The standard string class already has a member function that gives you access to the internal character array, c_str(), so you can just pass this to one of the standard C library functions that parse integers, such as strtol():

string s = "1234";
long n = strtol(s.c_str(), 0, 10);

That's the simplest code if you already know the string is a valid integer and don't care about error checking. If you want full error checking you would do something like this:

char* end = 0;
errno = 0;
long n = strtol(s.c_str(), &end, 10);
if (end == 0 || *end == 0)
    throw invalid_argument("Not a number");
else if (errno == ERANGE)
    throw overflow_error("Number is out of range");
else if (errno != 0)
    throw invalid_argument("Not a number");

Alternatively you could use C++ streams if you want to avoid C style character arrays completely (or rather, hide them completely inside the classes):

istringstream in(s);
int n;
in >> n;

You could also use boost::lexical_cast, which does basically the same thing.

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  • I recommend Boost.Lexical_Cast

  • Or see the upcoming Boost.Conversion

  • Can also be achieved using Boost.Spirit, but is somewhat more complex

See "The String Formatters of Manor Farm" article of Herb Sutter.

See URI's from above articles here: http://krunchd.com/so_8948179 (Stackoverflow don't let me post more than two hyperlinks)

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You might want to look at the atoi function.

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3  
This question has C++ tag, not C. –  Krizz Jan 20 '12 at 21:46

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