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This question already has an answer here:

Just have a quick question. I've looked around the internet quite a bit and I've found a few solutions but none of them have worked yet. Looking at converting a string to an int and I don't mean ASCII codes.

For a quick run-down, we are passed in an equation as a string. We are to break it down, format it correctly and solve the linear equations. Now, in saying that, I'm not able to convert a string to an int.

I know that the string will be in either the format (-5) or (25) etc. so it's definitely an int. But how do we extract that from a string?

One way I was thinking is running a for/while loop through the string, check for a digit, extract all the digits after that and then look to see if there was a leading '-', if there is, multiply the int by -1.

It seems a bit over complicated for such a small problem though. Any ideas?

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marked as duplicate by Ben Voigt c++ Feb 20 '15 at 17:10

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

5  
Have you tried atoi()? – i_am_jorf Oct 5 '11 at 15:26
2  
2  
4  
@Chad So you're recommending he use an entire library for something the language can do with standard libraries anyway? – Bojangles Oct 5 '11 at 15:30
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@Brandon, if you have a std::string myString, and want to use atoi, then you want to say atoi(myString.c_str()). – Robᵩ Oct 5 '11 at 15:44

11 Answers 11

up vote 281 down vote accepted

In C++11 there are some nice new convert functions from std::string to a number type.

So instead of

atoi( str.c_str() )

you can use

std::stoi( str )

where str is your number as std::string.

There are version for all flavours of numbers: long stol(string), float stof(string), double stod(string),... see http://en.cppreference.com/w/cpp/string/basic_string/stol

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For issues with std::stoi see stackoverflow.com/a/6154614/195527 : it will convert "11x" to integer 11. – CC. Jul 17 '15 at 20:37
    
#include <stdlib.h> /* atoi */ – Vlad is Glad Apr 12 at 19:54
std::istringstream ss(thestring);
ss >> thevalue;

To be fully correct you'll want to check the error flags.

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This will not extract -5 from (-5). – Nawaz Oct 5 '11 at 15:32
    
@Nawaz, are the parens actually there, or is that just how the OP is presenting his strings? – Winston Ewert Oct 5 '11 at 15:35
    
I don't know. I'm just pointing out the limitation of the approach. – Nawaz Oct 5 '11 at 15:38
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@Nawaz, It also can't operate on the input "WERWER". I don't think the parens are actually part of his actual string and I don't think the fact that I don't parse them is relevant. – Winston Ewert Oct 5 '11 at 18:10
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@Nawaz, ok... I don't take the word that way but I see how you could. – Winston Ewert Oct 5 '11 at 18:16

use the atoi function to convert the string to an integer:

string a = "25";

int b = atoi(a.c_str());

http://www.cplusplus.com/reference/clibrary/cstdlib/atoi/

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3  
Never ever use atoi. strtol does everything atoi does, but better, and fails safely. – Ben Voigt Feb 20 '15 at 17:06

How about Boost.Lexical_cast?

Here is their example:

The following example treats command line arguments as a sequence of numeric data:

int main(int argc, char * argv[])
{
    using boost::lexical_cast;
    using boost::bad_lexical_cast;

    std::vector<short> args;

    while(*++argv)
    {
        try
        {
            args.push_back(lexical_cast<short>(*argv));
        }
        catch(bad_lexical_cast &)
        {
            args.push_back(0);
        }
    }
    ...
}
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The link is broken. Could you fix it? – Yuchen Zhong Mar 7 at 17:45

Admittedly, my solution wouldn't work for negative integers, but it will extract all positive integers from input text containing integers. It makes use of numeric_only locale:

int main() {
        int num;
        std::cin.imbue(std::locale(std::locale(), new numeric_only()));
        while ( std::cin >> num)
             std::cout << num << std::endl;
        return 0;
}

Input text:

 the format (-5) or (25) etc... some text.. and then.. 7987...78hjh.hhjg9878

Output integers:

 5
25
7987
78
9878

The class numeric_only is defined as:

struct numeric_only: std::ctype<char> 
{
    numeric_only(): std::ctype<char>(get_table()) {}

    static std::ctype_base::mask const* get_table()
    {
        static std::vector<std::ctype_base::mask> 
            rc(std::ctype<char>::table_size,std::ctype_base::space);

        std::fill(&rc['0'], &rc[':'], std::ctype_base::digit);
        return &rc[0];
    }
};

Complete online demo : http://ideone.com/dRWSj

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The possible options are described here.

Summing up, the best solution is C++11 std::stoi() or, as a second option, the use of Qt libraries. All other solutions are discouraged or buggy.

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atoi is a built-in function that converts a string to an integer, assuming that the string begins with an integer representation.

http://www.cplusplus.com/reference/clibrary/cstdlib/atoi/

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Any time you think about atoi, use strtol instead. – Ben Voigt Feb 20 '15 at 17:06

It's probably a bit of overkill, but boost::lexical_cast<int>( theString& ) should to the job quite well.

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theString&? What is &? – ildjarn Oct 5 '11 at 16:35
    
A typo. It should be simply boost::lexical_cast<int>( theString ) (where theString is the name of the variable which contains the string you want to convert to int). – James Kanze Oct 5 '11 at 17:07

there is another easy way : suppose you have a character like c='4' therefore you can do one of these steps :

1st : int q

q=(int) c ; (q is now 52 in ascii table ) . q=q-48; remember that adding 48 to digits is their ascii code .

the second way :

q=c-'0'; the same , character '0' means 48

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1  
The question is about converting from string to int rather than from char to string. – Yuchen Zhong May 29 '14 at 1:49

In Windows, you could use:

const std::wstring hex = L"0x13";
const std::wstring dec = L"19";

int ret;
if (StrToIntEx(hex.c_str(), STIF_SUPPORT_HEX, &ret)) {
    std::cout << ret << "\n";
}
if (StrToIntEx(dec.c_str(), STIF_SUPPORT_HEX, &ret)) {
    std::cout << ret << "\n";
}

strtol,stringstream need to specify the base if you need to interpret hexdecimal.

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This normally works when I use it:

int myint = int::Parse(mystring);
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Why the downvotes, I'm curious? – neuronet Feb 8 '14 at 17:22
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Probably because that is C# and not C++. – JHagdahl Apr 10 '14 at 17:05
    
Actually, it is probably Visual C++. In C#, it would be int.Parse. – ShdNx Jul 9 '14 at 12:05
    
Seems like some custom helper to me – paulm Mar 25 '15 at 16:20

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