Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

When I use getline, I would input a bunch of strings or numbers, but I only want the while loop to output the "word" if it is not a number. So is there any way to check if "word" is a number or not? I know I could use atoi() for C-strings but how about for strings of the string class?

int main () {
  stringstream ss (stringstream::in | stringstream::out);
  string word;
  string str;
  getline(cin,str);
  ss<<str;
  while(ss>>word)
    {
      //if(    )
        cout<<word<<endl;
    }
}
share|improve this question
2  
Duplicate? stackoverflow.com/questions/1243428/… – GManNickG May 16 '10 at 18:51
up vote 32 down vote accepted

Another version...

Use strtol, wrapping it inside a simple function to hide its complexity :

inline bool isInteger(const std::string & s)
{
   if(s.empty() || ((!isdigit(s[0])) && (s[0] != '-') && (s[0] != '+'))) return false ;

   char * p ;
   strtol(s.c_str(), &p, 10) ;

   return (*p == 0) ;
}

Why strtol ?

As far as I love C++, sometimes the C API is the best answer as far as I am concerned:

  • using exceptions is overkill for a test that is authorized to fail
  • the temporary stream object creation by the lexical cast is overkill and over-inefficient when the C standard library has a little known dedicated function that does the job.

How does it work ?

strtol seems quite raw at first glance, so an explanation will make the code simpler to read :

strtol will parse the string, stopping at the first character that cannot be considered part of an integer. If you provide p (as I did above), it sets p right at this first non-integer character.

My reasoning is that if p is not set to the end of the string (the 0 character), then there is a non-integer character in the string s, meaning s is not a correct integer.

The first tests are there to eliminate corner cases (leading spaces, empty string, etc.).

This function should be, of course, customized to your needs (are leading spaces an error? etc.).

Sources :

See the description of strtol at: http://en.cppreference.com/w/cpp/string/byte/strtol.

See, too, the description of strtol's sister functions (strtod, strtoul, etc.).

share|improve this answer
2  
+1, by far the best answer. lexical_cast is overkill and it borders on bad practice. – David Titarenco May 16 '10 at 20:29
1  
@David Titarenco : lexical_cast is overkill and it borders on bad practice : Only when used carelessly, and the same can be said for any other feature. The real use of boost::lexical_cast is for generic code, or quick and dirty code. Generic code: When you have an unknown type T, using a switch to use strtol, strtol, etc. is a mistake. Using a boost::lexical_cast is the right thing, providing the boost::lexical_cast specializations for the right types for efficient use. Quick'n'dirty code: If that code does not need speed, then using boost::lexical_cast is the easiest way to do it. – paercebal Oct 27 '11 at 13:32

You might try boost::lexical_cast. It throws an bad_lexical_cast exception if it fails.

In your case:

int number;
try
{
  number = boost::lexical_cast<int>(word);
}
catch(boost::bad_lexical_cast& e)
{
  std::cout << word << "isn't a number" << std::endl;
}
share|improve this answer

If you're just checking if word is a number, that's not too hard:

#include <ctype.h>

...

string word;
bool isNumber = true;
for(string::const_iterator k = word.begin(); k != word.end(); ++k)
    isNumber &&= isdigit(*k);

Optimize as desired.

share|improve this answer

You can use boost::lexical_cast, as suggested, but if you have any prior knowledge about the strings (i.e. that if a string contains an integer literal it won't have any leading space, or that integers are never written with exponents), then rolling your own function should be both more efficient, and not particularly difficult.

share|improve this answer

Ok, the way I see it you have 3 options.

1: If you simply wish to check whether the number is an integer, and don't care about converting it, but simply wish to keep it as a string and don't care about potential overflows, checking whether it matches a regex for an integer would be ideal here.

2: You can use boost::lexical_cast and then catch a potential boost::bad_lexical_cast exception to see if the conversion failed. This would work well if you can use boost and if failing the conversion is an exceptional condition.

3: Roll your own function similar to lexical_cast that checks the conversion and returns true/false depending on whether it's successful or not. This would work in case 1 & 2 doesn't fit your requirements.

share|improve this answer
1  
Pick A. Regex won't tell you if it overflows the range of an integer. – Billy ONeal May 16 '10 at 18:09
    
Oh, right, forgot about overflow, duh, will strike that. – Jacob May 16 '10 at 18:17
    
Original question doesn't mention wanting to check for overflows or even wanting to use a number as an integer. For all I'd know, they're planning on keeping the number in a string to avoid such limits. – Mike DeSimone May 16 '10 at 18:23
    
Alright, I tried changing the reply to include the 3 options I had originally listed, with a reason for each of them. – Jacob May 16 '10 at 18:51

Use the all-powerful C stdio/string functions:

int dummy_int;
int scan_value = std::sscanf( some_string.c_str(), "%d", &dummy_int);

if (scan_value == 0)
    // does not start with integer
else
    // starts with integer
share|improve this answer
    
If sscanf returns the number of matched items, then your example (comments) is wrong. Or do I misunderstand something? – Sebastian Mach Oct 23 '13 at 7:51
template <typename T>
const T to(const string& sval)
{
        T val;
        stringstream ss;
        ss << sval;
        ss >> val;
        if(ss.fail())
                throw runtime_error((string)typeid(T).name() + " type wanted: " + sval);
        return val;
}

And then you can use it like that:

double d = to<double>("4.3");

or

int i = to<int>("4123");
share|improve this answer
    
I'd rather use boost::lexical_cast. – tstenner May 16 '10 at 19:26
    
Your example implies using namespace std; this is bad in the general case. – Sebastian Mach Oct 23 '13 at 7:45

I have modified paercebal's method to meet my needs:

typedef std::string String;    

bool isInt(const String& s, int base){
   if(s.empty() || std::isspace(s[0])) return false ;
   char * p ;
   strtol(s.c_str(), &p, base) ;
   return (*p == 0) ;
}


bool isPositiveInt(const String& s, int base){
   if(s.empty() || std::isspace(s[0]) || s[0]=='-') return false ;
   char * p ;
   strtol(s.c_str(), &p, base) ;
   return (*p == 0) ;
}


bool isNegativeInt(const String& s, int base){
   if(s.empty() || std::isspace(s[0]) || s[0]!='-') return false ;
   char * p ;
   strtol(s.c_str(), &p, base) ;
   return (*p == 0) ;
}

Note:

  1. You can check for various bases (binary, oct, hex and others)
  2. Make sure you don't pass 1, negative value or value >36 as base.
  3. If you pass 0 as the base, it will auto detect the base i.e for a string starting with 0x will be treated as hex and string starting with 0 will be treated as oct. The characters are case-insensitive.
  4. Any white space in string will make it return false.
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.