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I would like to see if a string contains a double as its sole contents. In other words, if it could possibly be the output of the following function:

string doubleToString(double num)
{
    stringstream s;
    s << num;
    return s.str();
}
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3  
intToString is a funny name for a function that converts a double into a string. –  Ben Voigt May 9 '11 at 4:19
    
@Ben ha! Fixed! :) –  wrongusername May 9 '11 at 4:28
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5 Answers

up vote 5 down vote accepted

You want the strtod function.

bool isOnlyDouble(const char* str)
{
    char* endptr = 0;
    strtod(str, &endptr);

    if(*endptr != '\0' || endptr == str)
        return false;
    return true;
}
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If no conversion is performed, zero is returned and the value of nptr is stored in the location referenced by endptr. It appears I cannot utilize this method of detecting doubles if it happens to be 0 –  wrongusername May 9 '11 at 4:12
    
Yes you can, see the code. –  Chris May 9 '11 at 4:14
    
Ah, okay. Thanks Chris! –  wrongusername May 9 '11 at 4:14
2  
if (x) return false; [else] return true; is better expressed as `return !(x); –  Tony D May 9 '11 at 5:07
3  
Chris: it factors the code better: removes a redundant "return", the keywords true and false that are obviously the results of any logical test, as well as the if statement that also implicit in the situation. So, that proves it's more concise. I can not prove it's simpler or better per se - that depends on the programmer maintaining it. Still, after 28 years programming I can assure you the industry's expectation and best practice is that programmers should make the small effort to get their mind around the essential nature of booleans and simplify the code accordingly. –  Tony D May 9 '11 at 5:26
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You can use the Boost lexical_cast to check whether a string contains double or not.

#include <boost/lexical_cast.hpp> 
....
using boost::lexical_cast; 
using boost::bad_lexical_cast; 
....
template<typename T> bool isValid(const string& num) { 
   bool flag = true; 
   try { 
      T tmp = lexical_cast<T>(num); 
   } 
   catch (bad_lexical_cast &e) { 
      flag = false; 
   } 
   return flag; 
} 

int main(){
  // ....
 if (isValid<double>(str))
     cout << "valid double." << endl; 
 else 
     cout << "NOT a valid double." << endl;
  //....
}
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Why a downvote? –  Prasoon Saurav May 9 '11 at 4:20
2  
-1 for abuse of exceptions. Exceptions should not be used for control flow, only for handling exceptional circumstances. –  Ben Voigt May 9 '11 at 4:20
    
Heh, clearly you've never used python :) –  Chris May 9 '11 at 4:21
1  
@Ben Voigt : I think the code is perfectly fine and cleaner than the code snippet posted by Chris. lexical_cast<T>(num); throws an exception on failure. I couldn't think of a better alternative. –  Prasoon Saurav May 9 '11 at 4:26
1  
@Chris: But really, it's catching an exception to turn it into a return value that's the code smell. One wouldn't find that in python. Either you have a language with lightweight exceptions, and use them to report failure, or heavyweight exceptions, like C++, where return codes are used for anticipated failures. –  Ben Voigt May 9 '11 at 4:28
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You've been offered C-style and boost alternatives, but in the style of your doubleToString implementation:

bool is_double(const std::string& s)
{
    std::istringstream iss(s);
    double d;
    char c;
    return iss >> d && !(is >> c);
}

Here, you're checking iss >> d returns iss, which will only evaluate to true in a boolean context if the streaming was successful. Further, the attempt to stream to c and expectation of failure ensures there's no trailing garbage. If you want to consider leading and trailing whitespace garbage too, then simply stream ala iss >> std::noskipws >> d.

If you don't like the is >> c approach, an alternative is is.ignore(), which also returns *this (iss) and can therefore be tested similarly:

    return iss >> d && !is.ignore();

Of course, this can be generalised into a boolean-returning test similar to lexical_cast<>...

template <typename T>
bool is(const std::string& s)
{
    std::istringstream iss(s);
    T x;
    char c;
    return iss >> x && !(is >> c);
}

...
if (is<double>("3.14E0")) ...
if (is<std::string>("hello world")) ...; // note: NOT a single string
                                         // as streaming tokenises at
                                         // whitespace by default...
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Or use streams directly:

#include <string>
#include <sstream>
#include <iostream>

template<typename T>
bool isValid(std::string const& num)
{
    T  value;
    std::stringstream stream(num);
    stream >> value;

    // If the stream is already in the error state peak will not change it.
    // Otherwise stream should be good and there should be no more data
    // thus resulting in a peek returning an EOF
    return (stream) &&
           stream.peek() == std::char_traits<typename std::stringstream::char_type>::eof();
}

int main()
{
    isValid<double>("55");
}
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Since no one else has mentioned it: the obvious solution is you want to know whether a string has a given syntax is to use regular expressions. I'm not sure that it's the best solution in this case, since the regular expression for a legal double is fairly complex (and thus easy to get wrong). And your specification is somewhat vague: do you want to accept any string which can be parsed (by >> for example) as a legal double, or only strings can be returned by your doubleToString function? If the former, the simplest solution is probably to convert the string to a double, making sure that there is no error and you have consumed all of the characters (Martin's solution, except that it's silly to make it a template until you need to). If the latter, the easiest solution is to reconvert the double you've found back into a string, using your function, and compare the two strings. (Just to make the difference clear: Martin's function will return true for things like "&nbsp;&nbsp;1.0", "1E2", ".00000000001" and "3.14159265358979323846264338327950288419716939937", which your function will never generate.)

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