41

When using the function atoi (or strtol or similar functions for that matter), how can you tell if the integer conversion failed or if the C-string that was being converted was a 0?

For what I'm doing, 0 is an acceptable value and the C-string being converted may contain any number of 0s. It may also have leading whitespace.

10
  • 2
    Why do you think strtol() is deprecated? It is a perfectly good, sound function from the C standard. If you care about success/failure, then you clearly should not use atoi(); there is no way for it to tell you whether it succeeded and returned 0 or failed and returned 0. Oct 28, 2009 at 23:24
  • 3
    atoi is not deprecated it was never in the standard to begin with. It was an example from K&R that was seen as a useful extension.
    – stonemetal
    Oct 28, 2009 at 23:49
  • 1
    Very well. I don't know the history or details of atoi and have removed any references to deprecation.
    – Jared
    Oct 28, 2009 at 23:57
  • 5
    @stonemetal: Not true. atoi and the entire ato... company are standard functions. They are present in C99 as well. Oct 29, 2009 at 0:11
  • 1
    The accepted answer is outdated; see emlai's answer instead.
    – code_dredd
    Aug 2, 2017 at 6:00

6 Answers 6

51

The proper function (as long as you are insisting on using C-style functions) is strtol and the conversion code might look as follows

const char *number = "10"; /* for example */

char *end;
long value = strtol(number, &end, 10); 
if (end == number || *end != '\0' || errno == ERANGE)
  /* ERROR, abort */;

/* Success */
/* Add whatever range checks you want to have on the value of `value` */

Some remarks:

strtol allows (meaning: quietly skips) whitespace in front of the actual number. If you what to treat such leading whitespace as an error, you have to check for it yourself.

The check for *end != '\0' makes sure that there's nothing after the digits. If you want to permit other characters after the actual number (whitespace?), this check has to be modified accordingly.

P.S. I added the end == number check later to catch empty input sequences. "All whitespace" and "no number at all" inputs would have been caught by *end != '\0' check alone. It might make sense to catch empty input in advance though. In that case end == number check will/might become unnecessary.

12
  • 1
    It should be end == number (no dereference).
    – Chris Lutz
    Oct 29, 2009 at 0:26
  • Oops... Sorry. Fixed. Thank you. Oct 29, 2009 at 0:27
  • This is a good solution if confined to using C and not C++. I had only been exposed to atoi so I didn't know what options were available. Your use of strol is obviously a better C solution, but I am able to use C++ (only std libs though) so a template conversion function that simulates lexical_cast from the Boost library works best for my use. Thanks though! I'm sure this will come in handy sometime! :)
    – Jared
    Oct 29, 2009 at 17:32
  • Would not the (end == number) check be sufficient? The C99 standard says (7.20.1.4-7 for the TR1,2 version of the standard) "If the subject sequence is empty or does not have the expected form, no conversion is performed; the value of nptr is stored in the object pointed to by endptr, provided that endptr is not a null pointer.".
    – mlvljr
    Jan 5, 2011 at 15:42
  • 1
    @XAleXOwnZX: What you are saying is formally correct. But I vocally object to using just *end on purely stylistic principles. In my book only values with explicit boolean semantics are allowed to be used in logical expressions without explicit comparison operator. All other values should be used with an explicit comparison operator, regardless of whether it is "redundant" or not. In this particular case I'd regard using *end in a logical expression as a bad coding style and a bad programming practice. I personally insist on using *end != '\0'. Oct 6, 2014 at 23:57
23

Since this is tagged :

template< typename T >
inline T convert(const std::string& str)
{
    std::istringstream iss(str);
    T obj;

    iss >> std::ws >> obj >> std::ws;

    if(!iss.eof())
        throw "dammit!";

    return obj; 
}
6
  • I can use C++ so perhaps this is a better solution than using strtol, but I don't understand this code.
    – Jared
    Oct 28, 2009 at 23:42
  • @Jared: Is it easier to understand if you remove that template< typename T> and replace all T by int? The function initializes an input stream with the string to be read, creates an object, and tries to read from the stream into the object. If the reading fails or anything but whitespace is before/after what's to be read, the function should emit an error (which I've indicated by throwing an exception). If all went well, the object is returned. If you'd be a bit more specific on what's unclear, I could expand on that.
    – sbi
    Oct 29, 2009 at 1:13
  • 3
    Now that I've taken some time to understand templates, this makes sense and is a perfect solution! Thanks! I found a more detailed post that has several different options too: stackoverflow.com/questions/1243428/…
    – Jared
    Oct 29, 2009 at 17:35
  • Yes, GMan's version there is a bit more sophisticated. :)
    – sbi
    Oct 29, 2009 at 18:57
  • This answer is outdated; see emlai's answer instead.
    – code_dredd
    Aug 2, 2017 at 5:59
14

For C++11 and later:

The go-to function for string-to-integer conversion is now stoi, which takes a string and returns an int, or throws an exception on error.

No need for the verbose istringstream hack mentioned in the accepted answer anymore.

(There's also stol/stoll/stof/stod/stold for long/long long/float/double/long double conversions, respectively.)

2
  • 1
    This should really be the accepted answer now. Also, note that the exception raised by std::stoi is std::invalid_argument.
    – code_dredd
    Aug 2, 2017 at 5:58
  • 1
    @ray It may also throw std::out_of_range.
    – emlai
    Aug 2, 2017 at 10:32
6

From the man page for strtol():

If endptr is not NULL, strtol() stores the address of the first invalid character in *endptr. If there were no digits at all, however, strtol() stores the original value of nptr in *endptr. (Thus, if *nptr is not '\0' but **endptr is '\0' on return, the entire string was valid.)

2

An alternative to strtol is sscanf, although it's a little heavy-weight:

const char *numStr = "12345";  // input string
int value;
if(sscanf(numStr, "%d", &value) == 1)
    ;  // parsing succeeded, use value
else
    ;  // error

However, this allows leading whitespace in your string (which may or may not be desirable), and it allows anything to trail the number, so "123abc" would be accepted and return 123. If you want to have tighter control, go with strtol(), as AndreyT demonstrates.

1
  • 5
    sscanf is better that atoi since it provides at least some feedback. However, it is still limited. sscanf, unfortunately, can't survive overflow. In case of overflow, sscanf produces undefined behavior. This is why strto... family is basically the only reliable way to perform the conversion in C standard library. Oct 29, 2009 at 3:43
1

It's been a while since I've done and C/C++, but it would appear to me that the (overly) simple solution would be to check just the string for "0".

int value = atoi(string_number.c_str());

if ( !value && string_number != "0" ) {
  // error
} else {
  // great success!
}
3
  • 2
    What about 00, +0, -0, <whitespace>0. Are these errors too? I understand that they could be from the user's point of view. But keep in mind that these are not errors from traditional standard library point of view. For example, these are fine by atoi, strtol, scanf... Oct 28, 2009 at 23:36
  • string_number may contain any number of zeros, so this is not an ideal solution, though I considered it. Thanks anyway.
    – Jared
    Oct 28, 2009 at 23:38
  • A year latter and a down vote? I wonder why. Something constructive, hopefully. Nov 6, 2010 at 7:45

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