18

How to convert program parameter from argv to int64_t? atoi() is suitable only for 32 bit integers.

  • On a platform where int64_t is the same as long, then the quick hacky way is to just use atol(). – Oliver Charlesworth Jun 8 '13 at 19:18
  • 1
    Using sscanf with a matching specifier for int64_t may provide a platform independent method. – chux Jun 8 '13 at 19:48
  • 2
    Slightly pedantic point: what you're asking is not how to convert char * to int64_t (if you wanted that, a simple cast would be the answer) but instead how to convert a string pointed to by the char *, which represents a number in some human-oriented textual convention like a decimal string, to int64_t. – R.. Jun 8 '13 at 20:41
  • @R.. True enough. ;) – pmichna Jun 8 '13 at 20:42
12

A C99 conforming attempt.

[edit] employed @R. correction

// Note: Typical values of SCNd64 include "lld" and "ld".
#include <inttypes.h>
#include <stdio.h>

int64_t S64(const char *s) {
  int64_t i;
  char c ;
  int scanned = sscanf(s, "%" SCNd64 "%c", &i, &c);
  if (scanned == 1) return i;
  if (scanned > 1) {
    // TBD about extra data found
    return i;
    }
  // TBD failed to scan;  
  return 0;  
}

int main(int argc, char *argv[]) {
  if (argc > 1) {
    int64_t i = S64(argv[1]);
    printf("%" SCNd64 "\n", i);
  }
  return 0;
}
  • 2
    +1 for the clever thought to use sscanf, but it's SCNd64, not PRId64, that you need. I'm also unclear on whether sscanf has to behave well on overflow. – R.. Jun 8 '13 at 20:52
  • @R.. I think the scanf() family is specified to work like strtol() family of functions. In the latter, range errors cause ERANGE to be stored in errno. (C11 draft 7.8.2.3.3). So an errno test could be incorporated. – chux Jun 8 '13 at 21:10
  • 1
    @chux Are you sure? According to this SCNd64 is for scanf and PRId64 is for printf. – pmichna Jun 10 '13 at 22:24
  • @chux: I can't find anywhere scanf is specified to behave like that. The specification for scanf doesn't even state any requirement for how the value to be determined is stored. It just specifies the expected format of the input and required type of the output, but nothing about the conversion procedure. This seems to be an oversight, but it leaves a lot of ambiguity in regards to error handling... – R.. Jun 10 '13 at 22:29
  • @R.. My suggestion that the scanf() family is specified to work like strtol() comes from C11 Draft 7.21.6.2.12: "d Matches an optionally signed decimal integer, whose format is the same as expected for the subject sequence of the strtol function with the value 10 for the base argument … ". My Eclipse C Indigo Service Release 1 compiler does set errno to ERANGE via scanf(). So at least 1 compiler does so. Although strtol() sets errno, I, like you, see ambiguity in regards to scanf() error handling. Maybe others may know? – chux Jun 11 '13 at 3:05
10

There are a few ways to do it:

  strtoll(str, NULL, 10);

This is POSIX C99 compliant.

you can also use strtoimax; which has the following prototype:

 strtoimax(const char *str, char **endptr, int base);

This is nice because it will always work with the local intmax_t ... This is C99 and you need to include <inttypes.h>

  • 1
    No need for that cast... – Oliver Charlesworth Jun 8 '13 at 19:22
  • @OliCharlesworth yeah you are right, but the the cast is there as a hint to remind that if the OP wants to parse it that they can replace it with a pointer to a string that's all. – Ahmed Masud Jun 8 '13 at 19:32
  • 1
    @AhmedMasud That's what the documentation is for. Or maybe a comment. Please don't put in superfluous casts, they're redundant, may even hide hide errors and most importantly, they decrease readability. – user529758 Jun 8 '13 at 19:34
  • @Ahmed: Ah, fair enough. Note that it's also probably worth mentioning that this approach assumes that int64_t is the same as long long. – Oliver Charlesworth Jun 8 '13 at 19:34
  • @OliCharlesworth: It doesn't assume they're the same, just that long long is sufficiently large to store any value of int64_t, which is almost true but not quite. See my answer. – R.. Jun 8 '13 at 19:46
2

strtoll converts it to a long long which is usually a 64-bit int.

2

Doing this 100% portably is a little bit tricky. long long is required to be at least 64 bits, but need not necessarily be twos complement, so it might not be able to represent -0x7fffffffffffffff-1, and thus using strtoll could have a broken corner case. The same issue applies to strtoimax. What you could do instead is consume leading space (if you want to allow leading space) and check for the sign first, then use strtoull or strtoumax, either of which is required to support values up to the full positive range of int64_t. You can then apply the sign:

unsigned long long x = strtoull(s, 0, 0);
if (x > INT64_MAX || ...) goto error;
int64_t y = negative ? -(x-1)-1 : x;

This logic is written to avoid all overflow cases.

  • 1
    But to be fair I doubt int64_t is defined on any system with a signed representation different than two's complement. I also think that's one of the major reason for the exact-width integer types to be optional. – ouah Jun 8 '13 at 19:58
  • I thought POSIX required it, but in fact POSIX only requires 8, 16, and 32-bit exact-sized types. int64_t and uint64_t are optional on POSIX. So I agree int64_t is unlikely to exist on systems where long or long long isn't suitable. – R.. Jun 8 '13 at 20:05
  • Unclear how "logic is written to avoid all overflow cases". -(x-1)-1 or -x work the same as x is an wide unsigned type. – chux May 20 '16 at 16:03
  • @chux: I think I meant -((int64_t)x-1)-1. Does that make more sense? – R.. May 20 '16 at 19:00
  • -((int64_t)x-1)-1 makes more sense, yet (int64_t)x is still signed integer overflow. Perhaps -1-((int64_t)-(x+1))? – chux May 20 '16 at 20:34
2

Users coming from a web search should also consider std::stoll.

It doesn't strictly answer this original question efficiently for a const char* but many users will have a std::string anyways. If you don't care about efficiency you should get an implicit conversion (based on the user-defined conversion using the single-argument std::string constructor) to std::string even if you have a const char*.

It's simpler than std::strtoll which will always require 3 arguments.

It should throw if the input is not a number, but see these comments.

  • This is the best answer for C++ I think. – Kyle Jul 16 at 14:42
1

This worked for me with a different int64 type, and I like the clean C++ style:

std::istringstream iss(argv[i]);
int64_t i64;
iss >> i64;

You may get an compile error: operartor<<... is not defined.

And I don't know what happens, if argv[i] contains "HALLO".

  • If the conversion fails (like with "HALLO") you will get 0. But the fail bit will also be set, so you should call iss.fail() to check that. – Zitrax Oct 21 '18 at 15:43

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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