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I'm having trouble with this...It compiles, but segfaults immediately when run...Using GDB, I determined that it segfaults while trying to initiate the long doubles. I feel like atoi might be the wrong function to use, but I tried other similar functions and still got a segfault.

int main(int argc, char *argv[]) {
  long double x = atoi(argv[1]);
  char oper = argv[2][0];
  long double y = atoi(argv[3]);
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You should check that you have argc >= 4 before using the argument strings. Your segmentation fault is most likely because your argument list isn't as long as you thought it was. As the answers note, atoi() is for converting strings into integers; strtold() would work for long double. –  Jonathan Leffler Jan 27 '13 at 21:06
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3 Answers

up vote 2 down vote accepted

Use strtold:

#include <stdlib.h>
#include <errno.h>

char * e;
errno = 0;
long double d = strtold(argv[1], &e);

if (*e != 0 || errno != 0) { /* Error! Do not consume the result. */ }

// result now in "d"

You can use the value of *e to figure out whether any part of the string was consumed; see the manual for details. My example just checks whether the entire string could be parsed.

I'm actually not sure if there's a thread-safe solution... (Oh, I think it is, because errno is thread-local.)

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Okay...I'm having trouble with the second parameter. How is the end of an argument determined? The arguments that are being passed are simple equations, such as 1+1, but the character length of each number can be any amount of digits within reason. –  rzrscm Jan 27 '13 at 21:09
    
+1 for mentioning the errno check (including the fact that you have to set errno to 0 before you invoke the function if you want the check to be meaningful). I didn't know that strtol, strtoll, strtod, and strtold could return errors and yet still return a result. Code I have written only checks if (*e != 0). –  Celada Jan 27 '13 at 21:12
1  
In that case, you wil need to write a (reasonable) parser, since 1.01212131+31.1212121*9.12/11.991 would be seen as one argument. On the other hand, if you separare things with spaces, you could just use argv[], so 1.01212131 + 31.1212121 * 9.12 / 11.99 would be 7 different arguments. –  Mats Petersson Jan 27 '13 at 21:12
    
The errno check is rather useless, since the only "errors" strtold can encounter are overflow/underflow, which for floating point are just 'severe rounding', and probably not something you want to treat as an error. Checking endptr covers all the real error conditions (malformed input). –  R.. Jan 27 '13 at 21:21
    
@R..: Overflow and underflow are useful errors, though. And they're even more useful when you're parsing integers (in which case you really mustn't consume the result of the parse), and I want to encourage a pattern here. –  Kerrek SB Jan 27 '13 at 21:31
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atoi() stands for "ascii to integer", which isn't what you want. You should use an appropriate function — strtold(3) is most appropriate, but you can probably use sscanf(3), too.

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The correct way to convert a string to a long double is

long double strtold(const char *nptr, char **endptr);
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