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I was wondering if somebody could explain me how pointers and string parsing works. I know that I can do something like the following in a loop but I still don't follow very well how it works.

  for (a = str;  * a;  a++) ...

For instance, I'm trying to get the last integer from the string. if I have a string as const char *str = "some string here 100 2000";

Using the method above, how could I parse it and get the last integer of the string (2000), knowing that the last integer (2000) may vary.


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Thanks everybody! It all becomes much clearer now – Robert74 Jun 27 '10 at 15:25

5 Answers 5

up vote 5 down vote accepted

for (a = str; * a; a++) ...

This works by starting a pointer a at the beginning of the string, until dereferencing a is implicitly converted to false, incrementing a at each step.

Basically, you'll walk the array until you get to the NUL terminator that's at the end of your string (\0) because the NUL terminator implicitly converts to false - other characters do not.

Using the method above, how could I parse it and get the last integer of the string (2000), knowing that the last integer (2000) may vary.

You're going to want to look for the last space before the \0, then you're going to want to call a function to convert the remaining characters to an integer. See strtol.

Consider this approach:

  • find the end of the string (using that loop)
  • search backwards for a space.
  • use that to call strtol.


for (a = str; *a; a++);  // Find the end.
while (*a != ' ') a--;   // Move back to the space.
a++;  // Move one past the space.
int result = strtol(a, NULL, 10);

Or alternatively, just keep track of the start of the last token:

const char* start = str;
for (a = str; *a; a++) {     // Until you hit the end of the string.
  if (*a == ' ') start = a;  // New token, reassign start.
int result = strtol(start, NULL, 10);

This version has the benefit of not requiring a space in the string.

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This code is broken if the string contains no spaces. It will loop past the beginning of the string, possibly into invalid addresses, in which case it will crash. – R.. Jun 27 '10 at 15:37
if the str is correctly null terminated, a = str + strlen(str) points to the byte past the last byte of the string (the null byte); almost the same as the for loop but more readable, I think; moreover instead of *a != ' ' you can use isspace – ShinTakezou Jun 27 '10 at 16:51
@R.. : That's true, but given how the question was phrased, I think it's a safe assumption. – Stephen Jun 27 '10 at 19:08
@ShinTakezou : Also true :) I considered using strlen, but the OP said "using the above method", so I did... OTOH, isspace probably would be more clear. – Stephen Jun 27 '10 at 19:11
@R.. : Thanks for the idea, I've added a version that doesn't require a space. – Stephen Jun 27 '10 at 21:12

You just need to implement a simple state machine with two states, e.g

#include <ctype.h>

int num = 0; // the final int value will be contained here
int state = 0; // state == 0 == not parsing int, state == 1 == parsing int

for (i = 0; i < strlen(s); ++i)
    if (state == 0) // if currently in state 0, i.e. not parsing int
        if (isdigit(s[i])) // if we just found the first digit character of an int
            num = s[i] - '0'; // discard any old int value and start accumulating new value
            state = 1; // we are now in state 1
        // otherwise do nothing and remain in state 0
    else // currently in state 1, i.e. parsing int
        if (isdigit(s[i])) // if this is another digit character
            num = num * 10 + s[i] - '0'; // continue accumulating int
            // remain in state 1...
        else // no longer parsing int
            state = 0; // return to state 0
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Yuck :) This deserves 3 lines of code, with one parse instead of analyzing each character. – Stephen Jun 27 '10 at 15:12
This is an inefficient method; it parses all strings and tosses away all but the last. And you should call strlen() only once and save that in a temp var, instead of calling it on every iteration, as this code does (the compiler may optimize this for you if the string is a const char *). – Tim Schaeffer Jun 27 '10 at 15:23
@Tim/@Stephen: are you familiar with the term premature optimisation ? The above code was written for clarity and to illustrate the concept of states in a parser (even though in this case there are only two states) - the OP is a noob and needs to understand the basic concepts, not worry about micro-optimisation or writing the tersest possible code. – Paul R Jun 27 '10 at 20:46
non-C90 style comments. :( – BobbyShaftoe Jun 28 '10 at 4:18
Well there's an upvote. I think its an ok answer. Interesting on the caching. – BobbyShaftoe Jun 28 '10 at 22:59

I know this has been answered already but all the answers thus far are recreating code that is available in the Standard C Library. Here is what I would use by taking advantage of strrchr()

#include <string.h>
#include <stdio.h>

int main(void)

    const char* input = "some string here 100 2000";
    char* p;
    long l = 0;

    if(p = strrchr(input, ' '))
        l = strtol(p+1, NULL, 10);

    printf("%ld\n", l);

    return 0;


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  for (a = str;  * a;  a++)...

is equivalent to

  while(*a!='\0') //'\0' is NUL, don't confuse it with NULL which is a macro
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The loop you've presented just goes through all characters (string is a pointer to the array of 1-byte chars that ends with 0). For parsing you should use sscanf or better C++'s string and string stream.

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