Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an input string which I know is a valid Cstring that ends with '\0'

I need to recognize if the string is in the format

    " [ word1 ] word2 [ word3 ] "

how can I get the strings: word1,word2,word3 into variables?

something similar to

char *word1,*word2,*word3;
scanf(" [ %s ] %s  [ %s  ] ",word1,word2,word3);

when word1 and word2 are expresssions that are strings of alphanumericals.

There maybe any number of white-spaces (tabs and spaces) in the places I've put spaces

I've got a similar problem with

" [ word1 ] word2 [ word3 ] "

I thought about using strtok. but it wouldn't separate between

" [ word1 ] word2 [ word3 ] "

and

" [ word1 [ word2 [ word3 [ "

I tried something like this, but str1and str2 got the same results.

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

 char * TrimWhiteSpaces(char *str) {
char *out = str;
int i;
int len = strlen(str);
for (i=0; i<len && isspace(str[i]); i++, out++); /*scan forward*/
for (i=len-1; i>=0 && isspace(str[i]); str[i]=0, i--);/*scan backward*/
return out;
}
 char * GetTokenBetweenSquareBraces(char * input, char **output, int * output_size) {
char *p = TrimWhiteSpaces(input);
*output_size=0;
if (p[0] == '[')
{
    *output = TrimWhiteSpaces(p + 1);
    do 
    {
        (*output_size)++;
    }while((*output)[*output_size] != ']' && isalnum((*output)[*output_size]));
}
else
{
    return NULL;
}
return (*output) + *output_size;
}
 char * GetTokenBtweenOpositeSquareBraces(char * input, char **output, int * output_size) {
char *p = TrimWhiteSpaces(input);
*output_size=0;
if (p[0] == ']')
{
    *output = TrimWhiteSpaces(p + 1);
    do 
    {
        (*output_size)++;
    }while((*output)[*output_size] != '[' && isalnum((*output)[*output_size]));
}
else
{
    return NULL;
}
return (*output) + *output_size;
}
     int GetWords(char * str,char * word1,char * word2,char * word3)
{
char * next=NULL,*output=NULL;

int outputsize;
printf ("\nSplitting string \"%s\" into tokens:\n",str);

next = GetTokenBetweenSquareBraces (str,&output,&outputsize);
strncpy(word1,output,outputsize);
word1[outputsize] = '\0';
strcpy(word1,TrimWhiteSpaces(word1));
if(!next) return 0;

next = GetTokenBtweenOpositeSquareBraces (next,&output,&outputsize);
strncpy(word2,output,outputsize);
word2[outputsize] = '\0';
strcpy(word2,TrimWhiteSpaces(word2));

if(!next) return 0;

next = GetTokenBetweenSquareBraces (next,&output,&outputsize);
strncpy(word3,output,outputsize);
word3[outputsize] = '\0';
strcpy(word3,TrimWhiteSpaces(word3));

if(!next) return 0;

return 1;
}
 void TestGetWords(char * str )
{
char word1[20],word2[20],word3[20];
if (GetWords(str,word1,word2,word3))
{
    printf("|%s|%s|%s|\n",word1,word2,word3);   
}
else
{
    printf("3ViLLLL\n");    
}

}
 int main ()
{
char str[] ="[  hello   ]  gfd   [ hello2 ] ";
char str2[] ="[ hello   [  gfd   [ hello2 ] ";
char str3[] ="the wie321vg42g42g!@#";
char str4[] ="][123[]23][231[";

TestGetWords(str);
TestGetWords(str2);
TestGetWords(str3);
TestGetWords(str4);
getchar();
return 1;
}

EDIT: P.S. all code must be strict Ansi C89 Pedantic.

share|improve this question
2  
Please show us some of your own code. Also, I don't see the specific question here. –  Niklas B. Mar 14 '12 at 18:34
    
as I sayed I tried to strtok it. without much success. –  Nahum Litvin Mar 14 '12 at 18:35
    
why "I need to recognize if strings are in format" is not real question? I can rephrase it as "how can I recognize if strings fit the format?" I Really don't understand what is wrong with my question? why you people just downvote without any explanation? unfortunately I work on embedded machine and very short on space. and cannot use any regex libraries. –  Nahum Litvin Mar 14 '12 at 18:39
add comment

closed as not a real question by Niklas B., bernie, Jack Maney, Winston Ewert, Brian Roach Mar 15 '12 at 6:01

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

2 Answers

up vote 1 down vote accepted

This might get you started, not complete though:

const char *trim(const char *p) 
  { while(isspace(*p)) p++; return p; }

int get_tok(const char * input, char *output, int output_size) {
  const char *p = trim(input);
  if (p[0] == '[') {
     p = trim(p + 1);
     while (isalnum(*p)) {
       /* add *p to output */
       p++;
     }
  } else {
     while (isalnum(*p)) {
       /* add *p to output */
       p++;
     }
  }
  return p - input;
}
share|improve this answer
    
I hoped to find away to avoid something like that. but you did give me an idea I haven;t thought of, thanks! –  Nahum Litvin Mar 14 '12 at 18:49
add comment

A simple state machine is usually the easiest way to handle simple parsing tasks like this.

share|improve this answer
add comment

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