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Before I present the code, a little background: I have a character pointer array by the name math, now, in the while loop I am trying to convert the value in math to an int using atoi and saving it in an int variable ai. There are no compilation errors. However, when I try to print ai it is not printing it. Somehow the program runs without crashing. I can't figure out what the issue is and if there is an issue the program should crash on atoi and if there is no issue then it should print ai.

The code goes like this:

int c1 = 3; //the array contains 3 characters 1 2 3
int c2 = 0;
while(c2 < c1)
{
    int ai;
    ai = atoi(math[c2]);
    // the array is valid, I have checked it time and again so is the content in array
    write(STDOUT_FILENO,math[c2],1); //this works fine.
    write(STDOUT_FILENO,&ai,sizeof(&ai));
    //this doesn't print anything and somehow loop goes on to meet
    //the condition.
    c2++;
}
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what is "math[c2]"? How is it defined? –  trumpetlicks Jun 12 '12 at 17:31
    
its c2++; at the second last line, sorry for the typo. –  Salik Jun 12 '12 at 17:31
    
math[c2] is a character pointer array and is defined as: char *math[10]; –  Salik Jun 12 '12 at 17:32
    
reading up on the "write routine, it takes in a string of characters, thus if math is a string, then math[c2] will be a character. The output of atoi will be an integer. Write does not take in integers. Further you are trying to use the "reference to" ai, not ai itself. –  trumpetlicks Jun 12 '12 at 17:34
    
i have tried printf("%d",&ai); this doesnt work either. –  Salik Jun 12 '12 at 17:35

3 Answers 3

Remember that write is not printf. So

write(STDOUT_FILENO,&ai,sizeof(&ai))

will write sizeof(int) pieces of characters, to STDOUT; if we assume a 32-bit int, it will print the characters corresponding in the ASCII codetable to (ai >> 24) & ff, (ai >> 16) & ff, (ai >> 8) & ff and (ai >> 0) & ff, which is possibly four non-printable characters.

If you want to write the integer's string representation to the console, use:

printf("%d", ai);

instead.

share|improve this answer
    
You noticed you have to printf ai and NOT &ai??? –  user529758 Jun 12 '12 at 17:37
    
corrected, but the same result, no errors no print.. –  Salik Jun 12 '12 at 17:39
    
Well, that must work. Maybe your char array doesn't represent a valid integer string. Did you try to compare the return value of atoi to the expected result? –  user529758 Jun 12 '12 at 17:41
    
the check doesnt seem to work.i compared: if(ai==1){//which it should be in the first iteration printf("%d",1);} else{ printf("%d",0); } but it neither prints 0 or 1 at any point. –  Salik Jun 12 '12 at 17:54
1  
"as my sir always said printf is not reliable!" now you're just kidding me, right? –  user529758 Jun 12 '12 at 19:37

Considering your additional information

its a multiprocessed client server modeled code using sockets

You probably have some additional magic in STDOUT_FILENO. Consider using fdopen, fprintf, fflush instead of the (absolutely incorrect) write and (possibly incorrect) printf.

Like so:

FILE* f = fdopen(STDOUT_FILENO, "w");
fprintf(f, "%d", ai);
fflush(f);
...
fclose(f); // also closes the socket
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write(STDOUT_FILENO,&ai,sizeof(&ai));

writes the bitpattern of ai to stdout but uses the length of the address of ai and not the length of ai. On modern machines these are usually different values 4 versus 8, so you are writing arbitrary garbage or even produce an access error.

This is probably not what you want, anyhow.

If you want to write your number as a readable string to stdout use something like

write(STDOUT_FILENO, math, strlen(math));

math has already the character representation that you want to see on stdout.

If you really want to pump the bitrepresentation of ai out there use

write(STDOUT_FILENO, &ai, sizeof ai);
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