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Basically I am writing a simple command line calculator that implements an accumulator. I feel like this code is logically structured correct and I don't understand why it freezes for about 3 seconds before going into an infinite loop of print statements. Any help is appreciated.

void mycalc() {
  printf("Begin Calculations\n\n");
  printf("Initialize your Accumulator with data of the form \"number\" \"S\" which\
  sets the Accumulator to the value of your number\n");

  /* Initialize Variables */
  float accumulator, num;
  char op;

  /* Ask for input */
  scanf("%f %c\n", &num, &op);
  while (op != 'E') {
    if(op == 'S' || op == 's'){
      accumulator = num;
      printf("Value in the Accumulator = %f\n", accumulator);
    } else if(op == '+'){
      accumulator = accumulator + num;
      printf("Value in the Accumulator = %f\n", accumulator);
    } else if(op == '*'){
     accumulator = accumulator * num;
      printf("Value in the Accumulator = %f\n", accumulator);
    } else if(op == '/'){
      if (num == 0) {
          printf("Can not divide by 0.\n");
      } else {
          accumulator = accumulator / num;
          printf("Value in the Accumulator = %f\n", accumulator);
      }
    } else if(op == '-'){
      accumulator = accumulator - num;
      printf("Value in the Accumulator = %f\n", accumulator);
    } else if(op == 'E' || op == 'e'){
      printf("Value in the Accumulator = %f\n", accumulator);
      break;
    } else {
      printf("Unknown operator. \n");
    }
    scanf("%f %c\n", &num, &op);
  }
}

Would it be better to use the while(1) technique instead? Any and all help is appreciated! Thanks!

share|improve this question
    
I'd try commenting out all the code in the while loop except for the scanf at the bottom. Then, above that scanf, print out the value of op. Does the error still occur? If so, something in the loop is the culprit; otherwise, something above it (or in the loop condition) is. –  musical_coder Sep 24 '13 at 1:33
    
Yep, it still infinite loops while printing OP. Guess I need to change the loop. –  Micah Sep 24 '13 at 1:41

1 Answer 1

up vote 1 down vote accepted

Code does not handle bad input well.

In two places scanf("%f %c\n", &num, &op) has trouble with if non-numeric input is entered. The scanf() fails, so num and op retain their old values. The operation based on op occurs again and the next scanf() tries again with the same data.

The "%f %c\n" in 2 places is misleading in that the \n performs differently than OP expectations. Change to

scanf("%f %c", &num, &op);

Instead of using scanf(), recommend using

char buf[100];
if (fgets(buf, sizeof(buf), stdin) == NULL) {
  exit(-1); // handle EOF or error
}
if (sscanf(buf, "%f %c", &num, &op) != 2) {
  exit(-1); // syntax error.
}

Alternatively one could use the following. Bad input will eventually get consumed but not so readily.

if (2 != scanf(" %c %f", &op, &num)) {
  ; // syntax error.
}

Other issues: accumulator is not initialized

float accumulator = 0.0;
share|improve this answer
    
@Micah see edit. –  chux Sep 24 '13 at 1:50
    
Thank you very much for your explanation and help. I have the code working perfectly now. Quick question though, why is the \n in the scanf misleading? –  Micah Sep 24 '13 at 1:52
1  
A \n in a scanf("%f %c\n") mean to consume all the next whitespace. scanf("%f %c ") would do the same thing. So typing in "123 S" then <enter> does not complete the input because additional whitespace could follow. The <enter> did not finish the input. Ones needs to keep typing until a non-white space is entered. Since stdin is buffered, it also means you have to enter another <enter>. Then the first scanf() is done after you have enter 2 lines of input. On your next scanf() the queued 2nd line of input is all ready entered, but you need a non-white space 3rd line. Ugh. –  chux Sep 24 '13 at 2:01

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