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I ran in to a small problem while working on my assignment. Basically I'm making a small program that asks the user for 3 letters and compares them to 3 letters that are coded in. Then the program is supposed to compare the 3 letters and if they're the same then print true. Thus far I've been able to make it without problems using compareTo, but now the tricky part is that I need to add a "tolerance" to the program (which I have) but the tolerance is supposed to loop back from Z to A. So if tolerance is 3 and the user inputs X Y Z (when it really is A B C) it should still print out true.

NOTE: the Tolerance will not go above 3. ALSO, We shouldn't use Arrays.

Any ideas how I can accomplish this? If it's complicated to understand what I'm asking please post and I'll try to clarify it :)

Thanks

EDIT: basically this is the code that compares the tolerances

        if ((a1.compareTo(d1) <= tolerance) && (a1.compareTo(d1) >= negTolerance) 
        && (b1.compareTo(e1) <= tolerance) && (b1.compareTo(e1) >= negTolerance) 
        && (c1.compareTo(f1) <= tolerance) && (c1.compareTo(f1) >= negTolerance))
    {
        open = true;
    } else open = false;

where a1 - c1 are pre inputed characters and d1-f1 are user entered. tolerance is also user entered as an integer between 1 and 3

share|improve this question
    
If this is a homework assignment, please add the tag "homework". –  Mike Samuel Oct 14 '11 at 16:29
    
What is a tolerance? –  Grammin Oct 14 '11 at 16:30
1  
Could you include a table of testcases? You mention that "X Y Z" should match "A B C" but I have no idea what should not match "A B C". –  Mike Samuel Oct 14 '11 at 16:31
    
its a project, and tolerance is basically by how much the user can be off to still print out true –  Cody Oct 14 '11 at 16:32
    
and x y z and a b c are just examples, basically the letters inputted have to be within the "tolerance" or error value of the letters coded in. Like between a and b the tolerance is 1, between g and m its 5. now i need it to be between a and z = 1, a and y = 2, a and x = 3, etc –  Cody Oct 14 '11 at 16:33

4 Answers 4

up vote 2 down vote accepted

Since it's a homework assignment, I won't give you the full answer, but I'll give you a hint. You want to look at the character codes (ASCII) for the letters. This will let you solve the tolerance problem. You might also have to do some magic with % (modulus) to handle the looping back of Z to A.

EDIT

If you cannot use the ASCII values, the return value of compareTo will help you, but keep in mind that that comparing A to Z and Z to A will give you -25 and 25 respectively. This is where the % operator will help you.

share|improve this answer
    
well that's not the entire assignment, its just a very small part of it, but I thought of trying that but we never learned the use of ASCII in Java, so I can't really use it :( –  Cody Oct 14 '11 at 16:38
    
Did your teacher specifically tell you that you cannot use ASCII values? –  Vivin Paliath Oct 14 '11 at 16:42
    
No, my prof did not say that but he wouldn't expect us to know it if we haven't learned it in the course yet. We haven't even done Arrays yet –  Cody Oct 14 '11 at 16:46
    
@Cody Check out my edit. compareTo can help you. –  Vivin Paliath Oct 14 '11 at 16:50
    
Thanks but i figured it out without the %, using just simple if statements. Unfortunately I cannot answer my own question but in 7 hours ill post the method he most likely expects us to do. basically if the comparing the 2 letters is 24(or -24), tolernace =1, and the same for 23 and 22 –  Cody Oct 14 '11 at 16:54

I would recommend using the ASCII value of the char.

char[] expecteds = ...;
int tolerance = 3;
char input = ...;
int inputValue = char;

for (int i=0; i<expecteds.length; i++){ 
  int delta = expected[0] - 'a' - input - 'a' % 'a';
  if (i < tolerance)
      result = true;
}
share|improve this answer

Use the Modulus (%) operator to cycle back around to the beginning:

int index = 0;
for (i in 1 .. 26) {
  int index = (i+tolerance) % 26;
}
share|improve this answer
1) Map each character to a Number
2) Grab the tolerance
3) Add/subtract the tolerance from the number
4) Compare the letters in the tolerance range to the letter
share|improve this answer
    
well I found it easier to grab the tolerance simply by doing char1.compareTo(char2). Except that means the difference between z and a is 25 instead of 1 –  Cody Oct 14 '11 at 16:47

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