5

For some student stuff I need to implement a Feistel network in Java.

I started with 3 manual rounds, like this:

    // round 1
    int[] left1 = right;
    int[] right1 = new int[right.length];

    for(int i = 0; i < right.length; i++){
        right1[i] = left[i] ^ (right[i] ^ keys[0]);
    }

    // round 2
    int[] left2 = right1;
    int[] right2 = new int[right.length];

    for(int i = 0; i < right.length; i++){
        right2[i] = left1[i] ^ (right1[i] ^ keys[1]);
    }

    // round 3
    int[] left3 = right2;
    int[] right3 = new int[right.length];

    for(int i = 0; i < right.length; i++){
        right3[i] = left2[i] ^ ( right2[i] ^ keys[2]);
    }

If I want to have 10 rounds I would need to copy this stuff 10 times and adjust the variables, is there a better way to do this? Maybe it's too late but I can't think of a solution...

2
  • 5
    Just wrap one of them in a for loop like the ones you're already using May 13, 2015 at 0:31
  • then I have a problem with left1 always being overwritten with the original right, I need the left and right arrays from the previous round.
    – fsp
    May 13, 2015 at 0:42

2 Answers 2

6

You can simply swap forward an backwards:

//initialization
int[] left = {};//setup left
int[] right = {};//setup right
//keys
int[] keys = {};//setup keys

for(int r = 0; r < 10; r++) {//the number of rounds
    for(int i = 0; i < right.length; i++){
        right[i] = left[i] ^ (right[i] ^ keys[r]);
    }

    //swap lists to do the next round
    int[] temp = left;
    left = right;
    right = temp;
}
//remark: the result (right) will be stored in left
//use left as resulting right

After each round, you swap left and right by doing so at reference level (and use temp) to store reference temporary:

int[] temp = left;
left = right;
right = temp;

Note that you don't copy the values here, you simply swap references, this is thus done in constant time. This can be useful if you want to encrypt/decrypt long messages and don't want to waste time copying again.

So what happens is, you initially have three lists L, R and K

Now in the first round, you simply modify the lift list, element-wise as you have shown in your code:

for(int i = 0; i < right.length; i++){
    right[i] = left[i] ^ (right[i] ^ keys[r]);
}

Important is that you don't write keys[i], but use keys[r] (the index being the current round): it implies you have at least 10 keys to do the arithmetic of course.

Note that you can overwrite right[i] because you don't reuse that value later. You can thus do inline modifications.

After the modifications, you swap the buffers. The only aspect you need to take into account is that for the last round, after doing the operation, the buffers will be swapped as well. Thus the last left and right will be swapped as well. You can either (1) do an additional swap after the for loop; or (2) take the swap into account and pretend left is right and vice versa; or (3) use an if-clause to prevent the last swap.

1
  • 1
    you cleared things up for me, thanks, especially the swapping part.
    – fsp
    May 13, 2015 at 0:56
1

Use 2 dimensional array

int rounds = 10 // number of rounds
int leftArray = new int[rounds][right.length];
int rightArray = new int[rounds][right.length];

Then:

  • leftArray[0][0] is equivalent to left1[0];
  • leftArray[0][1] is equivalent to left1[1];
  • rightArray[0][0] is equivalent to right1[0];
  • rightArray[2][2] is equivalent to right3[2];
  • ...

then use a nested loop to iterate the things you need to do

for(int i=0; i<rouds; i++){
  //set your variables
  for(int j=0; j<right.length; j++){
  //do computation here
  }
}
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