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This is not homework, I am just using CodingBat Java to help learn programming.

I initially used a method which passed all of the sites tests, but I don't think it would work for longer arrays. The initial method used 2 loops and did not use a new array. I have created a solution which introduces a new array and a 3rd nested loop and I believe will work for all instances of the problem. However, the site states that the problems in this section can be solved with 2 loops, so I am wondering if there actually is a 2 loop solution that will work for ANY instance of the problem. Here is the question and my 3 loop solution:

(This is a slightly harder version of the fix34 problem.) Return an array that contains exactly the same numbers as the given array, but rearranged so that every 4 is immediately followed by a 5. Do not move the 4's, but every other number may move. The array contains the same number of 4's and 5's, and every 4 has a number after it that is not a 4. In this version, 5's may appear anywhere in the original array.

fix45({5, 4, 9, 4, 9, 5}) → {9, 4, 5, 4, 5, 9}

fix45({1, 4, 1, 5}) → {1, 4, 5, 1}

fix45({1, 4, 1, 5, 5, 4, 1}) → {1, 4, 5, 1, 1, 4, 5}

public int[] fix45(int[] nums) {

    int[] locations = {-1};

    for (int i = 0; i < nums.length - 1; ++i) {

        if (nums[i] == 4) {

            JLoop:
            for (int j = nums.length-1; j >= 0; --j) {
                if (nums[j] == 5) {
                    for (int k = locations.length-1; k>=0 ; --k) {
                        if (locations[k] == j) {
                            continue JLoop;
                        } 
                    }
                    nums[j] = nums[i + 1];
                    nums[i + 1] = 5;
                    locations[locations.length - 1] = i+1;
                    locations = java.util.Arrays.copyOf(locations,
                            locations.length + 1);
                    locations[locations.length-1] = -1;
                    break;
                }
            }
        }
    }
    return nums;

}
share|improve this question
    
I think the root cause of your difficulty may be in reading the problem statement. It says "every other number may move" without saying anything at all about preserving order among them. It looks as though you are adding a requirement to preserve order. Why? –  Patricia Shanahan Nov 12 '12 at 4:42
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5 Answers

up vote 3 down vote accepted

Restarting the search for a suitable 5 from one end of the array every time a 4 is found seems wasteful. Part of the array has already been scanned and is known not to contain a 5 that can be moved. This is O(n) time and O(1) space.

    public static int[] fix45(int[] nums) {

      int j = 0;
      for (int i = 0; i < nums.length - 1; ++i) {
        if (nums[i] == 4 && nums[i + 1] != 5) {
          /*
           * Need to find the next movable 5 That means an element that is 5 and
           * either is the first element or is preceded by anything other than 4
           */
          while (nums[j] != 5 || (j != 0 && nums[j - 1] == 4)) {
            j++;
          }
          nums[j] = nums[i + 1];
          nums[i + 1] = 5;
        }
      }
      return nums;
    }
share|improve this answer
    
Note that this method doesn't preserve the other elements' orders (try the case {5, 2, 5, 4, 1, 4}), but +1 due to CodingBat's ambiguous problem statement and nice space usage. (CodingBat remains ambiguous in its test cases.) –  irrelephant Nov 12 '12 at 3:37
    
I'm lazy. When writing an algorithm, I go for the best solution I can find to the stated problem, without making it harder for myself, or slower for the computer, by assuming additional requirements. –  Patricia Shanahan Nov 12 '12 at 3:47
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Using an extra array, here's a solution with "one loop" (loops without nested loops):

public int[] fix45(int[] nums) {
  int[] otherValues = new int[nums.length];

  for(int i = 0, c = 0; i < nums.length; i++)
    if(nums[i] != 4 && nums[i] != 5)
      otherValues[c++] = nums[i];

  for(int i = 0, c = 0; i < nums.length; i++)
    if(nums[i] == 4)
      nums[++i] = 5;
    else
      nums[i] = otherValues[c++];

  return nums;
}

We fix the fours, take out the non-fours and non-fives, and put the values all back in in order.

To improve the space usage (perhaps not by much), you can count the number of fours before you make the extra array.

share|improve this answer
    
+1, Very creative solution. Minimal use of brackets. –  dansalmo Dec 20 '13 at 17:00
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The following method will run in O(n) time using O(n) space:

public int[] fix45(int[] nums) {

    if (nums == null || nums.length <= 1) {
        return nums;
    }

    // store all the 5s pos
    int[] pos = new int[nums.length];
    int j = 0;
    for (int i = 0; i < nums.length; i++) {
        if (nums[i] == 5) {
            pos[j++] = i;
        }
    }

    j = 0;
    for (int i = 0; i <= nums.length - 2; i++) {
        if (nums[i] == 4 && nums[i + 1] != 5) {
            if (j >= pos.length) {
                System.err
                        .println("No more 5s: there are more 4 than 5 in the input array");
                break;
            }
            // fix45 swapping
            nums[pos[j++]] = nums[i + 1];
            nums[i + 1] = 5;
        }
    }

    return nums;

}
share|improve this answer
    
Does not pass fix45({4, 5, 4, 1, 5}) → {4, 5, 4, 5, 1} and your print warning is not allowed on codingbat. –  dansalmo Dec 20 '13 at 17:07
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public int[] fix45(int[] nums) {
  int idx4 = -1;
  int idx5 = -1;
  while (true) {
    while (true) { // find a 4 without a 5 after it
      idx4 = find(nums, 4, ++idx4);
      if (idx4 == -1)  // done if no more 4's
        return nums;
      if (nums[idx4+1] != 5)
        break;
    }
    while (true) { // find a 5 without a 4 before it
      idx5 = find(nums, 5, ++idx5);
      if (idx5 == 0 || nums[idx5-1] != 4)
        break;
    }
    nums[idx5] = nums[idx4+1];  // swap the 4 and 5
    nums[idx4+1] = 5;
  }
}

public int find(int[] nums, int num, int start) {
  for (int i = start; i < nums.length; i++)
    if (nums[i] == num)
      return i;
  return -1; 
share|improve this answer
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Fix after dansalmos remark:

public int[] fix45(int[] nums) {
    for (int i = 0; i < nums.length; i++) {

        if (nums[i] == 4) {
            if(nums[i+1] == 5) continue;

            for( int j = 0; i < nums.length; j++){
                if(nums[j] == 5 && (j==0 || nums[j-1] != 4)){
                    nums[j] = nums[i+1];
                    nums[i+1] = 5;
                    break;
                }
            }

        }
    }

    return nums;
}
share|improve this answer
    
does not pass these tests on codingbat fix45({5, 4, 5, 4, 1}) → {1, 4, 5, 4, 5} fix45({4, 5, 4, 1, 5}) → {4, 5, 4, 5, 1} –  dansalmo Dec 20 '13 at 16:52
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