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| import java.util.Comparator; | |
| import java.util.List; | |
| public class SlowSort { | |
| public static <T extends Comparable<? super T>> void slowSort(T[] array) { | |
| slowSort(array, 0, array.length); | |
| } | |
| public static <T> void slowSort(T[] array, Comparator<? super T> comparator) { | |
| slowSort(array, 0, array.length, comparator); | |
| } | |
| public static <T extends Comparable<? super T>> void slowSort(List<T> list) { | |
| final int siz = list.size(); | |
| @SuppressWarnings("unchecked") | |
| T[] a = (T[]) list.toArray(new Comparable[siz]); | |
| slowSort(a, 0, siz); | |
| for (int i = 0; i < siz; i++) { | |
| list.set(i, a[i]); | |
| } | |
| } | |
| public static <T> void slowSort(List<T> list, Comparator<? super T> comparator) { | |
| final int siz = list.size(); | |
| @SuppressWarnings("unchecked") | |
| T[] a = (T[]) list.toArray(new Object[siz]); | |
| slowSort(a, 0, siz, comparator); | |
| for (int i = 0; i < siz; i++) { | |
| list.set(i, a[i]); | |
| } | |
| } | |
| private static <T> void slowSort(T[] a, int i, int j, Comparator<? super T> c) { | |
| /* Slow-sorts the subarray a[i] ... a[j-1] with the following procedure: | |
| * | |
| * 1) Find the maximum of the sublist, and swap it into the last position. | |
| * 2) slowSort the rest of the array. | |
| * | |
| * Step 1 can be further decomposed as follows: | |
| * | |
| * 1.1) Let n = j - i. Find the maximum of the first n / 2 elements by slowSort. | |
| * 1.2) Find the maximum of the rest of the elements by slowSort. | |
| * 1.3) Return the maximum of the two maxima. | |
| */ | |
| final int n = j - i; | |
| if (n <= 1) return; | |
| /* Step 1. */ | |
| int k = i + n / 2; | |
| slowSort(a, i, k, c); | |
| slowSort(a, k, j, c); | |
| if (c.compare(a[--k], a[--j]) > 0) { | |
| T tmp = a[j]; | |
| a[j] = a[k]; | |
| a[k] = tmp; | |
| } | |
| /* Step 2. */ | |
| slowSort(a, i, j, c); | |
| } | |
| private static <T extends Comparable<? super T>> void slowSort(T[] a, int i, int j) { | |
| /* Slow-sorts the subarray a[i] ... a[j-1] with the following procedure: | |
| * | |
| * 1) Find the maximum of the sublist, and swap it into the last position. | |
| * 2) slowSort the rest of the array. | |
| * | |
| * Step 1 can be further decomposed as follows: | |
| * | |
| * 1.1) Let n = j - i. Find the maximum of the first n / 2 elements by slowSort. | |
| * 1.2) Find the maximum of the rest of the elements by slowSort. | |
| * 1.3) Return the maximum of the two maxima. | |
| */ | |
| final int n = j - i; | |
| if (n <= 1) return; | |
| /* Step 1. */ | |
| int k = i + n / 2; | |
| slowSort(a, i, k); | |
| slowSort(a, k, j); | |
| if (a[--k].compareTo(a[--j]) > 0) { | |
| T tmp = a[j]; | |
| a[j] = a[k]; | |
| a[k] = tmp; | |
| } | |
| /* Step 2. */ | |
| slowSort(a, i, j); | |
| } | |
| } |
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