![6
Pseudocode
Input: an array a[left, right]
QuickSort (a, left, right) {
if (left < right) {
pivot = Partition (a, left, right)
Quicksort (a, left, pivot-1)
Quicksort (a, pivot+1, right)
}
}
MergeSort (a, left, right) {
if (left < right) {
mid = divide (a, left, right)
Quicksort (a, left, mid-1)
Quicksort (a, mid+1, right)
merge(a, left, mid+1, right)
}
}
Compare with MergeSort:](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-6-320.jpg)
![10
int partition(a, left, right, pivotIndex) {
pivotValue = a[pivotIndex];
swap(a[pivotIndex], a[right]);
// Move pivot to end
storeIndex = left;
for (i from left to right) {
if a[i] < pivotValue
swap(a[storeIndex], a[i]);
storeIndex = storeIndex + 1 ;
}
swap(a[right], a[storeIndex]);
// Move pivot to its final place
return storeIndex;
}
Look at Wikipedia
An easy version of in-place partition to understand,
but not the original form](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-10-320.jpg)
![11
quicksort(a,left,right) {
if (right>left) {
pivotIndex = left;
select a pivot value a[pivotIndex];
pivotNewIndex=partition(a,left,right,pivotIndex);
quicksort(a,left,pivotNewIndex-1);
quicksort(a,pivotNewIndex+1,right);
}
}](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-11-320.jpg)
![12
Partition variant
Want to partition an array A[left .. right]
First, get the pivot element out of the way by swapping it with the
last element. (Swap pivot and A[right])
Let i start at the first element and j start at the next-to-last
element (i = left, j = right – 1)
pivot i j
5 6 4 6 3 12 19 5 6 4 6
3 12
19
swap](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-12-320.jpg)
![13
Want to have
A[x] <= pivot, for x < i
A[x] >= pivot, for x > j
When i < j
Move i right, skipping over elements smaller than the pivot
Move j left, skipping over elements greater than the pivot
When both i and j have stopped
A[i] >= pivot
A[j] <= pivot
i j
5 6 4 6
3 12
19
i j
5 6 4 6
3 12
19
i j
<= pivot >= pivot](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-13-320.jpg)
![14
When i and j have stopped and i is to the left of j
Swap A[i] and A[j]
The large element is pushed to the right and the small element is
pushed to the left
After swapping
A[i] <= pivot
A[j] >= pivot
Repeat the process until i and j cross
swap
i j
5 6 4 6
3 12
19
i j
5 3 4 6
6 12
19](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-14-320.jpg)
![15
When i and j have crossed
Swap A[i] and pivot
Result:
A[x] <= pivot, for x < i
A[x] >= pivot, for x > i
i j
5 3 4 6
6 12
19
i
j
5 3 4 6
6 12
19
i
j
5 3 4 6 6 12 19](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-15-320.jpg)
![16
void quickSort(int a[], int left, int right) {
int i = left;
int j = right;
if (right - left >= 1) {
int pivot = a[left];
while (j > i) {
while ((a[i]<=pivot) && (i<=right) && (j>i))
i++;
while ((a[j]>pivot) && (j>=left) && (j>=i))
j--;
if (j > i)
swap(a, i, j);
}
swap(a, left, j);
quickSort(a, left, j - 1);
quickSort(a, j + 1, right);
}
else { return; }
}
quickSort(a,0,size-1);
Implementation (put the pivot on the leftmost instead of rightmost)
Change it into the rightmost …](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-16-320.jpg)
![17
void quickSort(int array[])
// pre: array is full, all elements are non-null integers
// post: the array is sorted in ascending order
{
quickSort(array, 0, array.length - 1); // quicksort all the elements in the array
}
void quickSort(int array[], int start, int end)
{
int i = start; // index of left-to-right scan
int k = end; // index of right-to-left scan
if (end - start >= 1) // check that there are at least two elements to sort
{
int pivot = array[start]; // set the pivot as the first element in the partition
while (k > i) // while the scan indices from left and right have not met,
{
while (array[i] <= pivot && i <= end && k > i) // from the left, look for the first
i++; // element greater than the pivot
while (array[k] > pivot && k >= start && k >= i) // from the right, look for the first
k--; // element not greater than the pivot
if (k > i) // if the left seekindex is still smaller than
swap(array, i, k); // the right index, swap the corresponding elements
}
swap(array, start, k); // after the indices have crossed, swap the last element in
// the left partition with the pivot
quickSort(array, start, k - 1); // quicksort the left partition
quickSort(array, k + 1, end); // quicksort the right partition
}
else // if there is only one element in the partition, do not do any sorting
{
return; // the array is sorted, so exit
}
}
void swap(int array[], int index1, int index2) {…}
// pre: array is full and index1, index2 < array.length
// post: the values at indices 1 and 2 have been swapped
Adapted from http://www.mycsresource.net/articles/programming/sorting_algos/quickso](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-17-320.jpg)
![19
median of three
We will use median of three
Compare just three elements: the leftmost, rightmost and center
Swap these elements if necessary so that
A[left] = Smallest
A[right] = Largest
A[center] = Median of three
Pick A[center] as the pivot
Swap A[center] and A[right – 1] so that pivot is at second last position
(why?)
median3](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-19-320.jpg)
![20
pivot
5 6 4
6
3 12 19
2 13 6
5 6 4 3 12 19
2 6 13
A[left] = 2, A[center] = 13,
A[right] = 6
Swap A[center] and A[right]
5 6 4 3 12 19
2 13
pivot
6
5 6 4 3 12
19
2 13
Choose A[center] as pivot
Swap pivot and A[right – 1]
Note we only need to partition A[left + 1, …, right – 2]. Why?](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-20-320.jpg)
![21
Works only if pivot is picked as
median-of-three.
A[left] <= pivot and A[right] >= pivot
Thus, only need to partition A[left +
1, …, right – 2]
j will not run past the beginning
because a[left] <= pivot
i will not run past the end
because a[right-1] = pivot
The coding style is efficient, but hard to read ](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-21-320.jpg)
![22
i=left;
j=right-1;
while (1) {
do i=i+1;
while (a[i] < pivot);
do j=j-1;
while (pivot < a[j]);
if (i<j) swap(a[i],a[j]);
else break;
}](https://image.slidesharecdn.com/quicksort1-220928105645-b422440b/85/quicksort-1-ppt-22-320.jpg)
quicksort (1).ppt
- 1. Quicksort
- 2. 2 Introduction Fastest known sorting algorithm in practice Average case: O(N log N) Worst case: O(N2) But, the worst case seldom happens. Another divide-and-conquer recursive algorithm, like mergesort
- 3. 3 Quicksort Divide step: Pick any element (pivot) v in S Partition S – {v} into two disjoint groups S1 = {x S – {v} | x <= v} S2 = {x S – {v} | x v} Conquer step: recursively sort S1 and S2 Combine step: the sorted S1 (by the time returned from recursion), followed by v, followed by the sorted S2 (i.e., nothing extra needs to be done) v v S1 S2 S
- 4. 4 Example
- 5. 5
- 6. 6 Pseudocode Input: an array a[left, right] QuickSort (a, left, right) { if (left < right) { pivot = Partition (a, left, right) Quicksort (a, left, pivot-1) Quicksort (a, pivot+1, right) } } MergeSort (a, left, right) { if (left < right) { mid = divide (a, left, right) Quicksort (a, left, mid-1) Quicksort (a, mid+1, right) merge(a, left, mid+1, right) } } Compare with MergeSort:
- 7. 7 Two key steps How to pick a pivot? How to partition?
- 8. 8 Pick a pivot Use the first element as pivot if the input is random, ok if the input is presorted (or in reverse order) all the elements go into S2 (or S1) this happens consistently throughout the recursive calls Results in O(n2) behavior (Analyze this case later) Choose the pivot randomly generally safe random number generation can be expensive
- 9. 9 In-place Partition If use additional array (not in-place) like MergeSort Straightforward to code like MergeSort (write it down!) Inefficient! Many ways to implement Even the slightest deviations may cause surprisingly bad results. Not stable as it does not preserve the ordering of the identical keys. Hard to write correctly
- 10. 10 int partition(a, left, right, pivotIndex) { pivotValue = a[pivotIndex]; swap(a[pivotIndex], a[right]); // Move pivot to end storeIndex = left; for (i from left to right) { if a[i] < pivotValue swap(a[storeIndex], a[i]); storeIndex = storeIndex + 1 ; } swap(a[right], a[storeIndex]); // Move pivot to its final place return storeIndex; } Look at Wikipedia An easy version of in-place partition to understand, but not the original form
- 11. 11 quicksort(a,left,right) { if (right>left) { pivotIndex = left; select a pivot value a[pivotIndex]; pivotNewIndex=partition(a,left,right,pivotIndex); quicksort(a,left,pivotNewIndex-1); quicksort(a,pivotNewIndex+1,right); } }
- 12. 12 Partition variant Want to partition an array A[left .. right] First, get the pivot element out of the way by swapping it with the last element. (Swap pivot and A[right]) Let i start at the first element and j start at the next-to-last element (i = left, j = right – 1) pivot i j 5 6 4 6 3 12 19 5 6 4 6 3 12 19 swap
- 13. 13 Want to have A[x] <= pivot, for x < i A[x] >= pivot, for x > j When i < j Move i right, skipping over elements smaller than the pivot Move j left, skipping over elements greater than the pivot When both i and j have stopped A[i] >= pivot A[j] <= pivot i j 5 6 4 6 3 12 19 i j 5 6 4 6 3 12 19 i j <= pivot >= pivot
- 14. 14 When i and j have stopped and i is to the left of j Swap A[i] and A[j] The large element is pushed to the right and the small element is pushed to the left After swapping A[i] <= pivot A[j] >= pivot Repeat the process until i and j cross swap i j 5 6 4 6 3 12 19 i j 5 3 4 6 6 12 19
- 15. 15 When i and j have crossed Swap A[i] and pivot Result: A[x] <= pivot, for x < i A[x] >= pivot, for x > i i j 5 3 4 6 6 12 19 i j 5 3 4 6 6 12 19 i j 5 3 4 6 6 12 19
- 16. 16 void quickSort(int a[], int left, int right) { int i = left; int j = right; if (right - left >= 1) { int pivot = a[left]; while (j > i) { while ((a[i]<=pivot) && (i<=right) && (j>i)) i++; while ((a[j]>pivot) && (j>=left) && (j>=i)) j--; if (j > i) swap(a, i, j); } swap(a, left, j); quickSort(a, left, j - 1); quickSort(a, j + 1, right); } else { return; } } quickSort(a,0,size-1); Implementation (put the pivot on the leftmost instead of rightmost) Change it into the rightmost …
- 17. 17 void quickSort(int array[]) // pre: array is full, all elements are non-null integers // post: the array is sorted in ascending order { quickSort(array, 0, array.length - 1); // quicksort all the elements in the array } void quickSort(int array[], int start, int end) { int i = start; // index of left-to-right scan int k = end; // index of right-to-left scan if (end - start >= 1) // check that there are at least two elements to sort { int pivot = array[start]; // set the pivot as the first element in the partition while (k > i) // while the scan indices from left and right have not met, { while (array[i] <= pivot && i <= end && k > i) // from the left, look for the first i++; // element greater than the pivot while (array[k] > pivot && k >= start && k >= i) // from the right, look for the first k--; // element not greater than the pivot if (k > i) // if the left seekindex is still smaller than swap(array, i, k); // the right index, swap the corresponding elements } swap(array, start, k); // after the indices have crossed, swap the last element in // the left partition with the pivot quickSort(array, start, k - 1); // quicksort the left partition quickSort(array, k + 1, end); // quicksort the right partition } else // if there is only one element in the partition, do not do any sorting { return; // the array is sorted, so exit } } void swap(int array[], int index1, int index2) {…} // pre: array is full and index1, index2 < array.length // post: the values at indices 1 and 2 have been swapped Adapted from http://www.mycsresource.net/articles/programming/sorting_algos/quickso
- 18. 18 Use the median of the array Partitioning always cuts the array into roughly half An optimal quicksort (O(N log N)) However, hard to find the exact median e.g., sort an array to pick the value in the middle Pick a better Pivot
- 19. 19 median of three We will use median of three Compare just three elements: the leftmost, rightmost and center Swap these elements if necessary so that A[left] = Smallest A[right] = Largest A[center] = Median of three Pick A[center] as the pivot Swap A[center] and A[right – 1] so that pivot is at second last position (why?) median3
- 20. 20 pivot 5 6 4 6 3 12 19 2 13 6 5 6 4 3 12 19 2 6 13 A[left] = 2, A[center] = 13, A[right] = 6 Swap A[center] and A[right] 5 6 4 3 12 19 2 13 pivot 6 5 6 4 3 12 19 2 13 Choose A[center] as pivot Swap pivot and A[right – 1] Note we only need to partition A[left + 1, …, right – 2]. Why?
- 21. 21 Works only if pivot is picked as median-of-three. A[left] <= pivot and A[right] >= pivot Thus, only need to partition A[left + 1, …, right – 2] j will not run past the beginning because a[left] <= pivot i will not run past the end because a[right-1] = pivot The coding style is efficient, but hard to read
- 22. 22 i=left; j=right-1; while (1) { do i=i+1; while (a[i] < pivot); do j=j-1; while (pivot < a[j]); if (i<j) swap(a[i],a[j]); else break; }
- 23. 23 Small arrays For very small arrays, quicksort does not perform as well as insertion sort how small depends on many factors, such as the time spent making a recursive call, the compiler, etc Do not use quicksort recursively for small arrays Instead, use a sorting algorithm that is efficient for small arrays, such as insertion sort
- 24. 24 A practical implementation For small arrays Recursion Choose pivot Partitioning
- 25. 25 Quicksort Analysis Assumptions: A random pivot (no median-of-three partitioning) No cutoff for small arrays Running time pivot selection: constant time, i.e. O(1) partitioning: linear time, i.e. O(N) running time of the two recursive calls T(N)=T(i)+T(N-i-1)+cN where c is a constant i: number of elements in S1
- 26. 26 Worst-Case Analysis What will be the worst case? The pivot is the smallest element, all the time Partition is always unbalanced
- 27. 27 Best-case Analysis What will be the best case? Partition is perfectly balanced. Pivot is always in the middle (median of the array)
- 28. 28 Average-Case Analysis Assume Each of the sizes for S1 is equally likely This assumption is valid for our pivoting (median-of-three) strategy On average, the running time is O(N log N) (covered in comp271)
- 29. 29 Quicksort is ‘faster’ than Mergesort Both quicksort and mergesort take O(N log N) in the average case. Why is quicksort faster than mergesort? The inner loop consists of an increment/decrement (by 1, which is fast), a test and a jump. There is no extra juggling as in mergesort. inner loop