The Permutation Iterator in Python

  • 时间:2020-09-13 14:33:25
  • 分类:网络文摘
  • 阅读:149 次

The permutation is a frequently-used algorithm that we can apply to strings, list, or arrays (vector). In Python, we can import the itertools and use the permutations method which will yield a permutation at a time – note that itertools.permutations works for both strings and list.

1
2
3
4
>>>list(itertools.permutations([1,2,3]))
[(1, 2, 3), (1, 3, 2), (2, 1, 3), (2, 3, 1), (3, 1, 2), (3, 2, 1)]
>>> list(itertools.permutations("123"))
[('1', '2', '3'), ('1', '3', '2'), ('2', '1', '3'), ('2', '3', '1'), ('3', '1', '2'), ('3', '2', '1')]
>>>list(itertools.permutations([1,2,3]))
[(1, 2, 3), (1, 3, 2), (2, 1, 3), (2, 3, 1), (3, 1, 2), (3, 2, 1)]
>>> list(itertools.permutations("123"))
[('1', '2', '3'), ('1', '3', '2'), ('2', '1', '3'), ('2', '3', '1'), ('3', '1', '2'), ('3', '2', '1')]

The number of total permutations is N! given the size of N elements in the string or list. For example, there are 6 permutations (3!) for a list of size 3. The fact that we may not need all permutations at once, thus we can use yield keyword that basically turns the function into returning an iterator. The iterator avoids using too much memory and is faster in practical use if you are not intending to check all permutations.

Python Permutation Iterator on List

Based on this permutation algorithm, we can recursively swap in/out the current element at position, and yield any combination result when the index reaches the end.

1
2
3
4
5
6
7
8
9
def permutation_list(items, i = 0):
    if i == len(items):
        yield items
    else:
        for j in range(i, len(items)):
            items[i], items[j] = items[j], items[i]
            for x in permutation_list(items, i + 1):
                yield x
            items[i], items[j] = items[j], items[i]
def permutation_list(items, i = 0):
    if i == len(items):
        yield items
    else:
        for j in range(i, len(items)):
            items[i], items[j] = items[j], items[i]
            for x in permutation_list(items, i + 1):
                yield x
            items[i], items[j] = items[j], items[i]

Calling this permutation function on list [1, 2, 3] gives the iterator that will produce the following if you convert it to list (or simply iterating over the iterator):

1
2
3
4
5
6
[1, 2, 3]
[1, 3, 2]
[2, 1, 3]
[2, 3, 1]
[3, 2, 1]
[3, 1, 2]
[1, 2, 3]
[1, 3, 2]
[2, 1, 3]
[2, 3, 1]
[3, 2, 1]
[3, 1, 2]

Note that this permutation function does not work for strings, because you simply can’t swap two characters of a string, as the strings in Python are immutable.

Python Permutation Iterator on String

The following Python permutation iterator works for Strings only. We are separating the original string into two: head and tail. Then, recursively append each character into tail until the head is empty – which means a permutation string is being yield.

1
2
3
4
5
6
7
def permutation_string(head, tail = ''):
    if len(head) == 0: 
        yield tail
    else:
        for i in range(len(head)):
            for s in permutation_string(head[0:i] + head[i+1:], tail+head[i]):
                yield s
def permutation_string(head, tail = ''):
    if len(head) == 0: 
        yield tail
    else:
        for i in range(len(head)):
            for s in permutation_string(head[0:i] + head[i+1:], tail+head[i]):
                yield s

Invoke the function on string “123” that gives the following iterator:

1
2
3
4
5
6
123
132
213
231
312
321
123
132
213
231
312
321

Permutation results look organised and are in good order. The function does not work for list as we are using a second parameter (optional) which is initialised to empty string.

Python Permutation Iterator on List and String

Let’s take a look at the following improved iterator, that works for both strings and list.

1
2
3
4
5
6
7
def permutation(items):
    if len(items) <= 1:
        yield items
    else:
        for nextItems in permutation(items[1:]):
            for i in range(len(nextItems) + 1):
                yield nextItems[:i] + items[0:1] + nextItems[i:]
def permutation(items):
    if len(items) <= 1:
        yield items
    else:
        for nextItems in permutation(items[1:]):
            for i in range(len(nextItems) + 1):
                yield nextItems[:i] + items[0:1] + nextItems[i:]

The [0:1] array slicing also works for strings. And the recursive permutation algorithms works by inserting current first (head) item into the other positions. And thus, the permutated results may look random and kinda dis-ordered.

1
2
3
4
5
6
123
213
231
132
312
321
123
213
231
132
312
321

–EOF (The Ultimate Computing & Technology Blog) —

推荐阅读:
静默地走在我的青春里的人们  那一段托管的日子作文  读《我把精灵带回家》有感  面对陌生作文1200字  搜索引擎优化的“时间”该如何确定?  如何根据用户需求来做SEO优化推广  百度竞价否定词添加成功后:怎么还能被搜索出来?  怎么理解关键词和SEO优化之间的关系  企业推广难题 选择百度竞价还是做SEO?  SEO四大搜索方式 你真的都了解吗? 
评论列表
添加评论