LeetCode1079题:活字印刷——Python递归与迭代解法
1. LeetCode1079題:活字印刷
你有一套活字字模 tiles,其中每個字模上都刻有一個字母 tiles[i]。返回你可以印出的非空字母序列的數目。
注意:本題中,每個活字字模只能使用一次。
示例 1:
輸入:“AAB”
輸出:8
解釋:可能的序列為 “A”, “B”, “AA”, “AB”, “BA”, “AAB”, “ABA”, “BAA”。
示例 2:
輸入:“AAABBC”
輸出:188
提示:
1 <= tiles.length <= 7
tiles 由大寫英文字母組成
2. 求字母序列數目的Python代碼
2.1 遞歸
def numTilePossibilities(tiles):result = 0for i in set(tiles):result += 1 + numTilePossibilities(tiles.replace(i, '', 1))return resultprint(numTilePossibilities('AAB')) print(numTilePossibilities('AABC')) print(numTilePossibilities('AAABBC'))實驗結果:
8
34
188
代碼解讀:
函數numTilePossibilities是一個遞歸函數,參數tiles代表活字字模上的字母組成的字符串,返回值result代表使用tiles中的字母能夠排列出多少種字符串。
遞歸子問題:從tiles中拿出1個字母i后,使用剩余字母能夠排列出多少種字符串。該問題在代碼中表達為:numTilePossibilities(tiles.replace(i, '', 1))。
若剩余字母排列出的字符串都加一個前綴i,即可得到一批新的字符串。由此可得,以字母i為前綴的字符串(包括字母i本身)共有1 + numTilePossibilities(tiles.replace(i, '', 1))種。
通過for i in set(tiles):遍歷tiles去重后的字母集合,并使用result累計以不同字母為前綴的字符串的總數。
2.2 迭代
def numTilePossibilities(tiles):result = 0stack = [tiles]while stack:tiles = stack.pop()for i in set(tiles):result += 1stack.append(tiles.replace(i, '', 1))return resultprint(numTilePossibilities('AAB')) print(numTilePossibilities('AABC')) print(numTilePossibilities('AAABBC'))實驗結果:
8
34
188
3. 求字母序列的Python代碼
3.1 遞歸
遞歸代碼對解空間樹的搜索是深度優先搜索(depth first search, dfs)。
def numTilePossibilities(tiles):result = []def dfs(tiles, prefix):for i in sorted(set(tiles)):result.append(prefix+i)dfs(tiles.replace(i, '', 1), prefix+i)dfs(tiles, '')return resultprint(numTilePossibilities('AAB')) print(numTilePossibilities('AABC'))實驗結果:
[‘A’, ‘AA’, ‘AAB’, ‘AB’, ‘ABA’, ‘B’, ‘BA’, ‘BAA’]
[‘A’, ‘AA’, ‘AAB’, ‘AABC’, ‘AAC’, ‘AACB’, ‘AB’, ‘ABA’, ‘ABAC’, ‘ABC’, ‘ABCA’, ‘AC’, ‘ACA’, ‘ACAB’, ‘ACB’, ‘ACBA’, ‘B’, ‘BA’, ‘BAA’, ‘BAAC’, ‘BAC’, ‘BACA’, ‘BC’, ‘BCA’, ‘BCAA’, ‘C’, ‘CA’, ‘CAA’, ‘CAAB’, ‘CAB’, ‘CABA’, ‘CB’, ‘CBA’, ‘CBAA’]
3.2 迭代(棧,深度優先搜索)
本迭代代碼通過棧實現了對解空間樹的深度優先搜索。
def numTilePossibilities(tiles):result = []stack = [(tiles, '')]while stack:tiles, prefix = stack.pop()result.append(prefix)for i in sorted(set(tiles), reverse=True):stack.append((tiles.replace(i, '', 1), prefix+i))return result[1:]print(numTilePossibilities('AAB')) print(numTilePossibilities('AABC'))實驗結果:
[‘A’, ‘AA’, ‘AAB’, ‘AB’, ‘ABA’, ‘B’, ‘BA’, ‘BAA’]
[‘A’, ‘AA’, ‘AAB’, ‘AABC’, ‘AAC’, ‘AACB’, ‘AB’, ‘ABA’, ‘ABAC’, ‘ABC’, ‘ABCA’, ‘AC’, ‘ACA’, ‘ACAB’, ‘ACB’, ‘ACBA’, ‘B’, ‘BA’, ‘BAA’, ‘BAAC’, ‘BAC’, ‘BACA’, ‘BC’, ‘BCA’, ‘BCAA’, ‘C’, ‘CA’, ‘CAA’, ‘CAAB’, ‘CAB’, ‘CABA’, ‘CB’, ‘CBA’, ‘CBAA’]
3.3 迭代(棧)
def numTilePossibilities(tiles):result = []stack = [(tiles, '')]while stack:tiles, prefix = stack.pop()for i in sorted(set(tiles)):result.append(prefix+i)stack.append((tiles.replace(i, '', 1), prefix+i))return resultprint(numTilePossibilities('AAB')) print(numTilePossibilities('AABC'))實驗結果:
[‘A’, ‘B’, ‘BA’, ‘BAA’, ‘AA’, ‘AB’, ‘ABA’, ‘AAB’]
[‘A’, ‘B’, ‘C’, ‘CA’, ‘CB’, ‘CBA’, ‘CBAA’, ‘CAA’, ‘CAB’, ‘CABA’, ‘CAAB’, ‘BA’, ‘BC’, ‘BCA’, ‘BCAA’, ‘BAA’, ‘BAC’, ‘BACA’, ‘BAAC’, ‘AA’, ‘AB’, ‘AC’, ‘ACA’, ‘ACB’, ‘ACBA’, ‘ACAB’, ‘ABA’, ‘ABC’, ‘ABCA’, ‘ABAC’, ‘AAB’, ‘AAC’, ‘AACB’, ‘AABC’]
3.4 迭代(隊列)
本迭代代碼通過隊列實現了對解空間樹的廣度優先搜索(breadth first search, bfs)。
def numTilePossibilities(tiles):result = []queue = [(tiles, '')]while queue:tiles, prefix = queue.pop(0)for i in sorted(set(tiles)):result.append(prefix+i)queue.append((tiles.replace(i, '', 1), prefix+i))return resultprint(numTilePossibilities('AAB')) print(numTilePossibilities('AABC'))實驗結果:
[‘A’, ‘B’, ‘AA’, ‘AB’, ‘BA’, ‘AAB’, ‘ABA’, ‘BAA’]
[‘A’, ‘B’, ‘C’, ‘AA’, ‘AB’, ‘AC’, ‘BA’, ‘BC’, ‘CA’, ‘CB’, ‘AAB’, ‘AAC’, ‘ABA’, ‘ABC’, ‘ACA’, ‘ACB’, ‘BAA’, ‘BAC’, ‘BCA’, ‘CAA’, ‘CAB’, ‘CBA’, ‘AABC’, ‘AACB’, ‘ABAC’, ‘ABCA’, ‘ACAB’, ‘ACBA’, ‘BAAC’, ‘BACA’, ‘BCAA’, ‘CAAB’, ‘CABA’, ‘CBAA’]
總結
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