來自比較容易記憶的是用內置的set
1 l1 = ['b','c','d','b','c','a','a'] 2 l2 = list(set(l1)) 3 print l2
還有一種據說速度更快的,沒測試過兩者的速度差別
1 l1 = ['b','c','d','b','c','a','a'] 2 l2 = {}.fromkeys(l1).keys() 3 print l2 4 5 這兩種都有個缺點,祛除重復元素后排序變了: 6 7 ['a', 'c', 'b', 'd']
如果想要保持他們原來的排序:
用list類的sort方法
1 l1 = ['b','c','d','b','c','a','a'] 2 l2 = list(set(l1)) 3 l2.sort(key=l1.index) 4 print l2
也可以這樣寫
1 l1 = ['b','c','d','b','c','a','a'] 2 l2 = sorted(set(l1),key=l1.index) 3 print l2
也可以用遍歷
1 l1 = ['b','c','d','b','c','a','a'] 2 l2 = [] 3 for i in l1: 4 if not i in l2: 5 l2.append(i) 6 print l2
上面的代碼也可以這樣寫
1 l1 = ['b','c','d','b','c','a','a'] 2 l2 = [] 3 [l2.append(i) for i in l1 if not i in l2] 4 print l2
這樣就可以保證排序不變了:
['b', 'c', 'd', 'a']
1 list01 = ['a','b','c','a','c'] 2 set01 = set(list01) 3 4 print(set01) 5 6 dict01 = {} 7 8 for item in set01: 9 dict01.update({item:list01.count(item)}) 10 print(dict01
1 'c', 'b', 'a'} 2 {'c': 2, 'b': 1, 'a': 2}