如果只需要测试,请将目标列表连接到字符串中,然后
bad像这样测试每个元素:
>>> my_list = ['abc-123', 'def-456', 'ghi-789', 'abc-456', 'def-111', 'qwe-111']>>> bad = ['abc', 'def']>>> [e for e in bad if e in 'n'.join(my_list)]['abc', 'def']
从您的问题中,您可以通过以下方式将每个元素作为子字符串相对于另一个元素的子字符串进行测试:
>>> [i for e in bad for i in my_list if e in i]['abc-123', 'abc-456', 'def-456', 'def-111']
它非常快(与其他方法之一相比):
>>> def f1():... [item for item in my_list if any(x in item for x in bad)]... >>> def f2():... [i for e in bad for i in my_list if e in i]... >>> timeit.Timer(f1).timeit()5.062238931655884>>> timeit.Timer(f2).timeit()1.35371994972229
从您的评论中,您可以找到不匹配的元素:
>>> set(my_list)-{i for e in bad for i in my_list if e in i}{'ghi-789', 'qwe-111'}
