我想生成三个数字的所有元组,它们总计为12。例如:((12, 0, 0), (11, 1, 0)),依此类推。您将如何在python中生成整个列表?我尝试过:
x = []
for a in range(0, 13):
for b in range(0, 13):
for c in range(0, 13):
x.append((a, b, c))
我还尝试仅在总和为12时追加到列表中,但是我觉得这是完成任务的一种非常低效的方法,因为它循环了不必要的迭代。
答案 0 :(得分:1)
为此,您可以使用itertools.product来避免嵌套循环(基于@User 12692182的answer)
from itertools import product
[(a, b, 12-a-b) for a, b in product(range(13), repeat=2) if 12-a-b >=0]
结果:
[(0, 0, 12), (0, 1, 11), (0, 2, 10), (0, 3, 9), (0, 4, 8), (0, 5, 7), (0, 6, 6), (0, 7, 5), (0, 8, 4), (0, 9, 3), (0, 10, 2), (0, 11, 1), (0, 12, 0), (1, 0, 11), (1, 1, 10), (1, 2, 9), (1, 3, 8), (1, 4, 7), (1, 5, 6), (1, 6, 5), (1, 7, 4), (1, 8, 3), (1, 9, 2), (1, 10, 1), (1, 11, 0), (2, 0, 10), (2, 1, 9), (2, 2, 8), (2, 3, 7), (2, 4, 6), (2, 5, 5), (2, 6, 4), (2, 7, 3), (2, 8, 2), (2, 9, 1), (2, 10, 0), (3, 0, 9), (3, 1, 8), (3, 2, 7), (3, 3, 6), (3, 4, 5), (3, 5, 4), (3, 6, 3), (3, 7, 2), (3, 8, 1), (3, 9, 0), (4, 0, 8), (4, 1, 7), (4, 2, 6), (4, 3, 5), (4, 4, 4), (4, 5, 3), (4, 6, 2), (4, 7, 1), (4, 8, 0), (5, 0, 7), (5, 1, 6), (5, 2, 5), (5, 3, 4), (5, 4, 3), (5, 5, 2), (5, 6, 1), (5, 7, 0), (6, 0, 6), (6, 1, 5), (6, 2, 4), (6, 3, 3), (6, 4, 2), (6, 5, 1), (6, 6, 0), (7, 0, 5), (7, 1, 4), (7, 2, 3), (7, 3, 2), (7, 4, 1), (7, 5, 0), (8, 0, 4), (8, 1, 3), (8, 2, 2), (8, 3, 1), (8, 4, 0), (9, 0, 3), (9, 1, 2), (9, 2, 1), (9, 3, 0), (10, 0, 2), (10, 1, 1), (10, 2, 0), (11, 0, 1), (11, 1, 0), (12, 0, 0)]
答案 1 :(得分:0)
您必须使用减法,以免不超过12或低于12。首先,您将使用0到12的范围,与其他所有条件无关。然后,您将使用另一个范围,但是要避免超过这个范围,您需要将迭代的第二部分限制为12-(第一个数字)。最后一个数字将完全取决于其他数字,为您提供12-(第一个数字)-(第二个数字),其目的仅是为了填补第一个数字,第二个数字和12之间的空白。在python中,看起来像:
x = []
for a in range(0, 13):
for b in range(0, (13-a)):
c = 12-a-b
x.append((a, b, c))