如何生成无连续数字的随机整数列表？

Question

对随机生成的列表进行排序后，我会有连续的数字，例如

[7, 9, 13, 47, 64, 76, 83, 94, 95, 114, 115, 116, 120, 121, 123, 124, 127, 136, 152, 154, 167, 184, 189, 205, 212, 222, 226, 229, 231, 238]

这里连续的数字是(94, 95)，(120, 121)和(123, 124)。 如何删除它们？

我的代码是：

while len(set(l)) != 30:
    a = random.randint(1, 240)
    l.append(a)

l = list(set(l))
l = sorted(l)

f.write(str(l))

我不想使用randrange模块中的choice或random。

Answer 1

创建一个随机数a，然后检查a和a±1是否不在集合中：

import random 
l = set()
while len(l) != 30:
    a = random.randint(1, 240)
    if not {a-1,a,a+1} & l: # set intersection: empty == False == no common numbers
        l.add(a)

l = sorted(l) # sorted creates a sorted list from any iterable

print(l) 

输出：

[5, 12, 40, 47, 55, 59, 62, 73, 76, 82, 84, 89, 93, 95, 109, 
 125, 127, 141, 165, 168, 184, 187, 196, 202, 204, 210, 215, 
 218, 229, 231]

直接使用一组可以非常快速地检查数字（±1）是否已包含在您的随机数中。

Doku：

• set.intersection (or &)

---

并作为功能：

import random

def get_random_numbers_no_neighboring_elems(min_num, max_num, amount):
    """Generates amount random numbers in [min_num,..,max_num] that do not
    include neighboring numbers."""

    # this is far from exact - it is best to have about 5+ times the amount 
    # of numbers to choose from - if the margin is too small you might take
    # very long to get all your "fitting numbers" as only about 1/4 of the range
    # is a viable candidate (worst case): 
    #   [1 2 3 4 5 6 7 8 9 10]: draw 2 then 5 then 8 and no more are possible 
    if (max_num-min_num) // 5 < amount:
        raise ValueError(f"Range too small - increase given range.")

    l = set()
    while len(l) != amount:  
        a = random.randint(min_num, max_num)
        if not {a-1,a,a+1} & l: # set intersection: empty == False == no commons
            l.add(a)
    return sorted(l)

print(get_random_numbers_no_neighboring_elems(1,240,80))

Answer 2

我添加了一种解决方案，可以以与其他边缘相同的概率选择边缘，但是它们必须互斥：

def rand2(k,n,edge=False):
    forbid=set()
    l=set()
    while len(l)<k:
        x=random.randint(1,n)
        if x not in forbid : 
            l.add(x)
            forbid.update({x,x-1,x+1})
            if edge and x in {1,n} : forbid.add(n+1-x)
    return l

from collections import Counter    

print(Counter([tuple(rand2(2,5)) for i in range(10000)])) 
#Counter({(2, 4):1943, (1, 4):1720, (3, 5):1711, (2, 5):1652, (1, 3):1637, (1, 5):1337})

print(Counter([tuple(rand2(2,5,edge=True)) for i in range(100000)]))
#Counter({(2, 5): 2060, (3, 5): 2026, (1, 4): 1981, (1, 3): 1975, (2, 4): 1958})