0
def find_even_index(arr):
    len_arr = len(arr)
    for i in range(len_arr):
        if sum(arr[:i]) == sum(arr[i:]) and sum(arr[:i]) != None and sum(arr[i:]) != None:
            break
        return i

Не могу понять как обойти в цикле проверку, при которой не получим результат среза sum(arr[i:]) == 0, и как сделать срез в этом случае в цикле?

вот условия задачи:

You are going to be given an array of integers. Your job is to take that array and find an index N where the sum of the integers to the left of N is equal to the sum of the integers to the right of N. If there is no index that would make this happen, return -1.

For example:

Let's say you are given the array {1,2,3,4,3,2,1}: Your function will return the index 3, because at the 3rd position of the array, the sum of left side of the index ({1,2,3}) and the sum of the right side of the index ({3,2,1}) both equal 6.

Let's look at another one. You are given the array {1,100,50,-51,1,1}: Your function will return the index 1, because at the 1st position of the array, the sum of left side of the index ({1}) and the sum of the right side of the index ({50,-51,1,1}) both equal 1.

Last one: You are given the array {20,10,-80,10,10,15,35} At index 0 the left side is {} The right side is {10,-80,10,10,15,35} They both are equal to 0 when added. (Empty arrays are equal to 0 in this problem) Index 0 is the place where the left side and right side are equal.

Note: Please remember that in most programming/scripting languages the index of an array starts at 0.

Input: An integer array of length 0 < arr < 1000. The numbers in the array can be any integer positive or negative.

Output: The lowest index N where the side to the left of N is equal to the side to the right of N. If you do not find an index that fits these rules, then you will return -1.

Note: If you are given an array with multiple answers, return the lowest correct index.

1 ответ 1

2

Вот этого кода достаточно:

def check_arr(arr):
    for i in range(len(arr)):
        if sum(arr[:i])==sum(arr[i+1:]):
            return i
    return -1

assert check_arr([1, 2, 3, 4, 3, 2, 1])==3
assert check_arr([1, 100, 50, -51, 1, 1])==1
assert check_arr([20, 10, -80, 10, 10, 15, 35])==0
1
  • Проще простого оказалось спасибо... как то застрял на этом
    – hellog888
    8 авг в 13:07

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