Problem Statement:

A conveyor belt has packages that must be shipped from one port to another within days days.

The i^th package on the conveyor belt has a weight of weights[i]. Each day, we load the ship with packages on the conveyor belt (in the order given by weights). We may not load more weight than the maximum weight capacity of the ship.

Return the least weight capacity of the ship that will result in all the packages on the conveyor belt being shipped within days days.

Example 1:

Input: weights = [1,2,3,4,5,6,7,8,9,10], days = 5
Output: 15
Explanation: A ship capacity of 15 is the minimum to ship all the packages in 5 days like this:
1st day: 1, 2, 3, 4, 5
2nd day: 6, 7
3rd day: 8
4th day: 9
5th day: 10

Note that the cargo must be shipped in the order given, so using a ship of capacity 14 and splitting the packages into parts like (2, 3, 4, 5), (1, 6, 7), (8), (9), (10) is not allowed.

Example 2:

Input: weights = [3,2,2,4,1,4], days = 3
Output: 6
Explanation: A ship capacity of 6 is the minimum to ship all the packages in 3 days like this:
1st day: 3, 2
2nd day: 2, 4
3rd day: 1, 4

Example 3:

Input: weights = [1,2,3,1,1], days = 4
Output: 3
Explanation:
1st day: 1
2nd day: 2
3rd day: 3
4th day: 1, 1

Constraints:

1 <= days <= weights.length <= 5 * 10⁴
1 <= weights[i] <= 500

Solution:

Intuition

We need to find the minimum possible capacity that will work. So, we can think of the problem as a search problem with a test of whether it will work at a given capacity. If we want to find the answer in a range [0,M] then we can apply the test at M/2 and if it works then we recurse in the lower half and if it does not work then we recurse in the upper half. In this way we can come up with a binary search.

Approach

To create the test described above we need to write a function bool possible(int capacity, int days, vector<int>&weights) which will return true if it is possible and false if it is not possible to work with capacity. We will use this for binary search as described previously.

Code

 
class Solution {
public:
    bool possible(int capacity, int days, vector<int>&weights)
    {
        int n=weights.size(), i=0, ctr=0;
        while(i<n)
        {
            if (weights[i]>capacity) return false;
            int cur = 0;
            while(i<n && cur+weights[i]<=capacity)
            {
                cur += weights[i];
                i++;
            }
            ctr ++;
        }
        return (ctr<=days);
    }
    int shipWithinDays(vector<int>& weights, int days) 
    {
        int lo=0, hi=INT_MAX;
        while (lo<=hi)
        {
            int mid = lo + (hi-lo)/2;
            if (possible(mid, days, weights)) hi = mid-1;
            else lo = mid+1;
        }
        return lo;
    }
};

Complexity

Time complexity: $O(n \log(M))$ where $M$ is the maximum possible value of capacity. It can be the maximum value of weights array but in our implementation we have taken it to be INT_MAX since the difference is trivial anyway (in log scale).
Space complexity: $O(1)$