30秒学会 JavaScript 片段 · 2022年4月9日

30秒学会 JavaScript 片段 – Maximum subarray

Finds a contiguous subarray with the largest sum within an array of numbers.

  • Use a greedy approach to keep track of the current sum and the current maximum, maxSum. Set maxSum to -Infinity to make sure that the highest negative value is returned, if all values are negative.
  • Define variables to keep track of the maximum start index, sMax, maximum end index, eMax and current start index, s.
  • Use Array.prototype.forEach() to iterate over the values and add the current value to the sum.
  • If the current sum is greater than maxSum, update the index values and the maxSum.
  • If the sum is below 0, reset it to 0 and update the value of s to the next index.
  • Use Array.prototype.slice() to return the subarray indicated by the index variables.

代码实现

const maxSubarray = (...arr) => {
  let maxSum = -Infinity,
    sum = 0;
  let sMax = 0,
    eMax = arr.length - 1,
    s = 0;

  arr.forEach((n, i) => {
    sum += n;
    if (maxSum < sum) {
      maxSum = sum;
      sMax = s;
      eMax = i;
    }

    if (sum < 0) {
      sum = 0;
      s = i + 1;
    }
  });

  return arr.slice(sMax, eMax + 1);
};

maxSubarray(-2, 1, -3, 4, -1, 2, 1, -5, 4); // [4, -1, 2, 1]

翻译自:https://www.30secondsofcode.org/js/s/max-subarray