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https://gitlab.com/mfocko/LeetCode.git
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59 lines
1.3 KiB
Ruby
59 lines
1.3 KiB
Ruby
# @param {Integer[]} nums1
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# @param {Integer} m
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# @param {Integer[]} nums2
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# @param {Integer} n
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# @return {Void} Do not return anything, modify nums1 in-place instead.
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def merge(nums1, m, nums2, n)
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# shift numbers to right
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i, k = m - 1, nums1.size - 1
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while i >= 0 do
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nums1[k] = nums1[i]
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i -= 1
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k -= 1
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end
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# merge them
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i, j, k = nums1.size - m, 0, 0
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while i < nums1.size && j < n do
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if nums1[i] < nums2[j] then
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nums1[k] = nums1[i]
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i += 1
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else
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nums1[k] = nums2[j]
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j += 1
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end
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k += 1
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end
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while j < n do
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nums1[k] = nums2[j]
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j += 1
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k += 1
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end
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end
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RSpec.describe "merge" do
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it "nums1 = [1,2,3,0,0,0], m = 3, nums2 = [2,5,6], n = 3 ~> [1,2,2,3,5,6]" do
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nums1, m = [1,2,3,0,0,0], 3
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nums2, n = [2,5,6], 3
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merge(nums1, m, nums2, n)
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expect(nums1).to eq([1,2,2,3,5,6])
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end
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it "nums1 = [0], m = 0, nums2 = [1], n = 1 ~> [1]" do
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nums1, m = [1], 1
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nums2, n = [], 0
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merge(nums1, m, nums2, n)
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expect(nums1).to eq([1])
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end
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it "[3, 3] for 6 is [0, 1]" do
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nums1, m = [0], 0
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nums2, n = [1], 1
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merge(nums1, m, nums2, n)
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expect(nums1).to eq([1])
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end
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end
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