執行給定數字的唯一分解的 C++ 程式

這是一個用於獲取給定整數的所有唯一分解的 C++ 程式，這樣一組分割槽的加法會產生一個整數。在該程式中，給定一個正整數 n，我們將生成所有可能將 n 表示為正整數之和的唯一方法。

演算法

Begin
function displayAllUniqueParts(int m):
   1) Set Index of last element k in a partition to 0
   2) Initialize first partition as number itself, p[k]=m
   3) Create a while loop which first prints current partition, then generates next partition. The loop stops when the current partition has all 1s.
   4) Display current partition as displayArray(p, k + 1)
   5) Generate next partition:
   6) Initialize val = 0.
   Find the rightmost non-one value in p[]. Also, update the val
   so that we know how much value can be accommodated.
   If k < 0,
   all the values are 1 so there are no more partitions
   Decrease the p[k] found above and adjust the val.
   7) If val is more, then the sorted order is violated. Divide val in different
   values of size p[k] and copy these values at different positions
   after p[k].
   Copy val to next position and increment position.
End

示例

#include<iostream>
using namespace std;
void displayArray(int p[], int m) //to print the array
{
   for (int i = 0; i < m; i++)
   cout << p[i] << " ";
   cout << endl;
}
void displayAllUniqueParts(int m)
{
   int p[m];
   int k = 0;
   p[k] = m;
   while (true)
   {
      displayArray(p, k + 1);
      int val = 0; //initialize val
      while (k >= 0 && p[k] == 1)
      {
         val += p[k]; //update val
         k--;
      }
      if (k < 0)
      return;
      p[k]--;
      val++;
      while (val > p[k]) //if val is more
      {
         p[k + 1] = p[k];
         val = val - p[k];
         k++;
      }
      p[k + 1] = val;
      k++;
   }
}
int main()
{
   cout << "Display All Unique Partitions of 3\n";
   displayAllUniqueParts(3);
   cout << "\nDisplay All Unique Partitions of 4\n";
   displayAllUniqueParts(4);
   cout << "\nDisplay All Unique Partitions of 5\n";
   displayAllUniqueParts(5);
   return 0;
}

輸出

Display All Unique Partitions of 3
3
2 1
1 1 1
Display All Unique Partitions of 4
4
3 1
2 2
2 1 1
1 1 1 1
Display All Unique Partitions of 5
5
4 1
3 2
3 1 1
2 2 1
2 1 1 1
1 1 1 1 1

斯米塔·卡普斯

更新於：30-Jul-2019

122 次瀏覽

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