给定一个数字字符串S ,任务是打印字符串的所有可以被N整除的排列。
例子:
Input: N = 5, S = “125”
Output: 125 215
Explanation:
All possible permutations are S are {125, 152, 215, 251, 521, 512}.
Out of these 6 permutations, only 2 {125, 215} are divisible by N (= 5).
Input: N = 7, S = “4321”
Output: 4312 4123 3241
方法:想法是生成所有可能的排列,对于每个排列,检查它是否可以被N整除。对于发现可以被N整除的每个排列,打印它们。
下面是上述方法的实现:
C++
// C++ Program to implement
// the above approach
#include
using namespace std;
// Function to Swap two
// characters
void swap_(char& a, char& b)
{
char temp;
temp = a;
a = b;
b = temp;
}
// Function to generate all permutations
// and print the ones that are
// divisible by the N
void permute(char* str, int l, int r, int n)
{
int i;
if (l == r) {
// Convert string to integer
int j = atoi(str);
// Check for divisibility
// and print it
if (j % n == 0)
cout << str << endl;
return;
}
// Print all the permutations
for (i = l; i < r; i++) {
// Swap characters
swap_(str[l], str[i]);
// Permute remaining
// characters
permute(str, l + 1, r, n);
// Revoke the swaps
swap_(str[l], str[i]);
}
}
// Driver Code
int main()
{
char str[100] = "125";
int n = 5;
int len = strlen(str);
if (len > 0)
permute(str, 0, len, n);
return 0;
} Java
// Java program to implement
// the above approach
class GFG{
// Function to Swap two
// characters
static void swap_(char []a, int l, int i)
{
char temp;
temp = a[l];
a[l] = a[i];
a[i] = temp;
}
// Function to generate all permutations
// and print the ones that are
// divisible by the N
static void permute(char[] str, int l,
int r, int n)
{
int i;
if (l == r)
{
// Convert String to integer
int j = Integer.valueOf(String.valueOf(str));
// Check for divisibility
// and print it
if (j % n == 0)
System.out.print(String.valueOf(str) + "\n");
return;
}
// Print all the permutations
for(i = l; i < r; i++)
{
// Swap characters
swap_(str, l, i);
// Permute remaining
// characters
permute(str, l + 1, r, n);
// Revoke the swaps
swap_(str, l, i);
}
}
// Driver Code
public static void main(String[] args)
{
String str = "125";
int n = 5;
int len = str.length();
if (len > 0)
permute(str.toCharArray(), 0, len, n);
}
}
// This code is contributed by amal kumar choubeyPython3
# Python3 Program to implement
# the above approach
# Function to generate all
# permutations and print
# the ones that are
# divisible by the N
def permute(st, l, r, n):
if (l == r):
# Convert string
# to integer
p = ''.join(st)
j = int(p)
# Check for divisibility
# and print it
if (j % n == 0):
print (p)
return
# Print all the
# permutations
for i in range(l, r):
# Swap characters
st[l], st[i] = st[i], st[l]
# Permute remaining
# characters
permute(st, l + 1, r, n)
# Revoke the swaps
st[l], st[i] = st[i] ,st[l]
# Driver Code
if __name__ == "__main__":
st = "125"
n = 5
length = len(st)
if (length > 0):
p = list(st)
permute(p, 0, length, n);
# This code is contributed by rutvik_56C#
// C# program to implement
// the above approach
using System;
class GFG{
// Function to Swap two
// characters
static void swap_(char []a, int l,
int i)
{
char temp;
temp = a[l];
a[l] = a[i];
a[i] = temp;
}
// Function to generate all permutations
// and print the ones that are
// divisible by the N
static void permute(char[] str, int l,
int r, int n)
{
int i;
if (l == r)
{
// Convert String to integer
int j = Int32.Parse(new string(str));
// Check for divisibility
// and print it
if (j % n == 0)
Console.Write(new string(str) + "\n");
return;
}
// Print all the permutations
for(i = l; i < r; i++)
{
// Swap characters
swap_(str, l, i);
// Permute remaining
// characters
permute(str, l + 1, r, n);
// Revoke the swaps
swap_(str, l, i);
}
}
// Driver Code
public static void Main(string[] args)
{
string str = "125";
int n = 5;
int len = str.Length;
if (len > 0)
permute(str.ToCharArray(), 0, len, n);
}
}
// This code is contributed by rutvik_56输出:
125
215
时间复杂度: O(N!)
辅助空间: O(N)
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