给定字符串str ,任务是检查str的奇数索引处的字符是否形成回文字符串。如果不是,则打印“否”,否则打印“是” 。
例子:
Input: str = “osafdfgsg”, N = 9
Output: Yes
Explanation:
Odd indexed characters are = { s, f, f, s }
so it will make palindromic string, “sffs”.
Input: str = “addwfefwkll”, N = 11
Output: No
Explanation:
Odd indexed characters are = {d, w, e, w, l}
so it will not make palindrome string, “dwewl”
天真的方法:请参阅本文的Set 1以了解天真的方法
高效方法:该方法是检查通过附加给定字符串的奇数索引形成的奇数字符串形成回文。因此,我们可以使用堆栈来优化运行时间,而不是创建奇数字符串然后检查回文。步骤如下:
- 对于检查oddString是回文,我们需要将字符串上半年的奇数索引字符字符串下半年的奇怪的字符进行比较。
- 将字符串前半部分的奇数索引字符推入堆栈。
- 要比较下半部分和上半部分的奇数索引字符,请执行以下操作:
- 从堆栈中弹出字符,并将其与字符串后半部分的下一个奇数索引字符进行匹配。
- 如果以上两个字符不相等,则由奇数索引形成的字符串不是回文。打印“否”并退出循环。
- 否则匹配字符串后半部分的每个剩余奇数字符。
- 最后,我们需要检查堆栈的大小是否为零。如果是,则由奇数索引形成的字符串将是回文,否则就不是。
下面是上述方法的实现:
C++
// C++ program for the above approach
#include
using namespace std;
// Function to check if string formed
// by odd indices is palindromic or not
bool isOddStringPalindrome(
string str, int n)
{
int oddStringSize = n / 2;
// Check if length of OddString
// odd, to consider edge case
bool lengthOdd
= ((oddStringSize % 2 == 1)
? true
: false);
stack s;
int i = 1;
int c = 0;
// Push odd index character of
// first half of str in stack
while (i < n
&& c < oddStringSize / 2) {
s.push(str[i]);
i += 2;
c++;
}
// Middle element of odd length
// palindromic string is not
// compared
if (lengthOdd)
i = i + 2;
while (i < n && s.size() > 0) {
if (s.top() == str[i])
s.pop();
else
break;
i = i + 2;
}
// If stack is empty
// then return true
if (s.size() == 0)
return true;
return false;
}
// Driver Code
int main()
{
int N = 10;
// Given string
string s = "aeafacafae";
if (isOddStringPalindrome(s, N))
cout << "Yes\n";
else
cout << "No\n";
return 0;
}
Java
// Java program for the above approach
import java.util.*;
class GFG{
// Function to check if String formed
// by odd indices is palindromic or not
static boolean isOddStringPalindrome(String str,
int n)
{
int oddStringSize = n / 2;
// Check if length of OddString
// odd, to consider edge case
boolean lengthOdd = ((oddStringSize % 2 == 1) ?
true : false);
Stack s = new Stack();
int i = 1;
int c = 0;
// Push odd index character of
// first half of str in stack
while (i < n && c < oddStringSize / 2)
{
s.add(str.charAt(i));
i += 2;
c++;
}
// Middle element of odd length
// palindromic String is not
// compared
if (lengthOdd)
i = i + 2;
while (i < n && s.size() > 0)
{
if (s.peek() == str.charAt(i))
s.pop();
else
break;
i = i + 2;
}
// If stack is empty
// then return true
if (s.size() == 0)
return true;
return false;
}
// Driver Code
public static void main(String[] args)
{
int N = 10;
// Given String
String s = "aeafacafae";
if (isOddStringPalindrome(s, N))
System.out.print("Yes\n");
else
System.out.print("No\n");
}
}
// This code is contributed by Rohit_ranjan
Python3
# Python3 program for the above approach
# Function to check if string formed
# by odd indices is palindromic or not
def isOddStringPalindrome(str, n):
oddStringSize = n // 2;
# Check if length of OddString
# odd, to consider edge case
lengthOdd = True if (oddStringSize % 2 == 1) else False
s = []
i = 1
c = 0
# Push odd index character of
# first half of str in stack
while (i < n and c < oddStringSize // 2):
s.append(str[i])
i += 2
c += 1
# Middle element of odd length
# palindromic string is not
# compared
if (lengthOdd):
i = i + 2
while (i < n and len(s) > 0):
if (s[len(s) - 1] == str[i]):
s.pop()
else:
break
i = i + 2
# If stack is empty
# then return true
if (len(s) == 0):
return True
return False;
# Driver code
if __name__=="__main__":
N = 10
# Given string
s = "aeafacafae"
if (isOddStringPalindrome(s, N)):
print("Yes")
else:
print("No")
# This code is contributed by rutvik_56
C#
// C# program for the above approach
using System;
using System.Collections.Generic;
class GFG{
// Function to check if String formed
// by odd indices is palindromic or not
static bool isOddStringPalindrome(String str,
int n)
{
int oddStringSize = n / 2;
// Check if length of OddString
// odd, to consider edge case
bool lengthOdd = ((oddStringSize % 2 == 1) ?
true : false);
Stack s = new Stack();
int i = 1;
int c = 0;
// Push odd index character of
// first half of str in stack
while (i < n && c < oddStringSize / 2)
{
s.Push(str[i]);
i += 2;
c++;
}
// Middle element of odd length
// palindromic String is not
// compared
if (lengthOdd)
i = i + 2;
while (i < n && s.Count > 0)
{
if (s.Peek() == str[i])
s.Pop();
else
break;
i = i + 2;
}
// If stack is empty
// then return true
if (s.Count == 0)
return true;
return false;
}
// Driver Code
public static void Main(String[] args)
{
int N = 10;
// Given String
String s = "aeafacafae";
if (isOddStringPalindrome(s, N))
Console.Write("Yes\n");
else
Console.Write("No\n");
}
}
// This code is contributed by Princi Singh
C++
// C++ program for the above approach
#include
using namespace std;
// Functions checks if characters at
// odd index of the string forms
// palindrome or not
bool isOddStringPalindrome(string str,
int n)
{
// Initialise two pointers
int left, right;
if (n % 2 == 0) {
left = 1;
right = n - 1;
}
else {
left = 1;
right = n - 2;
}
// Iterate till left <= right
while (left < n && right >= 0
&& left < right) {
// If there is a mismatch occurs
// then return false
if (str[left] != str[right])
return false;
// Increment and decrement the left
// and right pointer by 2
left += 2;
right -= 2;
}
return true;
}
// Driver Code
int main()
{
int n = 10;
// Given String
string s = "aeafacafae";
// Function Call
if (isOddStringPalindrome(s, n))
cout << "Yes\n";
else
cout << "No\n";
return 0;
}
Java
// Java program for the above approach
import java.util.*;
class GFG{
// Functions checks if characters at
// odd index of the String forms
// palindrome or not
static boolean isOddStringPalindrome(String str,
int n)
{
// Initialise two pointers
int left, right;
if (n % 2 == 0)
{
left = 1;
right = n - 1;
}
else
{
left = 1;
right = n - 2;
}
// Iterate till left <= right
while (left < n && right >= 0 &&
left < right)
{
// If there is a mismatch occurs
// then return false
if (str.charAt(left) !=
str.charAt(right))
return false;
// Increment and decrement the left
// and right pointer by 2
left += 2;
right -= 2;
}
return true;
}
// Driver Code
public static void main(String[] args)
{
int n = 10;
// Given String
String s = "aeafacafae";
// Function Call
if (isOddStringPalindrome(s, n))
System.out.print("Yes\n");
else
System.out.print("No\n");
}
}
// This code is contributed by Rohit_ranjan
Python3
# Python3 program for the above approach
# Functions checks if characters at
# odd index of the string forms
# palindrome or not
def isOddStringPalindrome(Str, n):
# Initialise two pointers
left, right = 0, 0
if (n % 2 == 0):
left = 1
right = n - 1
else:
left = 1
right = n - 2
# Iterate till left <= right
while (left < n and right >= 0 and
left < right):
# If there is a mismatch occurs
# then return false
if (Str[left] != Str[right]):
return False
# Increment and decrement the left
# and right pointer by 2
left += 2
right -= 2
return True
# Driver Code
if __name__ == '__main__':
n = 10
# Given string
Str = "aeafacafae"
# Function call
if (isOddStringPalindrome(Str, n)):
print("Yes")
else:
print("No")
# This code is contributed by himanshu77
C#
// C# program for the above approach
using System;
class GFG{
// Functions checks if characters at
// odd index of the String forms
// palindrome or not
static bool isOddStringPalindrome(String str,
int n)
{
// Initialise two pointers
int left, right;
if (n % 2 == 0)
{
left = 1;
right = n - 1;
}
else
{
left = 1;
right = n - 2;
}
// Iterate till left <= right
while (left < n && right >= 0 &&
left < right)
{
// If there is a mismatch occurs
// then return false
if (str[left] !=
str[right])
return false;
// Increment and decrement the left
// and right pointer by 2
left += 2;
right -= 2;
}
return true;
}
// Driver Code
public static void Main(String[] args)
{
int n = 10;
// Given String
String s = "aeafacafae";
// Function Call
if (isOddStringPalindrome(s, n))
Console.Write("Yes\n");
else
Console.Write("No\n");
}
}
// This code is contributed by Rohit_ranjan
Yes
时间复杂度: O(N)
空间复杂度: O(N)
高效方法2:可以在不使用额外空间的情况下解决上述幼稚方法。我们将使用两个指针技术,左和右分别从开头和结尾指向第一个奇数索引。步骤如下:
- 检查字符串的长度是奇数还是偶数。
- 如果长度为奇数,则初始化左= 1,右= N-2
- 否则,初始化左= 1,右= N-1
- 将左指针增加2个位置,将右指针减少2个位置。
- 继续比较指针指向的字符,直到左<=右。
- 如果未发生不匹配,则说明该字符串是回文,否则不是回文。
下面是上述方法的实现:
C++
// C++ program for the above approach
#include
using namespace std;
// Functions checks if characters at
// odd index of the string forms
// palindrome or not
bool isOddStringPalindrome(string str,
int n)
{
// Initialise two pointers
int left, right;
if (n % 2 == 0) {
left = 1;
right = n - 1;
}
else {
left = 1;
right = n - 2;
}
// Iterate till left <= right
while (left < n && right >= 0
&& left < right) {
// If there is a mismatch occurs
// then return false
if (str[left] != str[right])
return false;
// Increment and decrement the left
// and right pointer by 2
left += 2;
right -= 2;
}
return true;
}
// Driver Code
int main()
{
int n = 10;
// Given String
string s = "aeafacafae";
// Function Call
if (isOddStringPalindrome(s, n))
cout << "Yes\n";
else
cout << "No\n";
return 0;
}
Java
// Java program for the above approach
import java.util.*;
class GFG{
// Functions checks if characters at
// odd index of the String forms
// palindrome or not
static boolean isOddStringPalindrome(String str,
int n)
{
// Initialise two pointers
int left, right;
if (n % 2 == 0)
{
left = 1;
right = n - 1;
}
else
{
left = 1;
right = n - 2;
}
// Iterate till left <= right
while (left < n && right >= 0 &&
left < right)
{
// If there is a mismatch occurs
// then return false
if (str.charAt(left) !=
str.charAt(right))
return false;
// Increment and decrement the left
// and right pointer by 2
left += 2;
right -= 2;
}
return true;
}
// Driver Code
public static void main(String[] args)
{
int n = 10;
// Given String
String s = "aeafacafae";
// Function Call
if (isOddStringPalindrome(s, n))
System.out.print("Yes\n");
else
System.out.print("No\n");
}
}
// This code is contributed by Rohit_ranjan
Python3
# Python3 program for the above approach
# Functions checks if characters at
# odd index of the string forms
# palindrome or not
def isOddStringPalindrome(Str, n):
# Initialise two pointers
left, right = 0, 0
if (n % 2 == 0):
left = 1
right = n - 1
else:
left = 1
right = n - 2
# Iterate till left <= right
while (left < n and right >= 0 and
left < right):
# If there is a mismatch occurs
# then return false
if (Str[left] != Str[right]):
return False
# Increment and decrement the left
# and right pointer by 2
left += 2
right -= 2
return True
# Driver Code
if __name__ == '__main__':
n = 10
# Given string
Str = "aeafacafae"
# Function call
if (isOddStringPalindrome(Str, n)):
print("Yes")
else:
print("No")
# This code is contributed by himanshu77
C#
// C# program for the above approach
using System;
class GFG{
// Functions checks if characters at
// odd index of the String forms
// palindrome or not
static bool isOddStringPalindrome(String str,
int n)
{
// Initialise two pointers
int left, right;
if (n % 2 == 0)
{
left = 1;
right = n - 1;
}
else
{
left = 1;
right = n - 2;
}
// Iterate till left <= right
while (left < n && right >= 0 &&
left < right)
{
// If there is a mismatch occurs
// then return false
if (str[left] !=
str[right])
return false;
// Increment and decrement the left
// and right pointer by 2
left += 2;
right -= 2;
}
return true;
}
// Driver Code
public static void Main(String[] args)
{
int n = 10;
// Given String
String s = "aeafacafae";
// Function Call
if (isOddStringPalindrome(s, n))
Console.Write("Yes\n");
else
Console.Write("No\n");
}
}
// This code is contributed by Rohit_ranjan
Yes
时间复杂度: O(N)
空间复杂度: O(1)
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