给定两个长度分别为N和M 的字符串S1和S2 ,任务是找到字符串S2需要连接的次数的最大值,使其成为字符串S1的子字符串。
例子:
Input: S1 = “ababc”, S2 = “ab”
Output: 2
Explanation: After concatenating S2 exactly twice, the string modifies to “abab”. Therefore, string “abab” is a substring of “ababc”. Therefore, the result is 2.
Input: S1 = “ababc”, S2 = “ba”
Output: 1
Explanation: String “ba” is already a substring of “ababc”. Therefore, the result is 1.
方法:解决给定的问题,思想使用KMP算法。请按照以下步骤解决问题:
- 初始化一个变量,比如ans ,以存储最大值K ,这样连接S2 K次形成字符串S1的子字符串。
- 初始化一个字符串curWord并将S2的内容复制到curWord 中。
- 将字符串可以出现的最大次数存储为numWords = N / M 。
- 在索引[0, numWords – 1] 上遍历字符串并执行以下步骤:
- 如果在字符串S1 中找到curWord的值,则将ans增加 1 并将curWord与单词连接起来。
- 否则,跳出循环。
- 经过以上步骤,打印ans的值作为结果。
下面是上述方法的实现:
C++
// C++ program for the above approach
#include
using namespace std;
// Function to find lps[] for given
// pattern pat[0..M-1]
void computeLPSArray(string pat, int M,
int* lps)
{
// Length of the previous
// longest prefix suffix
int len = 0;
// lps[0] is always 0
lps[0] = 0;
// Iterate string to calculate lps[i]
int i = 1;
while (i < M) {
// If the current character
// of the pattern matches
if (pat[i] == pat[len]) {
len++;
lps[i] = len;
i++;
}
// Otherwise
else {
if (len != 0) {
len = lps[len - 1];
}
// Otherwise
else {
lps[i] = 0;
i++;
}
}
}
}
// Function to implement KMP algorithm
int KMPSearch(string pat, string txt)
{
int M = pat.size();
int N = txt.size();
// Stores the longest prefix and
// suffix values for pattern
int lps[M];
// Preprocess the pattern and
// find the lps[] array
computeLPSArray(pat, M, lps);
// Index for txt[]
int i = 0;
// Index for pat[]
int j = 0;
while (i < N) {
if (pat[j] == txt[i]) {
j++;
i++;
}
// If pattern is found return 1
if (j == M) {
return 1;
j = lps[j - 1];
}
// Mismatch after j matches
else if (i < N
&& pat[j] != txt[i]) {
// Don't match lps[0, lps[j - 1]]
// characters they will
// match anyway
if (j != 0)
j = lps[j - 1];
else
i = i + 1;
}
}
// Return 0 if the pattern is not found
return 0;
}
// Function to find the maximum value
// K for which string S2 concatenated
// K times is a substring of string S1
void maxRepeating(string seq, string word)
{
// Store the required maximum number
int resCount = 0;
// Create a temporary string to store
// string word
string curWord = word;
// Store the maximum number of times
// string S2 can occur in string S1
int numWords = seq.length() / word.length();
// Traverse in range[0, numWords-1]
for (int i = 0; i < numWords; i++) {
// If curWord is found in sequence
if (KMPSearch(curWord, seq)) {
// Concatenate word to curWord
curWord += word;
// Increment resCount by 1
resCount++;
}
// Otherwise break the loop
else
break;
}
// Print the answer
cout << resCount;
}
// Driver Code
int main()
{
string S1 = "ababc", S2 = "ab";
// Function Call
maxRepeating(S1, S2);
return 0;
}
Java
// Java program for the above approach
class GFG
{
// Function to find lps[] for given
// pattern pat[0..M-1]
static void computeLPSArray(String pat, int M,
int []lps)
{
// Length of the previous
// longest prefix suffix
int len = 0;
// lps[0] is always 0
lps[0] = 0;
// Iterate string to calculate lps[i]
int i = 1;
while (i < M)
{
// If the current character
// of the pattern matches
if (pat.charAt(i) == pat.charAt(len))
{
len++;
lps[i] = len;
i++;
}
// Otherwise
else
{
if (len != 0)
{
len = lps[len - 1];
}
// Otherwise
else
{
lps[i] = 0;
i++;
}
}
}
}
// Function to implement KMP algorithm
static int KMPSearch(String pat, String txt)
{
int M = pat.length();
int N = txt.length();
// Stores the longest prefix and
// suffix values for pattern
int lps[] = new int[M];
// Preprocess the pattern and
// find the lps[] array
computeLPSArray(pat, M, lps);
// Index for txt[]
int i = 0;
// Index for pat[]
int j = 0;
while (i < N)
{
if (pat.charAt(j) == txt.charAt(i))
{
j++;
i++;
}
// If pattern is found return 1
if (j == M)
{
return 1;
//j = lps[j - 1];
}
// Mismatch after j matches
else if (i < N
&& pat.charAt(j) != txt.charAt(i))
{
// Don't match lps[0, lps[j - 1]]
// characters they will
// match anyway
if (j != 0)
j = lps[j - 1];
else
i = i + 1;
}
}
// Return 0 if the pattern is not found
return 0;
}
// Function to find the maximum value
// K for which string S2 concatenated
// K times is a substring of string S1
static void maxRepeating(String seq, String word)
{
// Store the required maximum number
int resCount = 0;
// Create a temporary string to store
// string word
String curWord = word;
// Store the maximum number of times
// string S2 can occur in string S1
int numWords = seq.length() / word.length();
// Traverse in range[0, numWords-1]
for (int i = 0; i < numWords; i++)
{
// If curWord is found in sequence
if (KMPSearch(curWord, seq) == 1)
{
// Concatenate word to curWord
curWord += word;
// Increment resCount by 1
resCount++;
}
// Otherwise break the loop
else
break;
}
// Print the answer
System.out.print(resCount);
}
// Driver Code
public static void main (String[] args)
{
String S1 = "ababc", S2 = "ab";
// Function Call
maxRepeating(S1, S2);
}
}
// This code is contributed by AnkThon
Python3
# Python3 program for the above approach
# Function to find lps[] for given
# pattern pat[0..M-1]
def computeLPSArray(pat, M, lps):
# Length of the previous
# longest prefix suffix
lenn = 0
# lps[0] is always 0
lps[0] = 0
# Iterate string to calculate lps[i]
i = 1
while (i < M):
# If the current character
# of the pattern matches
if (pat[i] == pat[lenn]):
lenn += 1
lps[i] = lenn
i += 1
# Otherwise
else:
if (lenn != 0):
lenn = lps[lenn - 1]
# Otherwise
else:
lps[i] = 0
i += 1
# Function to implement KMP algorithm
def KMPSearch(pat, txt):
M = len(pat)
N = len(txt)
# Stores the longest prefix and
# suffix values for pattern
lps = [0 for i in range(M)]
# Preprocess the pattern and
# find the lps[] array
computeLPSArray(pat, M, lps)
# Index for txt[]
i = 0
# Index for pat[]
j = 0
while (i < N):
if (pat[j] == txt[i]):
j += 1
i += 1
# If pattern is found return 1
if (j == M):
return 1
j = lps[j - 1]
# Mismatch after j matches
elif (i < N and pat[j] != txt[i]):
# Don't match lps[0, lps[j - 1]]
# characters they will
# match anyway
if (j != 0):
j = lps[j - 1]
else:
i = i + 1
# Return 0 if the pattern is not found
return 0
# Function to find the maximum value
# K for which S2 concatenated
# K times is a subof S1
def maxRepeating(seq, word):
# Store the required maximum number
resCount = 0
# Create a temporary to store
# word
curWord = word
# Store the maximum number of times
# S2 can occur in S1
numWords = len(seq) // len(word)
# Traverse in range[0, numWords-1]
for i in range(numWords):
# If curWord is found in sequence
if (KMPSearch(curWord, seq)):
# Concatenate word to curWord
curWord += word
# Increment resCount by 1
resCount += 1
# Otherwise break the loop
else:
break
# Print the answer
print(resCount)
# Driver Code
if __name__ == '__main__':
S1,S2 = "ababc","ab"
# Function Call
maxRepeating(S1, S2)
# This code is contributed by mohit kumar 29
C#
// C# program for the above approach
using System;
class GFG
{
// Function to find lps[] for given
// pattern pat[0..M-1]
static void computeLPSArray(String pat, int M,
int []lps)
{
// Length of the previous
// longest prefix suffix
int len = 0;
// lps[0] is always 0
lps[0] = 0;
// Iterate string to calculate lps[i]
int i = 1;
while (i < M)
{
// If the current character
// of the pattern matches
if (pat[i] == pat[len])
{
len++;
lps[i] = len;
i++;
}
// Otherwise
else
{
if (len != 0)
{
len = lps[len - 1];
}
// Otherwise
else
{
lps[i] = 0;
i++;
}
}
}
}
// Function to implement KMP algorithm
static int KMPSearch(String pat, String txt)
{
int M = pat.Length;
int N = txt.Length;
// Stores the longest prefix and
// suffix values for pattern
int []lps = new int[M];
// Preprocess the pattern and
// find the lps[] array
computeLPSArray(pat, M, lps);
// Index for txt[]
int i = 0;
// Index for pat[]
int j = 0;
while (i < N)
{
if (pat[j] == txt[i])
{
j++;
i++;
}
// If pattern is found return 1
if (j == M)
{
return 1;
//j = lps[j - 1];
}
// Mismatch after j matches
else if (i < N
&& pat[j] != txt[i])
{
// Don't match lps[0, lps[j - 1]]
// characters they will
// match anyway
if (j != 0)
j = lps[j - 1];
else
i = i + 1;
}
}
// Return 0 if the pattern is not found
return 0;
}
// Function to find the maximum value
// K for which string S2 concatenated
// K times is a substring of string S1
static void maxRepeating(String seq, String word)
{
// Store the required maximum number
int resCount = 0;
// Create a temporary string to store
// string word
String curWord = word;
// Store the maximum number of times
// string S2 can occur in string S1
int numWords = seq.Length / word.Length;
// Traverse in range[0, numWords-1]
for (int i = 0; i < numWords; i++)
{
// If curWord is found in sequence
if (KMPSearch(curWord, seq) == 1)
{
// Concatenate word to curWord
curWord += word;
// Increment resCount by 1
resCount++;
}
// Otherwise break the loop
else
break;
}
// Print the answer
Console.Write(resCount);
}
// Driver Code
public static void Main(String[] args)
{
String S1 = "ababc", S2 = "ab";
// Function Call
maxRepeating(S1, S2);
}
}
// This code is contributed by 29AjayKumar
Javascript
输出:
2
时间复杂度: O(N 2 )
辅助空间: O(M)
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