给定两个括号序列S1和S2,它们由’(’和’)’组成。任务是检查通过连接两个序列获得的字符串是否平衡。可以通过s1 + s2或s2 + s1进行串联。
例子:
Input: s1 = “)()(())))”, s2 = “(()(()(”
Output: Balanced
s2 + s1 = “(()(()()()(())))”, which
is a balanced parenthesis sequence.
Input: s1 = “(()))(“, s2 = “())())”
Output: Not balanced
s1 + s2 = “(()))(())())” –> Not balanced
s2 + s1 = “())())(()))(” –> Not balanced
一个幼稚的解决方案是先连接两个序列,然后检查结果序列是否平衡或不使用堆栈。首先,检查s1 + s2是否平衡。如果不是,则检查s2 + s1是否平衡。要检查给定的括号序列是否平衡,或者不使用堆栈,可以使用以下算法。
- 声明一个字符堆栈S。
- 现在遍历表达式字符串exp。
- 如果当前字符是起始括号(’(’或'{‘或'[‘),则将其压入堆栈。
- 如果当前字符是右括号(’)’或’}’或’]’),则从堆栈中弹出;如果弹出的字符是匹配的起始括号,则否则括号不平衡。
- 完全遍历后,如果堆栈中还有一些起始括号,则“不平衡”。
下面是上述方法的实现:
C++
// CPP program to check if sequence obtained
// by concatenating two bracket sequences
// is balanced or not.
#include
using namespace std;
// Check if given string is balanced bracket
// sequence or not.
bool isBalanced(string s)
{
stack st;
int n = s.length();
for (int i = 0; i < n; i++) {
// If current bracket is an opening
// bracket push it to stack.
if (s[i] == '(')
st.push(s[i]);
// If current bracket is a closing
// bracket then pop from stack if
// it is not empty. If stack is empty
// then sequence is not balanced.
else {
if (st.empty()) {
return false;
}
else
st.pop();
}
}
// If stack is not empty, then sequence
// is not balanced.
if (!st.empty())
return false;
return true;
}
// Function to check if string obtained by
// concatenating two bracket sequences is
// balanced or not.
bool isBalancedSeq(string s1, string s2)
{
// Check if s1 + s2 is balanced or not.
if (isBalanced(s1 + s2))
return true;
// Check if s2 + s1 is balanced or not.
return isBalanced(s2 + s1);
}
// Driver code.
int main()
{
string s1 = ")()(())))";
string s2 = "(()(()(";
if (isBalancedSeq(s1, s2))
cout << "Balanced";
else
cout << "Not Balanced";
return 0;
}
Java
// Java program to check if sequence obtained
// by concatenating two bracket sequences
// is balanced or not.
import java.util.Stack;
class GFG
{
// Check if given string is balanced bracket
// sequence or not.
static boolean isBalanced(String s)
{
Stack st = new Stack();
int n = s.length();
for (int i = 0; i < n; i++)
{
// If current bracket is an opening
// bracket push it to stack.
if (s.charAt(i) == '(')
{
st.push(s.charAt(i));
}
// If current bracket is a closing
// bracket then pop from stack if
// it is not empty. If stack is empty
// then sequence is not balanced.
else if (st.empty())
{
return false;
}
else
{
st.pop();
}
}
// If stack is not empty, then sequence
// is not balanced.
if (!st.empty())
{
return false;
}
return true;
}
// Function to check if string obtained by
// concatenating two bracket sequences is
// balanced or not.
static boolean isBalancedSeq(String s1, String s2)
{
// Check if s1 + s2 is balanced or not.
if (isBalanced(s1 + s2))
{
return true;
}
// Check if s2 + s1 is balanced or not.
return isBalanced(s2 + s1);
}
// Driver code.
public static void main(String[] args)
{
String s1 = ")()(())))";
String s2 = "(()(()(";
if (isBalancedSeq(s1, s2))
{
System.out.println("Balanced");
}
else
{
System.out.println("Not Balanced");
}
}
}
// This code is contributed by Rajput-Ji
Python3
# Python3 program to check if sequence obtained
# by concatenating two bracket sequences
# is balanced or not.
# Check if given string is balanced bracket
# sequence or not.
def isBalanced(s):
st = list()
n = len(s)
for i in range(n):
# If current bracket is an opening
# bracket push it to stack.
if s[i] == '(':
st.append(s[i])
# If current bracket is a closing
# bracket then pop from stack if
# it is not empty. If stack is empty
# then sequence is not balanced.
else:
if len(st) == 0:
return False
else:
st.pop()
# If stack is not empty, then sequence
# is not balanced.
if len(st) > 0:
return False
return True
# Function to check if string obtained by
# concatenating two bracket sequences is
# balanced or not.
def isBalancedSeq(s1, s2):
# Check if s1 + s2 is balanced or not.
if (isBalanced(s1 + s2)):
return True
# Check if s2 + s1 is balanced or not.
return isBalanced(s2 + s1)
# Driver Code
if __name__ == "__main__":
s1 = ")()(())))"
s2 = "(()(()("
if isBalancedSeq(s1, s2):
print("Balanced")
else:
print("Not Balanced")
# This code is conributed by
# sanjeev2552
C#
// C# program to check if sequence obtained
// by concatenating two bracket sequences
// is balanced or not.
using System;
using System.Collections.Generic;
class GFG
{
// Check if given string is balanced bracket
// sequence or not.
static bool isBalanced(String s)
{
Stack st = new Stack();
int n = s.Length;
for (int i = 0; i < n; i++)
{
// If current bracket is an opening
// bracket push it to stack.
if (s[i] == '(')
{
st.Push(s[i]);
}
// If current bracket is a closing
// bracket then pop from stack if
// it is not empty. If stack is empty
// then sequence is not balanced.
else if (st.Count==0)
{
return false;
}
else
{
st.Pop();
}
}
// If stack is not empty, then sequence
// is not balanced.
if (st.Count!=0)
{
return false;
}
return true;
}
// Function to check if string obtained by
// concatenating two bracket sequences is
// balanced or not.
static bool isBalancedSeq(String s1, String s2)
{
// Check if s1 + s2 is balanced or not.
if (isBalanced(s1 + s2))
{
return true;
}
// Check if s2 + s1 is balanced or not.
return isBalanced(s2 + s1);
}
// Driver code.
public static void Main(String[] args)
{
String s1 = ")()(())))";
String s2 = "(()(()(";
if (isBalancedSeq(s1, s2))
{
Console.WriteLine("Balanced");
}
else
{
Console.WriteLine("Not Balanced");
}
}
}
// This code has been contributed by 29AjayKumar
Javascript
C++
// C++ program to check if sequence obtained
// by concatenating two bracket sequences
// is balanced or not.
#include
using namespace std;
// Check if given string is balanced bracket
// sequence or not.
bool isBalanced(string s)
{
// To store result of comparison of
// count of opening brackets and
// closing brackets.
int cnt = 0;
int n = s.length();
for (int i = 0; i < n; i++) {
// If current bracket is an
// opening bracket, then
// increment count.
if (s[i] == '(')
cnt++;
// If current bracket is a
// closing bracket, then
// decrement count and check
// if count is negative.
else {
cnt--;
if (cnt < 0)
return false;
}
}
// If count is positive then
// some opening brackets are
// not balanced.
if (cnt > 0)
return false;
return true;
}
// Function to check if string obtained by
// concatenating two bracket sequences is
// balanced or not.
bool isBalancedSeq(string s1, string s2)
{
// Check if s1 + s2 is balanced or not.
if (isBalanced(s1 + s2))
return true;
// Check if s2 + s1 is balanced or not.
return isBalanced(s2 + s1);
}
// Driver code.
int main()
{
string s1 = ")()(())))";
string s2 = "(()(()(";
if (isBalancedSeq(s1, s2))
cout << "Balanced";
else
cout << "Not Balanced";
return 0;
}
Java
// Java program to check if
// sequence obtained by
// concatenating two bracket
// sequences is balanced or not.
import java.io.*;
class GFG
{
// Check if given string
// is balanced bracket
// sequence or not.
static boolean isBalanced(String s)
{
// To store result of comparison
// of count of opening brackets
// and closing brackets.
int cnt = 0;
int n = s.length();
for (int i = 0; i < n; i++)
{
// If current bracket is
// an opening bracket,
// then increment count.
if (s.charAt(i) =='(')
{
cnt = cnt + 1;
}
// If current bracket is a
// closing bracket, then
// decrement count and check
// if count is negative.
else
{
cnt = cnt - 1;
if (cnt < 0)
return false;
}
}
// If count is positive then
// some opening brackets are
// not balanced.
if (cnt > 0)
return false;
return true;
}
// Function to check if string
// obtained by concatenating
// two bracket sequences is
// balanced or not.
static boolean isBalancedSeq(String s1,
String s2)
{
// Check if s1 + s2 is
// balanced or not.
if (isBalanced(s1 + s2))
return true;
// Check if s2 + s1 is
// balanced or not.
return isBalanced(s2 + s1);
}
// Driver code
public static void main(String [] args)
{
String s1 = ")()(())))";
String s2 = "(()(()(";
if (isBalancedSeq(s1, s2))
{
System.out.println("Balanced");
}
else
{
System.out.println("Not Balanced");
}
}
}
// This code is contributed
// by Shivi_Aggarwal
Python3
# Python3 program to check
# if sequence obtained by
# concatenating two bracket
# sequences is balanced or not.
# Check if given string
# is balanced bracket
# sequence or not.
def isBalanced(s):
# To store result of
# comparison of count
# of opening brackets
# and closing brackets.
cnt = 0
n = len(s)
for i in range(0, n):
if (s[i] == '('):
cnt = cnt + 1
else :
cnt = cnt - 1
if (cnt < 0):
return False
if (cnt > 0):
return False
return True
def isBalancedSeq(s1, s2):
if (isBalanced(s1 + s2)):
return True
return isBalanced(s2 + s1)
# Driver code
a = ")()(())))";
b = "(()(()(";
if (isBalancedSeq(a, b)):
print("Balanced")
else:
print("Not Balanced")
# This code is contributed
# by Shivi_Aggarwal
C#
// C# program to check if
// sequence obtained by
// concatenating two bracket
// sequences is balanced or not.
using System;
class GFG
{
// Check if given string
// is balanced bracket
// sequence or not.
static bool isBalanced(String s)
{
// To store result of comparison
// of count of opening brackets
// and closing brackets.
int cnt = 0;
int n = s.Length;
for (int i = 0; i < n; i++)
{
// If current bracket is
// an opening bracket,
// then increment count.
if (s[i] =='(')
{
cnt = cnt + 1;
}
// If current bracket is a
// closing bracket, then
// decrement count and check
// if count is negative.
else
{
cnt = cnt - 1;
if (cnt < 0)
return false;
}
}
// If count is positive then
// some opening brackets are
// not balanced.
if (cnt > 0)
return false;
return true;
}
// Function to check if string
// obtained by concatenating
// two bracket sequences is
// balanced or not.
static bool isBalancedSeq(String s1,
String s2)
{
// Check if s1 + s2 is
// balanced or not.
if (isBalanced(s1 + s2))
return true;
// Check if s2 + s1 is
// balanced or not.
return isBalanced(s2 + s1);
}
// Driver code
public static void Main()
{
String s1 = ")()(())))";
String s2 = "(()(()(";
if (isBalancedSeq(s1, s2))
{
Console.WriteLine("Balanced");
}
else
{
Console.WriteLine("Not Balanced");
}
}
}
// This code is contributed by
// PrinciRaj1992
PHP
0)
return false;
return true;
}
// Function to check if string obtained by
// concatenating two bracket sequences is
// balanced or not.
function isBalancedSeq($s1, $s2)
{
// Check if s1 + s2 is balanced or not.
if (isBalanced($s1 + $s2))
return true;
// Check if s2 + s1 is balanced or not.
return isBalanced($s2 + $s1);
}
// Driver code.
$s1 = ")()(())))";
$s2 = "(()(()(";
if (!isBalancedSeq($s1, $s2))
echo "Balanced";
else
echo "Not Balanced";
// This code is contributed by ajit.
?>
Javascript
Balanced
时间复杂度: O(n)
辅助空间: O(n)
一个有效的解决方案是检查给定的序列是否可以在不使用堆栈的情况下(即在恒定的额外空间中)产生平衡的括号序列。
令串联的序列为s。有两种可能性:s = s1 + s2是平衡的,或者s = s2 + s1是平衡的。检查这两种可能性是否s是平衡的。
- 如果s是平衡的,则在横穿s的任何时刻,s中的左括号的数量应始终大于或等于S中的右括号的数量。这是因为,如果在任何时刻s中的闭合括号数大于打开括号的数目,那么最后一个闭合括号在s中将没有匹配的打开括号(这就是为什么计数更多)。
- 如果序列是平衡的,则在遍历结束时,s中的右括号的数量等于s中的右括号的数量。
下面是上述方法的实现:
C++
// C++ program to check if sequence obtained
// by concatenating two bracket sequences
// is balanced or not.
#include
using namespace std;
// Check if given string is balanced bracket
// sequence or not.
bool isBalanced(string s)
{
// To store result of comparison of
// count of opening brackets and
// closing brackets.
int cnt = 0;
int n = s.length();
for (int i = 0; i < n; i++) {
// If current bracket is an
// opening bracket, then
// increment count.
if (s[i] == '(')
cnt++;
// If current bracket is a
// closing bracket, then
// decrement count and check
// if count is negative.
else {
cnt--;
if (cnt < 0)
return false;
}
}
// If count is positive then
// some opening brackets are
// not balanced.
if (cnt > 0)
return false;
return true;
}
// Function to check if string obtained by
// concatenating two bracket sequences is
// balanced or not.
bool isBalancedSeq(string s1, string s2)
{
// Check if s1 + s2 is balanced or not.
if (isBalanced(s1 + s2))
return true;
// Check if s2 + s1 is balanced or not.
return isBalanced(s2 + s1);
}
// Driver code.
int main()
{
string s1 = ")()(())))";
string s2 = "(()(()(";
if (isBalancedSeq(s1, s2))
cout << "Balanced";
else
cout << "Not Balanced";
return 0;
}
Java
// Java program to check if
// sequence obtained by
// concatenating two bracket
// sequences is balanced or not.
import java.io.*;
class GFG
{
// Check if given string
// is balanced bracket
// sequence or not.
static boolean isBalanced(String s)
{
// To store result of comparison
// of count of opening brackets
// and closing brackets.
int cnt = 0;
int n = s.length();
for (int i = 0; i < n; i++)
{
// If current bracket is
// an opening bracket,
// then increment count.
if (s.charAt(i) =='(')
{
cnt = cnt + 1;
}
// If current bracket is a
// closing bracket, then
// decrement count and check
// if count is negative.
else
{
cnt = cnt - 1;
if (cnt < 0)
return false;
}
}
// If count is positive then
// some opening brackets are
// not balanced.
if (cnt > 0)
return false;
return true;
}
// Function to check if string
// obtained by concatenating
// two bracket sequences is
// balanced or not.
static boolean isBalancedSeq(String s1,
String s2)
{
// Check if s1 + s2 is
// balanced or not.
if (isBalanced(s1 + s2))
return true;
// Check if s2 + s1 is
// balanced or not.
return isBalanced(s2 + s1);
}
// Driver code
public static void main(String [] args)
{
String s1 = ")()(())))";
String s2 = "(()(()(";
if (isBalancedSeq(s1, s2))
{
System.out.println("Balanced");
}
else
{
System.out.println("Not Balanced");
}
}
}
// This code is contributed
// by Shivi_Aggarwal
Python3
# Python3 program to check
# if sequence obtained by
# concatenating two bracket
# sequences is balanced or not.
# Check if given string
# is balanced bracket
# sequence or not.
def isBalanced(s):
# To store result of
# comparison of count
# of opening brackets
# and closing brackets.
cnt = 0
n = len(s)
for i in range(0, n):
if (s[i] == '('):
cnt = cnt + 1
else :
cnt = cnt - 1
if (cnt < 0):
return False
if (cnt > 0):
return False
return True
def isBalancedSeq(s1, s2):
if (isBalanced(s1 + s2)):
return True
return isBalanced(s2 + s1)
# Driver code
a = ")()(())))";
b = "(()(()(";
if (isBalancedSeq(a, b)):
print("Balanced")
else:
print("Not Balanced")
# This code is contributed
# by Shivi_Aggarwal
C#
// C# program to check if
// sequence obtained by
// concatenating two bracket
// sequences is balanced or not.
using System;
class GFG
{
// Check if given string
// is balanced bracket
// sequence or not.
static bool isBalanced(String s)
{
// To store result of comparison
// of count of opening brackets
// and closing brackets.
int cnt = 0;
int n = s.Length;
for (int i = 0; i < n; i++)
{
// If current bracket is
// an opening bracket,
// then increment count.
if (s[i] =='(')
{
cnt = cnt + 1;
}
// If current bracket is a
// closing bracket, then
// decrement count and check
// if count is negative.
else
{
cnt = cnt - 1;
if (cnt < 0)
return false;
}
}
// If count is positive then
// some opening brackets are
// not balanced.
if (cnt > 0)
return false;
return true;
}
// Function to check if string
// obtained by concatenating
// two bracket sequences is
// balanced or not.
static bool isBalancedSeq(String s1,
String s2)
{
// Check if s1 + s2 is
// balanced or not.
if (isBalanced(s1 + s2))
return true;
// Check if s2 + s1 is
// balanced or not.
return isBalanced(s2 + s1);
}
// Driver code
public static void Main()
{
String s1 = ")()(())))";
String s2 = "(()(()(";
if (isBalancedSeq(s1, s2))
{
Console.WriteLine("Balanced");
}
else
{
Console.WriteLine("Not Balanced");
}
}
}
// This code is contributed by
// PrinciRaj1992
的PHP
0)
return false;
return true;
}
// Function to check if string obtained by
// concatenating two bracket sequences is
// balanced or not.
function isBalancedSeq($s1, $s2)
{
// Check if s1 + s2 is balanced or not.
if (isBalanced($s1 + $s2))
return true;
// Check if s2 + s1 is balanced or not.
return isBalanced($s2 + $s1);
}
// Driver code.
$s1 = ")()(())))";
$s2 = "(()(()(";
if (!isBalancedSeq($s1, $s2))
echo "Balanced";
else
echo "Not Balanced";
// This code is contributed by ajit.
?>
Java脚本
Balanced
时间复杂度: O(n)
辅助空间: O(1)
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