Skip to content
Related Articles

Related Articles

Check if given Parentheses expression is balanced or not

View Discussion
Improve Article
Save Article
  • Difficulty Level : Easy
  • Last Updated : 08 Apr, 2022

Given a string str of length N, consisting of ‘(‘ and ‘)‘ only, the task is to check whether it is balanced or not.
Examples:
 

Input: str = “((()))()()” 
Output: Balanced
Input: str = “())((())” 
Output: Not Balanced 
 

Approach: 
 

  • Declare a Flag variable which denotes expression is balanced or not.
  • Initialise Flag variable with true and Count variable with 0.
  • Traverse through the given expression
    1. If we encounter an opening parentheses (, increase count by 1
    2. If we encounter a closing parentheses ), decrease count by 1
    3. If Count becomes negative at any point, then expression is said to be not balanced, 
      so mark Flag as false and break from loop.
  • After traversing the expression, if Count is not equal to 0, 
    it means the expression is not balanced so mark Flag as false.
  • Finally, if Flag is true, expression is balanced else not balanced.

Below is the implementation of the above approach:
 

C




// C program of the above approach
#include <stdbool.h>
#include <stdio.h>
 
// Function to check if
// parentheses are balanced
bool isBalanced(char exp[])
{
    // Initialising Variables
    bool flag = true;
    int count = 0;
 
    // Traversing the Expression
    for (int i = 0; exp[i] != '\0'; i++) {
 
        if (exp[i] == '(') {
            count++;
        }
        else {
            // It is a closing parenthesis
            count--;
        }
        if (count < 0) {
            // This means there are
            // more Closing parenthesis
            // than opening ones
            flag = false;
            break;
        }
    }
 
    // If count is not zero,
    // It means there are more
    // opening parenthesis
    if (count != 0) {
        flag = false;
    }
 
    return flag;
}
 
// Driver code
int main()
{
    char exp1[] = "((()))()()";
 
    if (isBalanced(exp1))
        printf("Balanced \n");
    else
        printf("Not Balanced \n");
 
    char exp2[] = "())((())";
 
    if (isBalanced(exp2))
        printf("Balanced \n");
    else
        printf("Not Balanced \n");
 
    return 0;
}

C++



// C++ program for the above approach.
 
#include <bits/stdc++.h>
using namespace std;
 
// Function to check
// if parentheses are balanced
bool isBalanced(string exp)
{
 
    // Initialising Variables
    bool flag = true;
    int count = 0;
 
    // Traversing the Expression
    for (int i = 0; i < exp.length(); i++) {
 
        if (exp[i] == '(') {
            count++;
        }
        else {
 
            // It is a closing parenthesis
            count--;
        }
        if (count < 0) {
 
            // This means there are
            // more Closing parenthesis
            // than opening ones
            flag = false;
            break;
        }
    }
 
    // If count is not zero,
    // It means there are
    // more opening parenthesis
    if (count != 0) {
        flag = false;
    }
 
    return flag;
}
 
// Driver code
int main()
{
    string exp1 = "((()))()()";
 
    if (isBalanced(exp1))
        cout << "Balanced \n";
    else
        cout << "Not Balanced \n";
 
    string exp2 = "())((())";
 
    if (isBalanced(exp2))
        cout << "Balanced \n";
    else
        cout << "Not Balanced \n";
 
    return 0;
}
Java



// Java program for the above approach.
class GFG{
 
// Function to check
// if parentheses are balanced
public static boolean isBalanced(String exp)
{
     
    // Initialising variables
    boolean flag = true;
    int count = 0;
     
    // Traversing the expression
    for(int i = 0; i < exp.length(); i++)
    {
        if (exp.charAt(i) == '(')
        {
            count++;
        }
        else
        {
             
            // It is a closing parenthesis
            count--;
        }
        if (count < 0)
        {
             
            // This means there are
            // more Closing parenthesis
            // than opening ones
            flag = false;
            break;
        }
    }
     
    // If count is not zero,
    // It means there are
    // more opening parenthesis
    if (count != 0)
    {
        flag = false;
    }
    return flag;
}
 
// Driver code
public static void main(String[] args)
{
    String exp1 = "((()))()()";
     
    if (isBalanced(exp1))
        System.out.println("Balanced");
    else
        System.out.println("Not Balanced");
     
    String exp2 = "())((())";
     
    if (isBalanced(exp2))
        System.out.println("Balanced");
    else
        System.out.println("Not Balanced");
}
}
 
// This code is contributed by divyeshrabadiya07
Python3



# Python3 program for the above approach
 
# Function to check if
# parenthesis are balanced
def isBalanced(exp):
 
    # Initialising Variables
    flag = True
    count = 0
 
    # Traversing the Expression
    for i in range(len(exp)):
        if (exp[i] == '('):
            count += 1
        else:
             
            # It is a closing parenthesis
            count -= 1
 
        if (count < 0):
 
            # This means there are
            # more closing parenthesis
            # than opening
            flag = False
            break
 
    # If count is not zero ,
    # it means there are more
    # opening parenthesis
    if (count != 0):
        flag = False
 
    return flag
 
# Driver code
if __name__ == '__main__':
     
 
    exp1 = "((()))()()"
 
    if (isBalanced(exp1)):
        print("Balanced")
    else:
        print("Not Balanced")
 
    exp2 = "())((())"
 
    if (isBalanced(exp2)):
        print("Balanced")
    else:
        print("Not Balanced")
 
# This code is contributed by himanshu77
C#



// C# program for the above approach.
using System;
 
class GFG{
 
// Function to check
// if parentheses are balanced
public static bool isBalanced(String exp)
{
     
    // Initialising variables
    bool flag = true;
    int count = 0;
     
    // Traversing the expression
    for(int i = 0; i < exp.Length; i++)
    {
        if (exp[i] == '(')
        {
            count++;
        }
        else
        {
             
            // It is a closing parenthesis
            count--;
        }
        if (count < 0)
        {
             
            // This means there are
            // more Closing parenthesis
            // than opening ones
            flag = false;
            break;
        }
    }
     
    // If count is not zero,
    // It means there are
    // more opening parenthesis
    if (count != 0)
    {
        flag = false;
    }
    return flag;
}
 
// Driver code
public static void Main(String[] args)
{
    String exp1 = "((()))()()";
     
    if (isBalanced(exp1))
        Console.WriteLine("Balanced");
    else
        Console.WriteLine("Not Balanced");
     
    String exp2 = "())((())";
     
    if (isBalanced(exp2))
        Console.WriteLine("Balanced");
    else
        Console.WriteLine("Not Balanced");
}
}
 
// This code is contributed by Amit Katiyar
Javascript



<script>
 
// JavaScript program for the above approach
 
// Function to check if
// parenthesis are balanced
function isBalanced(exp){
 
    // Initialising Variables
    let flag = true
    let count = 0
 
    // Traversing the Expression
    for(let i=0;i<exp.length;i++){
        if (exp[i] == '(')
            count += 1
        else
             
            // It is a closing parenthesis
            count -= 1
 
        if (count < 0){
 
            // This means there are
            // more closing parenthesis
            // than opening
            flag = false
            break
        }
    }
    // If count is not zero ,
    // it means there are more
    // opening parenthesis
    if (count != 0)
        flag = false
 
    return flag
}
 
// Driver code
     
let exp1 = "((()))()()"
 
if (isBalanced(exp1))
    document.write("Balanced","</br>")
else
    document.write("Not Balanced","</br>")
 
let exp2 = "())((())"
 
if (isBalanced(exp2))
    document.write("Balanced","</br>")
else
    document.write("Not Balanced","</br>")
 
// This code is contributed by shinjanpatra
 
</script>
Output: 
Balanced 
Not Balanced
 
Time complexity: O(N) 
Auxiliary Space: O(1)
 

My Personal Notes
arrow_drop_up
Next

Check for Balanced Brackets in an expression (well-formedness) using Stack
Recommended Articles
Page :
Count pairs of parentheses sequences such that parentheses are balanced
07, Jan 19
Check for balanced parentheses in an expression | O(1) space
29, May 18
Check for balanced parentheses in an expression | O(1) space | O(N^2) time complexity
03, May 19
Check for balanced parentheses in Python
18, Jan 19
Modify a numeric string to a balanced parentheses by replacements
30, Jul 21
Number of balanced parentheses substrings
18, Jul 19
Calculate score of a string consisting of balanced parentheses
19, Jan 21
Length of longest balanced parentheses prefix
08, Dec 17
Insert minimum parentheses to make string balanced
27, Apr 20
C++ Program To Check For Balanced Brackets In An Expression (Well-Formedness) Using Stack
12, Nov 21
C Program To Check For Balanced Brackets In An Expression (Well-Formedness) Using Stack
12, Nov 21
Java Program To Check For Balanced Brackets In An Expression (Well-Formedness) Using Stack
12, Nov 21
Python Program To Check For Balanced Brackets In An Expression (Well-Formedness) Using Stack
12, Nov 21
C# Program To Check For Balanced Brackets In An Expression (Well-Formedness) Using Stack
12, Nov 21
Javascript Program To Check For Balanced Brackets In An Expression (Well-Formedness) Using Stack
12, Nov 21
Check for Balanced Brackets in an expression (well-formedness) using Stack
12, Apr 10
Check if the Depth of Parentheses is correct in the given String
26, Feb 20
Minimum number of bracket reversals needed to make an expression balanced | Set - 2
05, Mar 19
Balanced expression with replacement
09, Apr 18
Minimum number of bracket reversals needed to make an expression balanced
27, Oct 15
Calculate score of parentheses from a given string
19, Feb 21
How to check string is alphanumeric or not using Regular Expression
30, Apr 20
How to check Aadhaar number is valid or not using Regular Expression
06, May 20
Check if an URL is valid or not using Regular Expression
07, Jul 20
Article Contributed By :
https://media.geeksforgeeks.org/auth/avatar.png
7maestro
@7maestro
Vote for difficulty
Current difficulty :
Easy





Improved By :
Article Tags :
Practice Tags :
Report Issue

We use cookies to ensure you have the best browsing experience on our website. By using our site, you
acknowledge that you have read and understood our
Cookie Policy &
        Privacy Policy

Lightbox

Start Your Coding Journey Now!