Solved Check Balanced String with Java

🚀 Day 60/100 📌 Problem: String to Integer Given a string, convert it into a 32-bit signed integer while: • Ignoring leading whitespaces • Handling '+' and '-' signs • Reading digits until a non-digit appears • Returning INT_MAX or INT_MIN in case of overflow 💡 What I Learned: • Importance of handling edge cases • How to safely manage overflow • Writing clean and efficient parsing logic ⚡ Result: Runtime 1 ms (Beats 100%) Consistency + Practice = Improvement 📈 #Day60 #Java #DSA #LeetCode #CodingJourney #ProblemSolving #100DaysOfCode #LearnToCode

🚀 Day 61/100 Today’s problem: Check Balanced String 📌 Problem Summary: A string is called balanced if the sum of digits at even indices is equal to the sum at odd indices. 💡 What I learned: - How to handle index-based logic - Difference between even & odd indexing - Clean iteration and condition checking 🧠 Approach: - Traverse the string - Maintain two sums → even index & odd index - Compare both sums ⚡ Time Complexity: O(n) ⚡ Space Complexity: O(1) Consistency is the key — small steps every day lead to big results 💪 #Day61 #CodingJourney #Java #DSA #ProblemSolving #Consistency #KeepLearning #100DaysOfCode

🚀 Day 64/100 Today’s problem: Find all strings that are substrings of another word 🧠 What I learned: - How to compare strings using nested loops - Using ".contains()" to check substrings efficiently - Importance of breaking early to optimize performance - Strengthening problem-solving with brute-force approach 💡 Key Insight: Sometimes simple solutions (O(n²)) are enough when constraints are small. No need to overcomplicate! 🔁 Consistency > Perfection #Day64 #DSA #Java #CodingJourney #Consistency #KeepLearning #100DaysOfCode

𝐃𝐚𝐲 87/100 – 𝐋𝐞𝐞𝐭𝐂𝐨𝐝𝐞 𝐂𝐡𝐚𝐥𝐥𝐞𝐧𝐠𝐞 🚀 Problem: 228. 𝐒𝐮𝐦𝐦𝐚𝐫𝐲 𝐑𝐚𝐧𝐠𝐞𝐬  Today I solved a problem where we need to summarize consecutive numbers in a sorted unique array into ranges. 🔑 𝐈𝐝𝐞𝐚: Traverse the array and keep extending the range while consecutive numbers continue. Once the sequence breaks, close the range and store it. 💡 𝐀𝐩𝐩𝐫𝐨𝐚𝐜𝐡: Start with the first element as start Move forward while nums[i] + 1 == nums[i+1] If range exists → "start->end" Else → single number "start" 𝐊𝐞𝐲 𝐈𝐧𝐬𝐢𝐠𝐡𝐭: Efficient single pass solution (O(n)) by grouping consecutive elements on the fly. #LeetCode #Java #ProblemSolving #DSA #100DaysOfCode #CodingJourney

Today I solved Two Sum (LeetCode #1 - Easy) 💡 🔍 Problem: Find two indices such that their values add up to the target. 🧠 Approach I used: HashMap Instead of checking every pair (O(n²)), I used a HashMap to optimize the solution. 👉 Steps: Calculate complement = target - current element Check if complement exists in the map If yes → return indices ✅ If no → store the element in the map ⚡ Time Complexity: O(n) ⚡ Space Complexity: O(n) 💡 This problem helped me understand how using extra space can reduce time complexity. 📌 Key Learning: “Optimize brute force by using HashMap for faster lookups.” #DSA #Java #LeetCode #CodingJourney #ProblemSolving #100DaysOfCode

Day 25/100: Finding the "Gap" 🎯 Today's challenge: Search Insert Position. We all know Binary Search finds an element in O(log n), but what if the element isn't there? I learned that by the end of the search, the `left` pointer doesn't just give up—it points exactly to where that missing number *should* be inserted to keep the array sorted. It’s a powerful way to handle dynamic data without breaking the order. Quarter of the way through the challenge! 🚀 #100DaysOfCode #Java #DSA #BinarySearch #ProblemSolving #Unit3 #Day25 #LearnInPublic

----Keeping the momentum going.---- Solved: * Length of Last Word (LeetCode 58) * Approach: Traversed the string from the end, skipped trailing spaces, and counted characters of the last word. * Key Learning: Simple problems reinforce strong fundamentals like string traversal and edge case handling. #LeetCode #DSA #Java #ProblemSolving

🚀 Day 27/100 Days of Code Challenge Today’s problem: Find Peak Element (Leetcode 162) 🔍 What I learned: How to find a peak element efficiently without scanning the entire array Using Binary Search to reduce time complexity from O(n) to O(log n) Understanding how the “slope” of elements helps decide the search direction 🧠 Key Idea: Instead of checking every element, compare the middle element with its neighbor: If nums[mid] < nums[mid + 1] → move right Else → move left ✅ Example: Input: [1, 2, 3, 1] Output: 2 (index of peak element 3) Consistency is key 🔑 — improving problem-solving skills one day at a time! 💪 #Day27 #100DaysOfCode #LeetCode #BinarySearch #DSA #Java #CodingJourney

🚀 Day 46/100 Today I worked on an interesting problem: Shuffle String 💡 Problem Understanding: Given a string and an indices array, the task is to rearrange the characters so that each character moves to its specified position, forming a new string. 🧠 Approach: Used a simple mapping idea — place each character directly at its correct index. ✨ Key Learnings: - Mapping-based problems become easy with a clear approach - Direct placement helps keep the solution efficient - Avoiding unnecessary loops improves performance 📈 Learning something new every day and getting better step by step! #Day46 #DSA #CodingJourney #ProblemSolving #Java #100DaysOfCode

🚀 Day 67 of #LeetCode Challenge ✅ Problem Solved: Check If Two String Arrays are Equivalent 💡 What I learned today: • Learned how to compare two string arrays without joining them • Understood how to traverse multiple strings using pointers • Improved handling of indices across arrays and strings • Realized the importance of edge cases to avoid runtime errors 🧠 Approach: • Used four pointers to track positions in both arrays and strings • Compared characters one by one • Moved to the next string when current string ends • Ensured both arrays are fully traversed at the end 📊 Key Takeaway: Efficient solutions avoid extra space — comparing character by character is better than building new strings 🔥 Consistency + small improvements every day = big progress #Day67 #LeetCode #CodingJourney #DSA #Java #ProblemSolving #Consistency