Understanding Dynamic Programming in Algorithms

akashdev23

Akash Dev

Posted on September 19, 2023

Understanding Dynamic Programming in Algorithms

Welcome to the fourth article of our Algorithm Design Series! In this blog post, we dive into the world of Dynamic Programming (DP) which is a powerful technique used in algorithm design to optimize problem-solving by avoiding redundant calculations. It's particularly handy when dealing with problems exhibiting two key properties: Optimal Substructure and Overlapping Sub-problems.

But before that, it's very necessary to understand what exactly DP is.

What is Dynamic Programming?

Dynamic programming is a problem-solving technique that helps us avoid the repetition of calculations by storing the results of sub-problems in a data structure (often a table) for future reference. This approach significantly improves efficiency and is commonly applied to solve problems in various domains.

Key Properties for Applying Dynamic Programming

To determine if Dynamic Programming is suitable for a given problem, we need to check for the following properties:

  1. Optimal Substructure: The problem should exhibit an optimal solution constructed from the optimal solutions of its sub-problems.

  2. Overlapping Sub-problems: During the calculation of optimal solutions for sub-problems, the same computations should be repeated multiple times.

Steps to Apply Dynamic Programming

To effectively use Dynamic Programming, follow these steps:

  1. Optimal Substructure: Identify if there's a recursive relation between the main problem and its sub-problems.

  2. Write Recursive Relations: Write down the recursive relation of the problem, paying attention to potential overlapping sub-problems.

  3. Compute Sub-problems: Calculate the values of sub-problems in a bottom-up fashion, storing these values in a data structure.

  4. Construct the Optimal Solution: Build the optimal solution using the values stored in step 3.

  5. Repeat: Continue steps 3 and 4 until you arrive at the final solution.

Examples of Problems Solved Using Dynamic Programming

Dynamic Programming is a versatile technique applied to a wide range of problems. Let's explore some classic examples:

1. Fibonacci Numbers

Explanation: The Fibonacci sequence is a series of numbers where each number is the sum of the two preceding ones: 0, 1, 1, 2, 3, 5, 8, 13, ...

Code:

def fibonacci(n):
    if n <= 1:
        return n
    fib = [0] * (n + 1)
    fib[1] = 1
    for i in range(2, n + 1):
        fib[i] = fib[i - 1] + fib[i - 2]
    return fib[n]
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Time Complexity: O(n) Space Complexity: O(n)

Explanation: In this example, we use an array to store the Fibonacci numbers to avoid redundant calculations. The time complexity is linear because we calculate each Fibonacci number from 2 to n once. The space complexity is also linear because we store all Fibonacci numbers up to n in an array.

2. Assembly-line Scheduling

Explanation: Assembly-line scheduling is a problem in which we optimize the time needed to build a product using multiple assembly lines. It involves finding the fastest way to assemble a product while considering entry and exit times for each assembly line.

Code: The code for this problem is complex and involves multiple arrays and dynamic programming techniques. It's beyond the scope of a single code snippet. That's why I am not providing it here but you can check it by clicking on this link.

Time Complexity: O(n) Space Complexity: O(n)

Explanation: The time and space complexity for assembly-line scheduling can vary depending on the specific problem instance and the algorithm used. In general, it can have a time complexity of O(n) and space complexity of O(n) when implemented efficiently.

3. Longest Increasing Subsequence

Explanation: The Longest Increasing Subsequence problem involves finding the longest subsequence in an array where elements are in increasing order but not necessarily contiguous.

Code:

def longest_increasing_subsequence(arr):
    n = len(arr)
    lis = [1] * n
    for i in range(1, n):
        for j in range(i):
            if arr[i] > arr[j] and lis[i] < lis[j] + 1:
                lis[i] = lis[j] + 1
    return max(lis)
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Time Complexity: O(n^2) Space Complexity: O(n)

Explanation: In this code, we use dynamic programming to find the length of the longest increasing subsequence in the given array. The time complexity is O(n^2) because we have a nested loop. The space complexity is O(n) as we use an additional array to store the lengths of increasing subsequences.

4. Matrix Chain Multiplication

Explanation: The Matrix Chain Multiplication problem involves finding the most efficient way to multiply a sequence of matrices to minimize the number of operations required.

Code:

def matrix_chain_multiplication(dims):
    n = len(dims) - 1
    dp = [[0] * n for _ in range(n)]
    for chain_length in range(2, n + 1):
        for i in range(n - chain_length + 1):
            j = i + chain_length - 1
            dp[i][j] = float('inf')
            for k in range(i, j):
                cost = dp[i][k] + dp[k + 1][j] + dims[i] * dims[k + 1] * dims[j + 1]
                dp[i][j] = min(dp[i][j], cost)
    return dp[0][n - 1]
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Time Complexity: O(n^3) Space Complexity: O(n^2)

Explanation: The code above uses dynamic programming to solve the Matrix Chain Multiplication problem efficiently. The time complexity is O(n^3), where n is the number of matrices. The space complexity is O(n^2) due to the DP table.

5. Longest Common Subsequence

Explanation: The Longest Common Subsequence (LCS) problem involves finding the longest subsequence common to two sequences.

Code:

def longest_common_subsequence(X, Y):
    m, n = len(X), len(Y)
    dp = [[0] * (n + 1) for _ in range(m + 1)]
    for i in range(1, m + 1):
        for j in range(1, n + 1):
            if X[i - 1] == Y[j - 1]:
                dp[i][j] = dp[i - 1][j - 1] + 1
            else:
                dp[i][j] = max(dp[i - 1][j], dp[i][j - 1])
    return dp[m][n]
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Time Complexity: O(m n) Space Complexity: O(m n)

Explanation: This code calculates the length of the longest common subsequence between two sequences X and Y using dynamic programming. The time complexity is O(m n), where m and n are the lengths of the input sequences. The space complexity is also O(m n) due to the DP table.

6. Coin Exchange Problem

Explanation: The Coin Exchange problem involves finding the minimum number of coins needed to make a change for a given amount using a set of coin denominations.

Code:

def coin_exchange(coins, amount):
    dp = [float('inf')] * (amount + 1)
    dp[0] = 0
    for coin in coins:
        for i in range(coin, amount + 1):
            dp[i] = min(dp[i], dp[i - coin] + 1)
    return dp[amount] if dp[amount] != float('inf') else -1
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Time Complexity: O(amount * num_coins) Space Complexity: O(amount)

Explanation: The code above uses dynamic programming to solve the Coin Exchange problem efficiently. The time complexity is O(amount * num_coins), where the amount is the target amount and num_coins is the number of coin denominations. The space complexity is O(amount) due to the DP array.

These examples illustrate how Dynamic Programming can be applied to solve a variety of problems efficiently, making it a powerful technique in algorithm design.

Conclusion

Through this article, we've explored the magic of Dynamic Programming through some examples, witnessing how it optimizes Fibonacci computations, streamlines assembly-line scheduling, and unlocks the secrets of longest subsequences and more.

But this is not the end of our journey. To delve deeper into the world of algorithm design techniques, I would love to recommend that you read our previous articles in this series. There's a lot waiting for you.

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akashdev23
Akash Dev

Posted on September 19, 2023

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