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Node.js Backend Development Bootcamp · Lezione

Cifratura e hashing dei dati

Impari a cifrare i dati sensibili archiviati e in transito e a usare tecniche di hashing corrette per le password degli utenti.

Cifratura e hashing dei dati è una lezione Node.js Backend Development Bootcamp gratuita su CoddyKit. Questa è la lezione 3 di 4. Puoi leggere la lezione completa qui gratuitamente — poi esercitati direttamente nel browser con un editor di codice integrato e un tutor IA disponibile 24/7. Fa parte del percorso di apprendimento Node.js Backend Development Bootcamp, e i tuoi progressi si sincronizzano tra il web e l'app CoddyKit. Il corso Node.js Backend Development Bootcamp include 4 lezioni in totale.

Parti di questa lezione non sono ancora state tradotte e vengono mostrate in inglese.

Data Security Essentials

Welcome to Data Encryption & Hashing! In today's digital world, protecting sensitive information is paramount. Whether it's user passwords, personal data, or financial details, securing this data is a core responsibility for any developer.

This lesson will equip you with the knowledge and tools to implement robust data protection strategies in your Node.js applications.

Cifratura e hashing dei dati — illustrazione 1

Encryption vs. Hashing

Before diving into techniques, let's understand two fundamental concepts:

  • Encryption: A two-way process that transforms data (plaintext) into an unreadable format (ciphertext) using a key. It's reversible, meaning the ciphertext can be converted back to plaintext with the correct key.
  • Hashing: A one-way process that transforms data of any size into a fixed-size string of characters (a hash value or digest). It's irreversible; you cannot get the original data back from its hash.

They serve different purposes!

Symmetric Encryption

Symmetric encryption uses the same secret key for both encrypting and decrypting data. It's fast and efficient, making it suitable for encrypting large amounts of data.

Common algorithms include AES (Advanced Encryption Standard). The key must be kept secret and securely exchanged between parties.

Node.js Symmetric Encryption

Node.js's built-in crypto module allows us to perform symmetric encryption. Here's an example using AES-256-CBC, a strong symmetric algorithm.

Note: In a real application, the encryption key should be securely generated and stored (e.g., in environment variables) and the IV should be random for each encryption.

const crypto = require('crypto');

// IMPORTANT: In production, generate this key securely and store it safely!
const ENCRYPTION_KEY = 'averysecretkeyforencryption123456'; // Must be 32 bytes for AES-256
const IV_LENGTH = 16; // For AES-256-CBC, IV is 16 bytes

function encrypt(text) {
  const iv = crypto.randomBytes(IV_LENGTH);
  const cipher = crypto.createCipheriv(
    'aes-256-cbc',
    Buffer.from(ENCRYPTION_KEY, 'utf8'),
    iv
  );
  let encrypted = cipher.update(text, 'utf8', 'hex');
  encrypted += cipher.final('hex');
  // Store IV with encrypted data (e.g., as 'iv:encryptedData')
  return iv.toString('hex') + ':' + encrypted;
}

function decrypt(text) {
  const textParts = text.split(':');
  const iv = Buffer.from(textParts.shift(), 'hex');
  const encryptedText = textParts.join(':');
  const decipher = crypto.createDecipheriv(
    'aes-256-cbc',
    Buffer.from(ENCRYPTION_KEY, 'utf8'),
    iv
  );
  let decrypted = decipher.update(encryptedText, 'hex', 'utf8');
  decrypted += decipher.final('utf8');
  return decrypted;
}

const message = 'Sensitive data for storage.';
console.log('Original:', message);

const encryptedMessage = encrypt(message);
console.log('Encrypted:', encryptedMessage);

const decryptedMessage = decrypt(encryptedMessage);
console.log('Decrypted:', decryptedMessage);

Asymmetric Encryption

Asymmetric encryption, also known as public-key cryptography, uses a pair of keys: a public key and a private key.

  • Public key: Can be shared with anyone. Used for encryption.
  • Private key: Must be kept secret. Used for decryption.

If you encrypt data with someone's public key, only they can decrypt it with their private key. This is slower than symmetric encryption but crucial for secure communication and digital signatures.

Hashing for Passwords

When storing user passwords, NEVER encrypt them. Instead, always hash them. If an attacker gains access to your database, they would ideally only find irreversible hashes, not decryptable passwords.

A good hashing algorithm for passwords should be:

  • One-way: Impossible to reverse.
  • Collision-resistant: Extremely unlikely for two different inputs to produce the same hash.
  • Slow: Deliberately designed to be computationally intensive to deter brute-force attacks.

Salting Passwords

To further enhance password security, we use salts. A salt is a unique, random string added to a password before it's hashed.

Why use salts?

  • Prevents Rainbow Table Attacks: Without salts, attackers could pre-compute hashes for common passwords (rainbow tables).
  • Unique Hashes: Even if two users have the same password, their salted hashes will be different.

The salt is usually stored alongside the hash.

Bcrypt for Password Hashing

bcrypt is a widely recommended library for hashing passwords in Node.js because it's designed to be slow and integrates salting automatically.

It handles generating a unique salt and performing multiple rounds of hashing (controlled by saltRounds, a work factor) to make brute-force attacks more difficult.

const bcrypt = require('bcrypt');

async function runBcryptExample() {
  const password = 'mySecretPassword123';
  const saltRounds = 10; // A higher number means more processing time

  console.log('Original Password:', password);

  // Hash the password with a generated salt
  const hashedPassword = await bcrypt.hash(password, saltRounds);
  console.log('Hashed Password:', hashedPassword);

  // Compare a candidate password with the stored hash
  const isMatch = await bcrypt.compare(password, hashedPassword);
  console.log('Password Match (correct):', isMatch);

  const wrongPassword = 'wrongPassword';
  const isWrongMatch = await bcrypt.compare(wrongPassword, hashedPassword);
  console.log('Password Match (wrong):', isWrongMatch);
}

runBcryptExample();

Securing Data in Transit (TLS/SSL)

While encryption and hashing protect data at rest (stored in a database), it's equally important to protect data while it's moving between systems (data in transit).

TLS/SSL (Transport Layer Security/Secure Sockets Layer) protocols provide encryption for network communication. When you visit a website using HTTPS, your browser and the server use TLS/SSL to encrypt all data exchanged, preventing eavesdropping and tampering.

Check Your Understanding

Which of the following statements about encryption and hashing are TRUE?

Recap: Data Protection

Great job! You've learned the fundamentals of data encryption and hashing:

  • Encryption protects sensitive data, making it reversible with a key.
  • Hashing provides one-way transformation, ideal for password storage and data integrity.
  • Symmetric encryption uses a single key, while asymmetric encryption uses public/private key pairs.
  • Always use strong, salted hashing (like bcrypt) for passwords.
  • TLS/SSL secures data in transit over networks.

Implementing these practices is vital for building secure Node.js applications!

Domande Frequenti

La lezione «Cifratura e hashing dei dati» è gratuita?

Sì — il testo completo di «Cifratura e hashing dei dati» è gratuito qui sul web. Per esercitarvi in modo interattivo (un editor di codice integrato e un tutor IA 24/7) e sbloccare il resto del corso Node.js Backend Development Bootcamp, passa a CoddyKit PRO. Il corso Node.js Backend Development Bootcamp include 4 lezioni in totale.

Cosa imparerò in «Cifratura e hashing dei dati»?

Impari a cifrare i dati sensibili archiviati e in transito e a usare tecniche di hashing corrette per le password degli utenti. Eserciti Node.js Backend Development Bootcamp con codice pratico che esegui direttamente nel browser, e un tutor IA 24/7 risponde alle tue domande mentre lavori sulla lezione.

Ho bisogno di esperienza per iniziare Node.js Backend Development Bootcamp?

Non è richiesta alcuna esperienza precedente. Node.js Backend Development Bootcamp su CoddyKit è strutturato per principianti e studenti avanzati, quindi puoi iniziare da qui o dall'inizio e procedere al tuo ritmo. Questa è la lezione 3 di 4.

Quanto tempo richiede la lezione «Cifratura e hashing dei dati»?

La maggior parte delle lezioni CoddyKit richiede circa 5–10 minuti. Ogni lezione è breve e interattiva, quindi fai progressi costanti e riprendi esattamente da dove hai lasciato su web e app.

Posso scrivere ed eseguire codice in questa lezione Node.js Backend Development Bootcamp?

Sì. Ogni lezione Node.js Backend Development Bootcamp include un editor di codice integrato, quindi scrivi ed esegui codice reale direttamente nel tuo browser e ricevi feedback istantaneo dall'IA — nessuna configurazione locale necessaria.

Tutte le lezioni di questo corso

  1. Comprendere OWASP Top 10
  2. Pratiche di secure coding in Node.js
  3. Cifratura e hashing dei dati
  4. Limitazione della frequenza e protezione dal brute force
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