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| Section | Weight | Objectives |
|---|---|---|
| Cryptography Fundamentals | 20% | - Basic terminology: plaintext, ciphertext, algorithm, key - Core goals: confidentiality, integrity, authentication, non-repudiation - Historical evolution and modern applications |
| Asymmetric Encryption & Public Key Infrastructure | 25% | - Digital signatures: purpose and process - Certificate lifecycle: creation, validation, revocation - PKI components: certificates, CAs, trust models - Algorithms: RSA, ECC, Diffie-Hellman - Principles: public/private key pairs |
| Symmetric Encryption | 25% | - Key generation, distribution, and management challenges - Algorithms: AES, DES, 3DES, Blowfish - Block vs stream ciphers, modes of operation (ECB, CBC, OFB, CFB) - Principles and operation |
| Hash Functions & Data Integrity | 15% | - HMAC construction and application - Properties: collision resistance, one-way function - Uses: integrity checks, password storage, message authentication - Algorithms: SHA-1, SHA-256, SHA-3, MD5 |
| Implementation & Best Practices | 5% | - Common mistakes and vulnerabilities - Standards and compliance - Selecting appropriate algorithms and key sizes |
| Key Management & Secure Protocols | 10% | - Secure protocols: TLS/SSL, IPsec, SSH, PGP - Cryptographic attacks: brute force, birthday, man-in-the-middle - Key generation, storage, exchange, and destruction |
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NEW QUESTION # 54
(Which type of exploit involves looking for different inputs that generate the same hash?)
Answer: C
Explanation:
A birthday attack targets hash functions by exploiting the birthday paradox: collisions (two different inputs producing the same hash output) can be found much faster than brute-forcing a specific preimage. For an n-bit hash, the expected work to findanycollision is on the order of 2
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