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WGU Introduction-to-Cryptography Exam Syllabus Topics:

SectionWeightObjectives
Topic 1: Implementation & Best Practices5%- Standards and compliance
- Selecting appropriate algorithms and key sizes
- Common mistakes and vulnerabilities
Topic 2: Symmetric Encryption25%- Algorithms: AES, DES, 3DES, Blowfish
- Key generation, distribution, and management challenges
- Block vs stream ciphers, modes of operation (ECB, CBC, OFB, CFB)
- Principles and operation
Topic 3: Cryptography Fundamentals20%- Basic terminology: plaintext, ciphertext, algorithm, key
- Core goals: confidentiality, integrity, authentication, non-repudiation
- Historical evolution and modern applications
Topic 4: Hash Functions & Data Integrity15%- Algorithms: SHA-1, SHA-256, SHA-3, MD5
- Uses: integrity checks, password storage, message authentication
- HMAC construction and application
- Properties: collision resistance, one-way function
Topic 5: Asymmetric Encryption & Public Key Infrastructure25%- PKI components: certificates, CAs, trust models
- Certificate lifecycle: creation, validation, revocation
- Digital signatures: purpose and process
- Principles: public/private key pairs
- Algorithms: RSA, ECC, Diffie-Hellman
Topic 6: Key Management & Secure Protocols10%- Key generation, storage, exchange, and destruction
- Cryptographic attacks: brute force, birthday, man-in-the-middle
- Secure protocols: TLS/SSL, IPsec, SSH, PGP

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WGU Introduction to Cryptography HNO1 Sample Questions (Q45-Q50):

NEW QUESTION # 45
(How can auditing enhance an organization ' s cryptographic practices?)

Answer: C


NEW QUESTION # 46
(A security analyst uses a polyalphabetic substitution cipher with a keyword of YELLOW to encrypt a message. Which cipher should be used to encrypt the message?)

Answer: C

Explanation:
A polyalphabetic substitution cipher uses multiple substitution alphabets rather than a single fixed mapping. The classic cipher that uses a keyword to select shifting alphabets across the message is the Vigenere cipher. In Vigenere, each plaintext letter is shifted by an amount determined by the corresponding key letter (repeating the keyword as needed). For example, a keyword like "YELLOW" is aligned under the plaintext; each key character defines a Caesar shift (A=0, B=1, ...) applied to the plaintext character, producing ciphertext. This rotation of alphabets across positions makes Vigenere more resistant to simple frequency analysis than monoalphabetic substitution, because the same plaintext letter may encrypt to different ciphertext letters depending on its position relative to the key.
The Pigpen cipher is a symbol substitution cipher, Caesar is monoalphabetic with a single shift, and Playfair is a digraph substitution cipher using a 5×5 key square, not the repeating-key polyalphabetic method described. Therefore, the correct cipher is Vigenere.


NEW QUESTION # 47
(What is the correlation between the number of rounds and the key length used in the AES algorithm?)

Answer: D

Explanation:
In AES, the number of rounds is explicitly tied to the key length. AES-128 uses 10 rounds, AES-192 uses 12 rounds, and AES-256 uses 14 rounds. The purpose of additional rounds is to increase diffusion and confusion, strengthening resistance against cryptanalysis as the key schedule and state transformations iterate more times. Although key length primarily affects brute-force resistance, AES's designers and standardization parameters link longer keys with more rounds to maintain security margins across variants, especially considering differences in the key schedule structure. Thus, as key length increases from 128 to 192 to 256 bits, the number of rounds increases correspondingly from 10 to 12 to 14. This relationship is fixed by the AES specification and does not vary dynamically at runtime. Therefore, the correct correlation is that the number of rounds increases as the key length increases.


NEW QUESTION # 48
(Which mechanism can be applied to protect the integrity of plaintext when using AES?)

Answer: B

Explanation:
AES by itself is a symmetric block cipher that provides confidentiality, but not guaranteed integrity unless used in an authenticated mode. To protect integrity of the plaintext (ensuring it has not been altered), a Message Authentication Code (MAC) can be applied. In the classic Encrypt-then-MAC pattern, the sender encrypts the plaintext with AES and then computes a MAC (often HMAC-SHA-256 or CMAC-AES) over the ciphertext (and relevant headers). The receiver verifies the MAC before attempting decryption, preventing tampering and many padding-oracle style vulnerabilities. Alternatively, AES can be used in an AEAD mode like AES-GCM, which produces an authentication tag serving a similar purpose, but among the listed options the general integrity mechanism is "MAC." RC4 is an unrelated stream cipher and does not provide integrity.
RSA is asymmetric and not the standard integrity add-on for AES-encrypted bulk data. Kerberos is an authentication protocol and key distribution system, not a message integrity primitive. Therefore, to protect plaintext integrity when using AES, the correct mechanism is a Message Authentication Code.


NEW QUESTION # 49
(How does a cryptographic policy contribute to incident response?)

Answer: D

Explanation:
A cryptographic policy defines how encryption, keys, certificates, and integrity mechanisms are used and managed across an organization. During incident response, that policy becomes a playbook for making safe, consistent decisions under pressure. It can specify how to rotate or revoke compromised keys, how to validate and reissue certificates, how to preserve evidence integrity with hashing, and how to securely communicate sensitive incident details (e.g., using approved encrypted channels). It can also define backup encryption requirements and key escrow or recovery procedures, enabling secure data recovery without exposing protected data. Policies typically outline roles and responsibilities (who can access keys, who can approve rekeying), logging requirements, and escalation steps-reducing confusion and preventing ad hoc crypto changes that might worsen exposure. The goal is not to limit encryption; it is to ensure cryptography is used correctly to contain and remediate incidents. Therefore, providing guidelines for secure recovery and communication is the correct contribution of cryptographic policy to incident response.


NEW QUESTION # 50
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