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WGU Introduction to Cryptography HNO1 Sample Questions (Q31-Q36):
NEW QUESTION # 31
(Which feature is characteristic of asymmetric encryption?)
- A. Uses one key for encryption and decryption
- B. Uses both a public and private key
- C. Requires multiple encryption rounds
- D. Is irreversible
Answer: B
Explanation:
Asymmetric encryption is defined by using a key pair: a public key that can be shared widely and a private key that remains secret to its owner. The keys are mathematically related so that data encrypted with one key can be decrypted with the other (in confidentiality use cases, encryption with the recipient's public key and decryption with the recipient's private key). This design solves key distribution challenges: anyone can encrypt to a recipient without first sharing a secret key securely. It also enables digital signatures, where the private key signs and the public key verifies-supporting authenticity and integrity. Option B describes symmetric cryptography, not asymmetric. Option C is not a defining property; both symmetric and asymmetric algorithms can involve rounds or repeated operations. Option D is incorrect because asymmetric encryption is reversible for the intended holder of the private key; "irreversible" describes hashing, not encryption. Therefore, the characteristic feature of asymmetric encryption is the use of both a public and private key.
NEW QUESTION # 32
(Why should an administrator choose lightweight cryptography?)
- A. The payload requires complex rounds of encryption.
- B. The desktop is in a secure area of the building.
- C. The data requires minimal protection due to the sensitivity level.
- D. The embedded system has limited resources.
Answer: D
Explanation:
Lightweight cryptography is designed for constrained environments-devices with limited CPU, memory, storage, bandwidth, and power (battery). Examples include IoT sensors, smart locks, RFID tags, embedded controllers, and industrial devices. Administrators choose lightweight algorithms and protocols to maintain reasonable security while fitting strict resource budgets and real-time constraints.
The goal is not "weaker security because data is unimportant," but rather efficient security that can still meet threat models under constraints. Option B captures this: embedded systems often cannot afford the computational cost of heavy cryptographic primitives (large key sizes, complex modes, frequent handshakes) or may struggle with latency and energy consumption. Option A is irrelevant because physical security of a desktop doesn't remove the need for cryptography in communications or storage. Option C is the opposite of lightweight design. Option D is a poor justification; security design should be based on risk, and lightweight cryptography is not merely for "minimal protection," but for practical deployability under constraints. Therefore, the correct reason is limited resources on embedded systems.
NEW QUESTION # 33
(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?)
- A. Vigenere
- B. Playfair
- C. Caesar
- D. Pigpen
Answer: A
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 # 34
(Which operation can be performed on a certificate during the "Issued" stage?)
- A. Creation
- B. Key archiving
- C. Key recovery
- D. Distribution
Answer: D
Explanation:
The "Issued" stage in a certificate lifecycle indicates that the certificate has been generated and signed by the issuing CA and is now valid for use (subject to validity dates, policy constraints, and revocation status). At this point, the operational focus shifts from creating the certificate to making it available to the subject and relying parties. "Distribution" is the lifecycle activity most directly associated with an issued certificate:
installing it on servers or endpoints, provisioning it into keystores, publishing it to directories if required, and ensuring the chain (intermediates) is accessible for validation. By contrast, "Creation" is earlier in the process (key generation, CSR creation, identity validation, issuance/signing). "Key recovery" and "key archiving" relate to private key management and escrow policies (often for encryption keys, not signing keys), and are governed by organizational policy and key management systems rather than the certificate's issued state itself.
A certificate can be distributed after issuance regardless of whether any key escrow features exist. Therefore, the operation that fits the certificate's "Issued" stage best is distribution of the issued credential for operational use.
NEW QUESTION # 35
(How often are transactions added to a blockchain?)
- A. Approximately every 1 hour
- B. Approximately every 24 hours
- C. Approximately every 10 minutes
- D. Approximately every 30 minutes
Answer: C
Explanation:
For Bitcoin, transactions are confirmed by inclusion in blocks, and the network targets an average block interval of about 10 minutes. That means transactions are "added" to the Bitcoin blockchain approximately every 10 minutes in the sense that a new block containing a batch of transactions is appended at that cadence.
The 10-minute target is achieved by a difficulty adjustment mechanism that recalibrates mining difficulty roughly every 2016 blocks, aiming to keep the average interval stable despite changes in total network hash power. It is important to note that this is an average: blocks can be found faster or slower in the short term due to the probabilistic nature of proof-of-work mining. Other blockchains have different block times (seconds to minutes), but the question's options and typical curriculum context align with Bitcoin's 10-minute design.
Therefore, the correct choice is approximately every 10 minutes.
NEW QUESTION # 36
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