Question
a.
Public announcement
b.
Publicly available directory
c.
Public-key authority
d.
Public-key certificates
Engage with the Community - Add Your Comment
Confused About the Answer? Ask for Details Here.
Know the Explanation? Add it Here.
Q. USENET falls under which category of public key sharing?
Similar Questions
Discover Related MCQs
Q. For p = 11 and q = 19 and choose d=17. Apply RSA algorithm where Cipher message=80 and thus find the plain text.
View solution
Q. For p = 11 and q = 19 and choose e=17. Apply RSA algorithm where message=5 and find the cipher text.
View solution
Q. In RSA, we select a value ‘e’ such that it lies between 0 and Ф(n) and it is relatively prime to Ф(n).
View solution
Q. In RSA, Ф(n) = _______ in terms of p and q.
View solution
Q. In the RSA algorithm, we select 2 random large values ‘p’ and ‘q’. Which of the following is the property of ‘p’ and ‘q’?
View solution
Q. RSA is also a stream cipher like Merkel-Hellman.
View solution
Q. Suppose that plaintext message units are single letters in the usual 26-letter alphabet with A-Z corresponding to 0-25. You receive the sequence of ciphertext message units 14, 25, 89. The public key is the sequence {57, 14, 3, 24, 8} and the secret key is b = 23, m = 61.
Decipher the message. The Plain text is
View solution
Q. Find the ciphertext for the message {100110101011011} using superincreasing sequence { 1, 3, 5, 11, 35 } and private keys a = 5 and m=37.
View solution
Q. Compute private key (d, p, q) given public key (e=23, n=233 ´ 241=56,153).
View solution
Q. In an RSA system the public key of a given user is e = 31, n = 3599. What is the private key of this user?
View solution
Q. For p = 11 and q = 17 and choose e=7. Apply RSA algorithm where Cipher message=11 and thus find the plain text.
View solution
Q. For p = 11 and q = 17 and choose e=7. Apply RSA algorithm where PT message=88 and thus find the CT.
View solution
Q. The plaintext message consist of single letters with 5-bit numerical equivalents from (00000)2 to (11001)2. The secret deciphering key is the superincreasing 5-tuple (2, 3, 7, 15, 31), m = 61 and a = 17. Find the ciphertext for the message “WHY”.
View solution
Q. In Merkle-Hellman Cryptosystem, the public key can be used to decrypt messages, but cannot be used to decrypt messages. The private key encrypts the messages.
View solution
Q. In Merkle-Hellman Cryptosystem, the hard knapsack becomes the private key and the easy knapsack becomes the public key.
View solution
Q. Another name for Merkle-Hellman Cryptosystem is
View solution
Q. Consider knapsack that weighs 23 that has been made from the weights of the superincreasing series {1, 2, 4, 9, 20, and 38}. Find the ‘n’.
View solution
Q. A superincreasing knapsack problem is ____ to solve than a jumbled knapsack.
View solution
Q. Set {1, 2, 3, 9, 10, and 24} is superincreasing.
View solution
Q. For the Knapsack: {1 6 8 15 24}, find the plain text code if the ciphertext is 38.
View solution
Suggested Topics
Are you eager to expand your knowledge beyond Cryptography and Network Security? We've curated a selection of related categories that you might find intriguing.
Click on the categories below to discover a wealth of MCQs and enrich your understanding of Computer Science. Happy exploring!
