N. R. Prasad

dblp:68/106 · DBLP profile ↗
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1ranked-venue papers
0as first author
0since 2021 · last 2007
—ORCID · none

Domains — the database's venue-derived domains; a paper can count in several

Security and privacy · 1

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Network and information security
1 paper
Cryptographic protocols and secure computation · 100%
Theoretical computer science
1 paper
Distributed computing theory · 100%

Topics — the 5 heaviest of 5, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Cryptographic protocols and secure computation › secure message transmission
perfectly secure message transmission
0.112007
On the Optimal Communication Complexity of Multiphase Protocols for Perfect Communication · S&P 2007
Cryptographic protocols and secure computation
secure message transmission
0.112007
On the Optimal Communication Complexity of Multiphase Protocols for Perfect Communication · S&P 2007
Distributed computing theory › fault tolerance
fault-tolerant communication
0.112007
On the Optimal Communication Complexity of Multiphase Protocols for Perfect Communication · S&P 2007
Distributed computing theory › fault tolerance
reliable message transmission
0.112007
On the Optimal Communication Complexity of Multiphase Protocols for Perfect Communication · S&P 2007
Cryptographic protocols and secure computation
communication complexity
0.012007
On the Optimal Communication Complexity of Multiphase Protocols for Perfect Communication · S&P 2007

Methods — techniques the papers use, named apart from their topics

multiphase protocols · 0.1
YearPublicationVenuePosition
2007 On the Optimal Communication Complexity of Multiphase Protocols for Perfect Communication
abstract
In the perfectly secure message transmission (PSMT) problem, two synchronized non-faulty players (or processors), the Sender S and the Receiver R are connected by n wires (each of which facilitates 2-way communication); S has a message, represented by a sequence oft elements from a finite field, that he wishes to send to R; after exchanging messages in phases R should correctly obtain S 's message, while an adversary listening on and actively controlling any set of t (or less) wires should have no information about S 's message. Similarly, in the problem of perfect reliable message transmission (PRMT), the receiver R should correctly obtain S's message, in spite of the adversary actively controlling any set oft (or less) wires.
K. Srinathan 0001, N. R. Prasad, C. Pandu Rangan
S&P2