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T. P. Spiller

dblp:265/3061 · DBLP profile ↗
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2ranked-venue papers
1as first author
0since 2021 · last 1998
—ORCID · none

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

Applied, interdisciplinary, general and emerging computing · 1 · 1 first-author

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.

Theoretical computer science
1 paper
Quantum computing and quantum information · 100%

Topics — the 4 heaviest of 5, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Quantum computing and quantum information
quantum computing
0.011996
Quantum information processing: cryptography, computation, and teleportation · Proc. IEEE 1996
Quantum computing and quantum information
quantum cryptography
0.011996
Quantum information processing: cryptography, computation, and teleportation · Proc. IEEE 1996
Quantum computing and quantum information › quantum algorithms
quantum factoring
0.011996
Quantum information processing: cryptography, computation, and teleportation · Proc. IEEE 1996
Quantum computing and quantum information › quantum communication
quantum teleportation
0.011996
Quantum information processing: cryptography, computation, and teleportation · Proc. IEEE 1996
YearPublicationVenuePosition
1998 Characterization of the spatial distribution of RMS delay spread in indoor LOS wireless environments at 5.2 GHz
abstract
Results from ray-tracing modelling and measurements of RMS delay spread in indoor line-of-sight (LOS) environments at HIPERLAN/U-NII frequencies (5.2 GHz) with omni-directional antennas have shown that the maximum RMS delay spread in a room is dependent on the dimensions of the room and the reflectivity of the walls. Under these conditions the RMS delay spread increases with distance from the transmitter up to a maximum value that is thereafter constant with distance over the remainder of the room.
J. T. Edward McDonnell, T. P. Spiller, T. A. Wilkinson
PIMRC2
1996 Quantum information processing: cryptography, computation, and teleportation
abstract
Present information technology is based on the laws of classical physics. However, advances in quantum physics have stimulated interest in its potential impact on such technology. This article is an introductory review of three aspects of quantum information processing, cryptography, computation, and teleportation. The author serves up hors d'oeuvres on the relevant parts of quantum physics and the sorts of quantum systems which might form the building blocks for quantum processors. Quantum cryptography utilizes states of individual quantum systems for the transfer of conventional classical bits of information. The impossibility of measuring quantum systems without disturbing them guarantees the detection of eavesdropping and hence secure information transfer is possible. In a sense, teleportation is the inverse of cryptography, using more robust classical bits to faithfully transfer a quantum state through a noisy environment. Quantum computation utilizes the evolving quantum state of a complex system, which consists of many interacting individuals. If such a machine could be built, it would be capable of solving some problems which are intractable on any conventional computer; he illustrates this with Shor's (see Proc. 35th IEEE Symposium on Foundations of Computer Science, p.124, 1994) quantum factoring algorithm. Details are given of the current experimental achievements, proposals, and prospects for the future and of the patents granted to date.
T. P. Spiller
Proc. IEEE1