VLDB 2026 Research / reviewers in the wild / expert
John P. Costas
dblp:166/9265
· DBLP profile ↗
2ranked-venue papers
2as first author
0since 2021 · last 2002
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Applied, interdisciplinary, general and emerging computing · 2 · 2 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.
| Computer networks
1 paper |
Physical-layer communications · 100% | |
| Computer architecture, parallel and distributed computing, and storage systems
1 paper |
Integrated circuit design · 100% |
Topics — the 9 heaviest of 9, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Physical-layer communications › modulation
amplitude modulation |
0.0 | 1 | 2002 | Synchronous communications · Proc. IEEE 2002 |
Physical-layer communications
modulation |
0.0 | 1 | 2002 | Synchronous communications · Proc. IEEE 2002 |
Physical-layer communications
signal detection |
0.0 | 1 | 2002 | Synchronous communications · Proc. IEEE 2002 |
Physical-layer communications
receiver design |
0.0 | 1 | 2002 | Synchronous communications · Proc. IEEE 2002 |
Physical-layer communications › modulation › amplitude modulation
single-sideband modulation |
0.0 | 1 | 2002 | Synchronous communications · Proc. IEEE 2002 |
Integrated circuit design › digital signal processing circuits
digital filter |
0.0 | 1 | 1986 | Computationally efficient digital filters · Proc. IEEE 1986 |
Integrated circuit design
digital signal processing circuits |
0.0 | 1 | 1986 | Computationally efficient digital filters · Proc. IEEE 1986 |
Integrated circuit design
low-power circuit design |
0.0 | 1 | 1986 | Computationally efficient digital filters · Proc. IEEE 1986 |
Integrated circuit design › digital arithmetic circuits
shift-and-add arithmetic |
0.0 | 1 | 1986 | Computationally efficient digital filters · Proc. IEEE 1986 |
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2002 | Synchronous communicationsabstractIt can be shown that present usage of amplitude modulation does not permit the inherent capabilities of the modulation process to be realized. In order to achieve the ultimate performance of which AM is capable synchronous or coherent detection techniques must be used at the receiver and carrier suppression must be employed at the transmitter. When a performance comparison is made between a synchronous AM system and a single-sideband system it is shown that many of the advantages normally attributed to single sideband no longer exist. SSB has no power advantage over the synchronous AM (DSB) system and SSB is shown to be more susceptible to jamming. The performance of the two systems with regard to multipath or selective fading conditions is also discussed. The DSB system shows a decided advantage over SSB with regard to system complexity, especially at the transmitter The bandwidth saving of SSB over DSB is considered and it is shown that factors other than signal bandwidth must be considered. The number of usable channels is not necessarily doubled by the use of SSB and in many practical situations no increase in the number of usable channels results from the use of SSB. The transmitting and receiving equipment which has been developed under Air Force sponsorship is discussed. The receiving system design involves a local oscillator phase-control system which derives carrier phase information from the sidebands alone and does not require the use of a pilot carrier or synchronizing tone. The avoidance of superheterodyne techniques in this receiver is explained and the versatility of such a receiving system with regard to the reception of many different types of signals is pointed out. System test results to date are presented and discussed. John P. Costas |
Proc. IEEE | 1 |
| 1986 | Computationally efficient digital filtersabstractA method for designing high-performance digital filters using only a relatively small number of shift-and-add operations per signal sample is demonstrated. John P. Costas |
Proc. IEEE | 1 |