His main research concerns Electrical engineering, Electronic engineering, Category 5 cable, Transceiver and Downstream. Frequency synthesizer, Switching time and CMOS are the primary areas of interest in his Electrical engineering study. His Switching time study combines topics in areas such as Phase modulation, Phase-locked loop, Amplitude modulation, Clock rate and Quadrature amplitude modulation.
His study in the field of Finite impulse response also crosses realms of Spurious relationship. His research in Transceiver intersects with topics in Viterbi algorithm, Frequency-shift keying, Gigabit Ethernet, Transmitter and Clock signal. His study in Downstream is interdisciplinary in nature, drawing from both Cable Internet access and Digital cable.
His primary areas of investigation include Electronic engineering, Transceiver, Electrical engineering, Chip and Demodulation. His Electronic engineering study focuses on CMOS in particular. The various areas that he examines in his CMOS study include Digital filter, Waveform, Very-large-scale integration, Clock rate and Circuit design.
His Transceiver study integrates concerns from other disciplines, such as Filter, Viterbi decoder, Viterbi algorithm, Gigabit Ethernet and Clock signal. His work deals with themes such as Optoelectronics, Adaptive filter, Error detection and correction and Intermediate frequency, which intersect with Chip. His biological study spans a wide range of topics, including Costas loop, Frequency-shift keying and Code division multiple access.
Henry Samueli mainly focuses on Advertising, Multimedia, Presentation, Set and Connection. Henry Samueli performs multidisciplinary studies into Advertising and World Wide Web in his work. Henry Samueli performs multidisciplinary study on World Wide Web and Identification in his works.
Henry Samueli has researched Presentation in several fields, including User equipment and User profile. Set and Content are two areas of study in which he engages in interdisciplinary research. His Content research includes elements of Telecommunications network and Videocassette recorder.
His scientific interests lie mostly in Computer network, Symmetric digital subscriber line, Asymmetric digital subscriber line, Digital subscriber line and Communications system. His Computer network study frequently draws connections to adjacent fields such as Power transmission. His Power transmission research integrates issues from Telecommunications link and Network packet.
The study incorporates disciplines such as Transmission, Upstream and Base station in addition to Communications system.
This overview was generated by a machine learning system which analysed the scientist’s body of work. If you have any feedback, you can contact us here.
An improved search algorithm for the design of multiplierless FIR filters with powers-of-two coefficients
H. Samueli.
IEEE Transactions on Circuits and Systems (1989)
Robust techniques for optimal upstream communication between cable modem subscribers and a headend
Thomas J. Quigley;Jonathan S. Min;Lisa V. Denney;Henry Samueli.
(2001)
An Analysis of the Output Spectrum of Direct Digital Frequency Synthesizers in the Presence of Phase-Accumulator Truncation
H.T. Nicholas;H. Samueli.
annual symposium on frequency control (1987)
A single-chip 900-MHz spread-spectrum wireless transceiver in 1-/spl mu/m CMOS. I. Architecture and transmitter design
A. Rofougaran;G. Chang;J.J. Rael;J.Y.-C. Chang.
IEEE Journal of Solid-state Circuits (1998)
A 150-MHz Direct Digital Frequency Synthesizer In 1.25/spl mu/m CMOS With -90dBc Spurious Performance
H.T. Nicholas;H. Samueli.
international solid-state circuits conference (1991)
The optimization of direct digital frequency synthesizer performance in the presence of finite word length effects
H.T. Nicholas;H. Samueli;B. Kim.
ieee frequency control symposium (1988)
Multi-pair gigabit ethernet transceiver
Oscar E. Agazzi;John L. Creigh;Mehdi Hatamian;David E. Kruse.
(2003)
Burst receiver for cable modem system
Thomas J. Quigley;Jonathan S. Min;Lisa V. Denney;Henry Samueli.
(2000)
A single-chip 900-MHz spread-spectrum wireless transceiver in 1-/spl mu/m CMOS. II. Receiver design
A. Rofougaran;G. Chang;J.J. Rael;J.Y.-C. Chang.
IEEE Journal of Solid-state Circuits (1998)
Robust Techniques for Upstream Communication Between Subscriber Stations and a Base Station
Thomas J. Quigley;Jonathan S. Min;Lisa V. Denney;Henry Samueli.
(2010)
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