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Howard Wang

dblp:132/2506 · DBLP profile ↗
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5ranked-venue papers
1as first author
0since 2021 · last 2018
0000-0001-9905-4049ORCID · corroborated

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

Computer networks · 3Artificial intelligence and machine learning · 1 · 1 first-authorSystems, architecture and hardware · 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.

Computer networks
2 papers
Optical networks · 66% Cellular and mobile networks · 25% Network management and operations · 9%
Computer architecture, parallel and distributed computing, and storage systems
1 paper
Interconnection networks and networks-on-chip · 62% High-performance computing · 38%

Topics — the 6 heaviest of 7, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Optical networks
quality of transmission
0.222014
Real-Time Power Control for Dynamic Optical Networks - Algorithms and Experimentation · IEEE J. Sel. Areas Commun. 2014
Real-time power control for dynamic optical networks - Algorithms and experimentation · ICNP 2013
Optical networks › routing and wavelength assignment
wavelength assignment
0.212014
Real-Time Power Control for Dynamic Optical Networks - Algorithms and Experimentation · IEEE J. Sel. Areas Commun. 2014
Interconnection networks and networks-on-chip
optical interconnection networks
0.212014
Accelerating incast and multicast traffic delivery for data-intensive applications using physical layer optics · SIGCOMM 2014
Cellular and mobile networks
power control
0.212013
Real-time power control for dynamic optical networks - Algorithms and experimentation · ICNP 2013
High-performance computing
cluster computing
0.112014
Accelerating incast and multicast traffic delivery for data-intensive applications using physical layer optics · SIGCOMM 2014
High-performance computing › data-intensive computing
data-intensive applications
0.112014
Accelerating incast and multicast traffic delivery for data-intensive applications using physical layer optics · SIGCOMM 2014

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

simulation · 0.2network-wide optimization · 0.2optimization algorithm · 0.2optical performance monitoring · 0.2
YearPublicationVenuePosition
2018 Robust video tracking algorithm: a multi-feature fusion approach
abstract
This study proposes a novel robust video tracking algorithm consists of target detection, multi‐feature fusion, and extended Camshift. Firstly, a novel target detection method that integrates Canny edge operator, three‐frame difference, and improved Gaussian mixture model (IGMM)‐based background modelling is provided to detect targets. The IGMM‐based background modelling divides video frames into meshes to avoid pixel‐wise processing. In addition, the output of the target detection is utilised to initialise the IGMM and to accelerate the convergence of iterations. Secondly, low‐dimensional regional covariance matrices are introduced to describe video targets by fusing multiple features like pixel location, colour index, rotation and scale invariant features as well as uniform local binary patterns, and directional derivatives. Thirdly, an extended Camshift based on adaptive kernel bandwidth and robust H ∞ state estimation is proposed to predict the states of fast moving targets and to reduce the mean shift iterations. Finally, the effectiveness of the proposed tracking algorithm is demonstrated via experiments.
Howard Wang, Sing Kiong Nguang, Jiwei Wen
IET Comput. Vis.1
2014 Accelerating incast and multicast traffic delivery for data-intensive applications using physical layer optics
abstract
We present a control plane architecture to accelerate multicast and incast traffic delivery for data-intensive applications in cluster-computing interconnection networks. The architecture is experimentally examined by enabling physical layer optical multicasting on-demand for the application layer to achieve non-blocking performance.
Payman Samadi, Varun Gupta 0002, Berk Birand, Howard Wang, Gil Zussman, Keren Bergman
SIGCOMM4
2014 Real-Time Power Control for Dynamic Optical Networks - Algorithms and Experimentation
abstract
Core and aggregation optical networks are remarkably static, despite the emerging dynamic capabilities of the individual optical devices. This stems from the inability to address optical impairments in real-time. As a result, tasks such as adding and removing wavelengths take a substantial amount of time, and therefore, optical networks are over-provisioned and inefficient in terms of capacity and energy. Optical Performance Monitors (OPMs) that assess the Quality of Transmission (QoT) in real-time can be used to overcome these inefficiencies. However, prior work mostly focused on the single link level. In this paper, we present a network-wide optimization algorithm that leverages OPM measurements to dynamically control the wavelengths' power levels. Hence, it allows adding and dropping wavelengths quickly while mitigating the impacts of impairments caused by these actions, thereby facilitating efficient operation of higher layer protocols. We evaluate the algorithm's performance using a network-scale optical simulator under real-world scenarios and show that the ability to add and drop wavelengths dynamically can lead to significant power savings. Moreover, we experimentally evaluate the algorithm in an optical testbed and discuss the practical implementation issues. To the best of our knowledge, this paper is the first attempt at providing a global power control algorithm that uses live OPM measurements to enable dynamic optical networking.
Berk Birand, Howard Wang, Keren Bergman, Daniel C. Kilper, Thyaga Nandagopal, Gil Zussman
IEEE J. Sel. Areas Commun.2
2013 Real-time power control for dynamic optical networks - Algorithms and experimentation
abstract
Core and aggregation optical networks are remarkably static, despite the emerging dynamic capabilities of the individual optical devices. This stems from the inability to address optical impairments in real-time. As a result, tasks such as adding and removing wavelengths take a substantial amount of time, and therefore, optical networks are over-provisioned and inefficient in terms of capacity and energy. Optical Performance Monitors (OPMs) that assess the Quality of Transmission (QoT) in real-time can be used to overcome these inefficiencies. However, prior work mostly focused on the single link level. In this paper, we present a network-wide optimization algorithm that leverages OPM measurements to dynamically control the wavelengths' power levels. Hence, it allows adding and dropping wavelengths quickly while mitigating the impacts of impairments caused by these actions, thereby facilitating efficient operation of higher layer protocols. We evaluate the algorithm's performance using a network-scale optical simulator under real-world scenarios and show that the ability to add and drop wavelengths dynamically can lead to significant power savings. Moreover, we experimentally evaluate the algorithm in an optical testbed and discuss the practical implementation issues. To the best of our knowledge, this paper is the first attempt at providing a global power control algorithm that uses live OPM measurements to enable dynamic optical networking.
Berk Birand, Howard Wang, Keren Bergman, Daniel C. Kilper, Thyaga Nandagopal, Gil Zussman
ICNP2
2011 Burst-Mode Transmission and Data Recovery for Multi-GHz Optical Packet Switching Network Testing
abstract
This paper describes the challenges associated with recovery of multi-GHz short burst communications in multi-channel systems, especially DWDM optical packet switching networks. Burst-mode data transmission complicates the standard methods typically used to recover embedded clock information and recover the serial data. Previously implemented solutions to this problem either constrain the test capability or are not extensible to higher signaling rates. A new approach, capable of locking in a single cycle at rates up to 10 Gbps is described in this paper. This solution applies to both the testing strategies and a receiver circuit used for an end-application optical switching network interface.
Carl Edward Gray, David C. Keezer, Howard Wang, Keren Bergman
Asian Test Symposium3