Farhad Akhoundi

dblp:145/8187 · also Farhad Akhoondi · DBLP profile ↗
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3ranked-venue papers
1as first author
0since 2021 · last 2017
0000-0003-4139-3448ORCID · corroborated

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

Computer networks · 3 · 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.

Computer networks
2 papers
Physical-layer communications · 86% Optical networks · 11% Cellular and mobile networks · 3%

Topics — the 9 heaviest of 9, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Physical-layer communications › optical wireless communication
underwater optical communication
0.522017
Performance Studies of Underwater Wireless Optical Communication Systems With Spatial Diversity: MIMO Scheme · IEEE Trans. Commun. 2017
Cellular Underwater Wireless Optical CDMA Network: Performance Analysis and Implementation Concepts · IEEE Trans. Commun. 2015
Physical-layer communications
MIMO
0.312017
Performance Studies of Underwater Wireless Optical Communication Systems With Spatial Diversity: MIMO Scheme · IEEE Trans. Commun. 2017
Physical-layer communications › diversity
spatial diversity
0.312017
Performance Studies of Underwater Wireless Optical Communication Systems With Spatial Diversity: MIMO Scheme · IEEE Trans. Commun. 2017
Physical-layer communications
multiple access
0.212015
Cellular Underwater Wireless Optical CDMA Network: Performance Analysis and Implementation Concepts · IEEE Trans. Commun. 2015
Optical networks
optical code-division multiple access
0.212015
Cellular Underwater Wireless Optical CDMA Network: Performance Analysis and Implementation Concepts · IEEE Trans. Commun. 2015
Physical-layer communications
optical wireless communication
0.212015
Cellular Underwater Wireless Optical CDMA Network: Performance Analysis and Implementation Concepts · IEEE Trans. Commun. 2015
Physical-layer communications
modulation
0.112017
Performance Studies of Underwater Wireless Optical Communication Systems With Spatial Diversity: MIMO Scheme · IEEE Trans. Commun. 2017
Physical-layer communications › modulation › amplitude modulation
on-off keying
0.112017
Performance Studies of Underwater Wireless Optical Communication Systems With Spatial Diversity: MIMO Scheme · IEEE Trans. Commun. 2017
Cellular and mobile networks › mobile networks › mobile network architecture
cellular network architecture
0.112015
Cellular Underwater Wireless Optical CDMA Network: Performance Analysis and Implementation Concepts · IEEE Trans. Commun. 2015

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

photon counting · 0.3gauss-hermite quadrature · 0.3equal gain combining · 0.3optical orthogonal codes · 0.2FPGA implementation · 0.2
YearPublicationVenuePosition
2017 Performance Studies of Underwater Wireless Optical Communication Systems With Spatial Diversity: MIMO Scheme
abstract
In this paper, we analytically study the performance of multiple-input multiple-output underwater wireless optical communication (UWOC) systems with ON-OFF keying modulation. To mitigate turbulence-induced fading, which is amongst the major degrading effects of underwater channels on the propagating optical signal, we use spatial diversity over UWOC links. Furthermore, the effects of absorption and scattering are considered in our analysis. We analytically obtain the exact and an upper bound bit error rate (BER) expressions for both optimal and equal gain combining. In order to more effectively calculate the system BER, we apply Gauss-Hermite quadrature formula as well as approximation to the sum of lognormal random variables. We also apply the photon-counting method to evaluate the system BER in the presence of shot noise. Our numerical results indicate an excellent match between the exact and upper bound BER curves. Also, a good match between the analytical results and numerical simulations confirms the accuracy of our derived expressions. Moreover, our results show that spatial diversity can considerably improve the system performance, especially for channels with higher turbulence, e.g., a 3×1 multiple-input single-output transmission in a 25 m coastal water link with a log-amplitude variance of 0.16 can introduce 8 dB performance improvement at the BER of 10-9.
Mohammad Vahid Jamali, Jawad A. Salehi, Farhad Akhoundi
IEEE Trans. Commun.3
2016 Performance Characterization of Relay-Assisted Wireless Optical CDMA Networks in Turbulent Underwater Channel
abstract
In this paper, we characterize the performance of relay-assisted underwater wireless optical code division multiple access (OCDMA) networks over turbulent channels. In addition to scattering and absorption effects of underwater channels, we also consider optical turbulence as a log-normal fading coefficient in our analysis. To simultaneously and asynchronously share medium among many users, we assign a unique optical orthogonal code (OOC) to each user in order to actualize OCDMA-based underwater network. The most significant challenge in underwater optical communication is in the ability to extend the short range of its coverage. In order to expand the viable communication range, we consider multi-hop transmission to the destination. Moreover, we evaluate the performance of a relay-assisted point-to-point UWOC system as a special case of the proposed relay-assisted OCDMA network. Our numerical results indicate significant performance improvement by employing intermediate relays, e.g., one can achieve 32 dB improvement in the bit error rate (BER) of 10-6using only a dual-hop transmission in a 90 m point-to-point clear ocean link.
Mohammad Vahid Jamali, Farhad Akhoundi, Jawad A. Salehi
IEEE Trans. Wirel. Commun.2
2015 Cellular Underwater Wireless Optical CDMA Network: Performance Analysis and Implementation Concepts
abstract
In this paper, we introduce and investigate a cellular underwater wireless optical code division multiple-access (OCDMA) network based on optical orthogonal codes (OOC). The structures, principles, and performance of the underwater wireless OCDMA network in various water types are presented. Since underwater wireless optical links are considered for high-bandwidth underwater communications at short ranges, we will place a set of optical base transceiver stations (OBTS) each in the center of a hexagonal cell to cover a larger underwater area. The OBTSs are connected via fiber optic to an optical network controller (ONC) which operates as the core of the network. An integral expression for system error probability is obtained for both uplink and downlink schemes under a specific channel model expressed in this paper, among many channel models in underwater optical communication systems. Furthermore, an experimental prototype of underwater an OCDMA system including the OBTS, ONC, transmitters, and receivers are implemented using field programmable gate arrays (FPGA).
Farhad Akhoundi, Jawad A. Salehi, Arvin Tashakori
IEEE Trans. Commun.1