Signal Processing - September 2017 - 163
include multichannel interference mitigation in wireline and
wireless communications, cooperative transmission in cellular
networks, and cross-layer optimization of random ad hoc networks. Since 2015, he has served as an associate editor of IEEE
Transactions on Signal Processing. He is a Senior Member of
the IEEE.
Amir Leshem (leshema@biu.ac.il) received his B.Sc.
degree (cum laude) in mathematics and physics, his M.Sc.
degree (cum laude) in mathematics, and his Ph.D. degree in
mathematics from the Hebrew University, Jerusalem, Israel, in
1986, 1990, and 1998, respectively. In 2002, he joined Bar-Ilan
University, Ramat-Gan, Israel, where he was one of the founders of the Faculty of Engineering and where he is a full professor and head of the communications research track. His main
research interests include multichannel wireless and wireline
communication, applications of game theory to dynamic and
adaptive spectrum management of communication networks,
array and statistical signal processing with applications to multiple-element sensor arrays and networks, wireless communications, radio-astronomical imaging, set theory, logic, and
foundations of mathematics. He was the leading guest editor
for special issues on signal processing for astronomy and cosmology in IEEE Signal Processing Magazine and IEEE
Journal of Selected Topics in Signal Processing. He is a Senior
Member of the IEEE.
[14] I. Bergel and A. Leshem, "Convergence analysis of downstream VDSL adaptive multichannel partial FEXT cancellation," IEEE Trans. Commun., vol. 58, no.
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[15] C. E. Shannon, "A mathematical theory of communication," Bell System Tech.
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[16] J. Bingham, "Multicarrier modulation for data transmission: An idea whose
time has come," IEEE Commun. Mag., vol. 28, no. 5, pp. 5-14, 1990.
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[20] R. Van Den Brink, "Cable reference models for simulating metallic access networks," ETSI STC TM6 Permanent Document TM6 (97)2, June 1998.
[21] W. Y. Chen, DSL: Simulation Techniques and Standards Development for
Digital Subscriber Lines. New York: Macmillan, 1998.
[22] E. Karipidis, N. Sidiropoulos, A. Leshem, and Y. Li, "Experimental evaluation
of capacity statistics for short VDSL loops," IEEE Trans., Commun., vol. 53, no. 7,
pp. 1119-1122, July 2005.
[23] E. Karipidis, N. Sidiropoulos, A. Leshem, Y. Li, R. Tarafi, and M. Ouzzif,
"Crosstalk models for short VDSL2 lines from measured 30MHz data," EURASIP
J. Appl. Signal Process., vol. 2006, no. 1, 2006.
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Contribution 2012-02-4A-038, 2012.
[26] D. Acatauassu, S. Host, C. Lu, M. Berg, A. Klautau, and P. Borjesson,
"Simple and causal copper cable model suitable for G.fast frequencies," IEEE
Trans. Commun., vol. 62, no. 11, pp. 4040-4051, Nov. 2014.
[27] L. Humphrey, "G.fast: Release of BT cable measurements for use in simulations," ITU-T-SG15 contribution 2013-01-Q4-066 to G.fast, Jan. 2013.
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ITU-T Recommendation G.9701-2014.
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Sorbara, "The ITU-T's new G.fast standard brings DSL into the gigabit era," IEEE
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[6] Asymmetric Digital Subscriber Line (ADSL) Transceivers- Series G:
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Recommendation G.992.1, 1999.
[7] J. Cioffi, M. Mosheni, A. Leshem, and Y. Li, "GDSL (Gigabit DSL)," T1E1.4
contribution T1E1.4/2003-487R1, Aug. 2004.
[8] J. Cioffi, S. Jagannathan, M. Mohseni, and G. Ginis, "CuPON: The copper
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generation VDSL downstream transmission over copper," IEEE Trans. Signal
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[39] C. Chen, K. Seong, R. Zhang, and J. Cioffi, "Optimized resource allocation
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IEEE SIGNAL PROCESSING MAGAZINE
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Table of Contents for the Digital Edition of Signal Processing - September 2017
Signal Processing - September 2017 - Cover1
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Signal Processing - September 2017 - Cover3
Signal Processing - September 2017 - Cover4
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