P. R. Prucnal, B. J. Shastri, T. Ferreira de Lima, M. A. Nahmias, and A. N. Tait, “Recent progress in semiconductor excitable lasers for photonic spike processing,” Adv. Opt. Photonics 8(2), 228–299 (2016).
[Crossref]
W. Liu, M. Li, R. S. Guzzon, E. J. Norberg, J. S. Parker, M. Lu, L. A. Coldren, and J. Yao, “A fully reconfigurable photonic integrated signal processor,” Nat. Photonics 10(3), 190–195 (2016).
[Crossref]
K. Grover, A. Lim, and Q. Yang, “Jamming and anti-jamming techniques in wireless networks: a survey,” Int. J. Ad Hoc Ubiquitous Comput. 17(4), 197–215 (2014).
[Crossref]
K. Grover, A. Lim, and Q. Yang, “Jamming and anti–jamming techniques in wireless networks: a survey,” Int. J. Ad Hoc Ubiquitous Comput. 17(4), 197–215 (2014).
[Crossref]
S. A. Stamper, M. S. Madhav, N. J. Cowan, and E. S. Fortune, “Beyond the jamming avoidance response: weakly electric fish respond to the envelope of social electrosensory signals,” J. Exp. Biol. 215(23), 4196–4207 (2012).
[Crossref]
[PubMed]
C. Popper, M. Strasser, and S. Capkun, “Anti-jamming broadcast communication using uncoordinated spread spectrum techniques,” IEEE J. Sel. Areas Comm. 28(5), 703–715 (2010).
[Crossref]
R. Gummadi, D. Wetherall, B. Greenstein, and S. Seshan, “Understanding and mitigating the impact of RF interference on 802.11 networks,” ACM SIGCOMM Comput. Commun. Rev. 37(4), 385–396 (2007).
[Crossref]
S. Katti, S. Gollakota, and D. Katabi, “Embracing wireless interference: analog network coding,” ACM SIGCOMM Comput. Commun. Rev. 37(4), 397–408 (2007).
[Crossref]
J. Xu, X. Zhang, J. Dong, D. Liu, and D. Huang, “High-speed all-optical differentiator based on a semiconductor optical amplifier and an optical filter,” Opt. Lett. 32(13), 1872–1874 (2007).
[Crossref]
[PubMed]
R. Inohara, K. Nishimura, M. Tsurusawa, and M. Usami, “Experimental analysis of cross-phase modulation and cross-gain modulation in SOA-injecting CW assist light,” IEEE Photonics Technol. Lett. 15(9), 1192–1194 (2003).
[Crossref]
R. P. Webb, R. J. Manning, G. D. Maxwell, and A. J. Poustie, “40 Gbit/s all-optical XOR gate based on hybrid-integrated Mach-Zehnder interferometer,” Electron. Lett. 39(1), 79–81 (2003).
[Crossref]
J. H. Kim, Y. M. Jhon, Y. T. Byun, S. Lee, D. H. Woo, and S. H. Kim, “All-optical XOR gate using semiconductor optical amplifiers without additional input beam,” IEEE Photonics Technol. Lett. 14(10), 1436–1438 (2002).
[Crossref]
Y. K. Seo, C. S. Choi, and W. Y. Choi, “All-optical signal up-conversion for radio-on-fiber applications using cross-gain modulation in semiconductor optical amplifiers,” IEEE Photonics Technol. Lett. 14(10), 1448–1450 (2002).
[Crossref]
P. Gupta and P. R. Kumar, “The capacity of wireless networks,” ,” IEEE Trans. Inf. Theory 46(2), 388–404 (2000).
[Crossref]
H. J. Lee, H. G. Kim, J. Y. Choi, and H. K. Lee, “All-optical clock recovery from NRZ data with simple NRZ-to-PRZ converter based on self-phase modulation of semiconductor optical amplifier,” Electron. Lett. 35(12), 989–990 (1999).
[Crossref]
J. M. Wang, S. C. Fang, and W. S. Feng, “New efficient designs for XOR and XNOR functions on the transistor level,” IEEE J. Solid-State Circuits 29(7), 780–786 (1994).
[Crossref]
W. Metzner, “The jamming avoidance response in Eigenmannia is controlled by two separate motor pathways,” J. Neurosci. 13(5), 1862–1878 (1993).
[Crossref]
[PubMed]
J. E. LeMoncheck and E. John, “An analog VLSI model of the jamming avoidance response in electric fish,” IEEE J. Solid-State Circuits 27(6), 874–882 (1992).
[Crossref]
K. M. Dostert, “Frequency-hopping spread-spectrum modulation for digital communications over electrical power lines,” IEEE J. Sel. Areas Comm. 8(4), 700–710 (1990).
[Crossref]
W. Heiligenberg and G. Rose, “Phase and amplitude computations in the midbrain of an electric fish: intracellular studies of neurons participating in the jamming avoidance response of Eigenmannia,” J. Neurosci. 5(2), 515–531 (1985).
[Crossref]
[PubMed]
R. Pickholtz, D. Schilling, and L. Milstein, “Theory of spread-spectrum communications - a tutorial,” IEEE Trans. Commun. 30(5), 855–884 (1982).
[Crossref]
H. Scheich, “Neural basis of communication in the high frequency electric fish, Eigenmannia virescens (Jamming Avoidance Response),” J. Comp. Physiol. 113(2), 181–206 (1977).
[Crossref]
V. Navda, A. Bohra, S. Ganguly, and D. Rubenstein, “Using channel hopping to increase 802.11 resilience to jamming attacks,” In: IEEE 26th IEEE International Conference on Computer Communications (IEEE, 2007) 2526–2530.
[Crossref]
J. H. Kim, Y. M. Jhon, Y. T. Byun, S. Lee, D. H. Woo, and S. H. Kim, “All-optical XOR gate using semiconductor optical amplifiers without additional input beam,” IEEE Photonics Technol. Lett. 14(10), 1436–1438 (2002).
[Crossref]
C. Popper, M. Strasser, and S. Capkun, “Anti-jamming broadcast communication using uncoordinated spread spectrum techniques,” IEEE J. Sel. Areas Comm. 28(5), 703–715 (2010).
[Crossref]
Y. K. Seo, C. S. Choi, and W. Y. Choi, “All-optical signal up-conversion for radio-on-fiber applications using cross-gain modulation in semiconductor optical amplifiers,” IEEE Photonics Technol. Lett. 14(10), 1448–1450 (2002).
[Crossref]
H. J. Lee, H. G. Kim, J. Y. Choi, and H. K. Lee, “All-optical clock recovery from NRZ data with simple NRZ-to-PRZ converter based on self-phase modulation of semiconductor optical amplifier,” Electron. Lett. 35(12), 989–990 (1999).
[Crossref]
Y. K. Seo, C. S. Choi, and W. Y. Choi, “All-optical signal up-conversion for radio-on-fiber applications using cross-gain modulation in semiconductor optical amplifiers,” IEEE Photonics Technol. Lett. 14(10), 1448–1450 (2002).
[Crossref]
W. Liu, M. Li, R. S. Guzzon, E. J. Norberg, J. S. Parker, M. Lu, L. A. Coldren, and J. Yao, “A fully reconfigurable photonic integrated signal processor,” Nat. Photonics 10(3), 190–195 (2016).
[Crossref]
S. A. Stamper, M. S. Madhav, N. J. Cowan, and E. S. Fortune, “Beyond the jamming avoidance response: weakly electric fish respond to the envelope of social electrosensory signals,” J. Exp. Biol. 215(23), 4196–4207 (2012).
[Crossref]
[PubMed]
K. M. Dostert, “Frequency-hopping spread-spectrum modulation for digital communications over electrical power lines,” IEEE J. Sel. Areas Comm. 8(4), 700–710 (1990).
[Crossref]
S. U. Yoon, R. Murawski, E. Ekici, S. Park, and Z. Mir, “Adaptive channel hopping for interference robust wireless sensor networks,” In: 2010 IEEE International Conference on Communications (IEEE, 2010) p 1–5.
[Crossref]
J. M. Wang, S. C. Fang, and W. S. Feng, “New efficient designs for XOR and XNOR functions on the transistor level,” IEEE J. Solid-State Circuits 29(7), 780–786 (1994).
[Crossref]
J. M. Wang, S. C. Fang, and W. S. Feng, “New efficient designs for XOR and XNOR functions on the transistor level,” IEEE J. Solid-State Circuits 29(7), 780–786 (1994).
[Crossref]
P. R. Prucnal, B. J. Shastri, T. Ferreira de Lima, M. A. Nahmias, and A. N. Tait, “Recent progress in semiconductor excitable lasers for photonic spike processing,” Adv. Opt. Photonics 8(2), 228–299 (2016).
[Crossref]
R. Toole and M. P. Fok, “Photonic implementation of a neuronal algorithm applicable towards angle of arrival detection and localization,” Opt. Express 23(12), 16133–16141 (2015).
[Crossref]
[PubMed]
M. P. Fok and P. R. Prucnal, “All-optical XOR gate with optical feedback using highly Ge-doped nonlinear fiber and a terahertz optical asymmetric demultiplexer,” Appl. Opt. 50(2), 237–241 (2011).
[Crossref]
[PubMed]
P. R. Prucnal, M. P. Fok, D. Rosenbluth, and K. Kravtsov, “Lightwave neuromorphic signal processing,” 2011 ICO International Conference on Information Photonics (IEEE, 2011) p. 1–2.
S. A. Stamper, M. S. Madhav, N. J. Cowan, and E. S. Fortune, “Beyond the jamming avoidance response: weakly electric fish respond to the envelope of social electrosensory signals,” J. Exp. Biol. 215(23), 4196–4207 (2012).
[Crossref]
[PubMed]
V. Navda, A. Bohra, S. Ganguly, and D. Rubenstein, “Using channel hopping to increase 802.11 resilience to jamming attacks,” In: IEEE 26th IEEE International Conference on Computer Communications (IEEE, 2007) 2526–2530.
[Crossref]
S. K. Jain and K. Garg, “A hybrid model of defense techniques against base station jamming attack in wireless sensor networks,” In: Proceedings of the 2009 First International Conference on Computational Intelligence, Communication Systems and Networks, (IEEE, 2009) 102–107.
[Crossref]
S. Katti, S. Gollakota, and D. Katabi, “Embracing wireless interference: analog network coding,” ACM SIGCOMM Comput. Commun. Rev. 37(4), 397–408 (2007).
[Crossref]
R. Gummadi, D. Wetherall, B. Greenstein, and S. Seshan, “Understanding and mitigating the impact of RF interference on 802.11 networks,” ACM SIGCOMM Comput. Commun. Rev. 37(4), 385–396 (2007).
[Crossref]
K. Grover, A. Lim, and Q. Yang, “Jamming and anti-jamming techniques in wireless networks: a survey,” Int. J. Ad Hoc Ubiquitous Comput. 17(4), 197–215 (2014).
[Crossref]
K. Grover, A. Lim, and Q. Yang, “Jamming and anti–jamming techniques in wireless networks: a survey,” Int. J. Ad Hoc Ubiquitous Comput. 17(4), 197–215 (2014).
[Crossref]
R. Gummadi, D. Wetherall, B. Greenstein, and S. Seshan, “Understanding and mitigating the impact of RF interference on 802.11 networks,” ACM SIGCOMM Comput. Commun. Rev. 37(4), 385–396 (2007).
[Crossref]
P. Gupta and P. R. Kumar, “The capacity of wireless networks,” ,” IEEE Trans. Inf. Theory 46(2), 388–404 (2000).
[Crossref]
W. Liu, M. Li, R. S. Guzzon, E. J. Norberg, J. S. Parker, M. Lu, L. A. Coldren, and J. Yao, “A fully reconfigurable photonic integrated signal processor,” Nat. Photonics 10(3), 190–195 (2016).
[Crossref]
W. Heiligenberg and G. Rose, “Phase and amplitude computations in the midbrain of an electric fish: intracellular studies of neurons participating in the jamming avoidance response of Eigenmannia,” J. Neurosci. 5(2), 515–531 (1985).
[Crossref]
[PubMed]
R. Inohara, K. Nishimura, M. Tsurusawa, and M. Usami, “Experimental analysis of cross-phase modulation and cross-gain modulation in SOA-injecting CW assist light,” IEEE Photonics Technol. Lett. 15(9), 1192–1194 (2003).
[Crossref]
S. K. Jain and K. Garg, “A hybrid model of defense techniques against base station jamming attack in wireless sensor networks,” In: Proceedings of the 2009 First International Conference on Computational Intelligence, Communication Systems and Networks, (IEEE, 2009) 102–107.
[Crossref]
J. H. Kim, Y. M. Jhon, Y. T. Byun, S. Lee, D. H. Woo, and S. H. Kim, “All-optical XOR gate using semiconductor optical amplifiers without additional input beam,” IEEE Photonics Technol. Lett. 14(10), 1436–1438 (2002).
[Crossref]
J. E. LeMoncheck and E. John, “An analog VLSI model of the jamming avoidance response in electric fish,” IEEE J. Solid-State Circuits 27(6), 874–882 (1992).
[Crossref]
S. Katti, S. Gollakota, and D. Katabi, “Embracing wireless interference: analog network coding,” ACM SIGCOMM Comput. Commun. Rev. 37(4), 397–408 (2007).
[Crossref]
S. Katti, S. Gollakota, and D. Katabi, “Embracing wireless interference: analog network coding,” ACM SIGCOMM Comput. Commun. Rev. 37(4), 397–408 (2007).
[Crossref]
S. Khattab, D. Mosse, and R. Melhem, “Jamming mitigation in multi-radio wireless networks: Reactive or proactive?” In: Proceedings of the 4th International Conference on Security and privacy in communication networks (ACM, 2008) 27.
[Crossref]
H. J. Lee, H. G. Kim, J. Y. Choi, and H. K. Lee, “All-optical clock recovery from NRZ data with simple NRZ-to-PRZ converter based on self-phase modulation of semiconductor optical amplifier,” Electron. Lett. 35(12), 989–990 (1999).
[Crossref]
J. H. Kim, Y. M. Jhon, Y. T. Byun, S. Lee, D. H. Woo, and S. H. Kim, “All-optical XOR gate using semiconductor optical amplifiers without additional input beam,” IEEE Photonics Technol. Lett. 14(10), 1436–1438 (2002).
[Crossref]
J. H. Kim, Y. M. Jhon, Y. T. Byun, S. Lee, D. H. Woo, and S. H. Kim, “All-optical XOR gate using semiconductor optical amplifiers without additional input beam,” IEEE Photonics Technol. Lett. 14(10), 1436–1438 (2002).
[Crossref]
K. Pelechrinis, C. Koufogiannakis, and S. V. Krishnamurthy, “Gaming the jammer: is frequency hopping effective?” In: Proceedings of the 7th International Conference on Modeling and Optimization in Mobile, Ad Hoc, and Wireless Networks, (IEEE, 2009) 187–196.
[Crossref]
P. R. Prucnal, M. P. Fok, D. Rosenbluth, and K. Kravtsov, “Lightwave neuromorphic signal processing,” 2011 ICO International Conference on Information Photonics (IEEE, 2011) p. 1–2.
K. Pelechrinis, C. Koufogiannakis, and S. V. Krishnamurthy, “Gaming the jammer: is frequency hopping effective?” In: Proceedings of the 7th International Conference on Modeling and Optimization in Mobile, Ad Hoc, and Wireless Networks, (IEEE, 2009) 187–196.
[Crossref]
P. Gupta and P. R. Kumar, “The capacity of wireless networks,” ,” IEEE Trans. Inf. Theory 46(2), 388–404 (2000).
[Crossref]
H. J. Lee, H. G. Kim, J. Y. Choi, and H. K. Lee, “All-optical clock recovery from NRZ data with simple NRZ-to-PRZ converter based on self-phase modulation of semiconductor optical amplifier,” Electron. Lett. 35(12), 989–990 (1999).
[Crossref]
H. J. Lee, H. G. Kim, J. Y. Choi, and H. K. Lee, “All-optical clock recovery from NRZ data with simple NRZ-to-PRZ converter based on self-phase modulation of semiconductor optical amplifier,” Electron. Lett. 35(12), 989–990 (1999).
[Crossref]
J. H. Kim, Y. M. Jhon, Y. T. Byun, S. Lee, D. H. Woo, and S. H. Kim, “All-optical XOR gate using semiconductor optical amplifiers without additional input beam,” IEEE Photonics Technol. Lett. 14(10), 1436–1438 (2002).
[Crossref]
J. E. LeMoncheck and E. John, “An analog VLSI model of the jamming avoidance response in electric fish,” IEEE J. Solid-State Circuits 27(6), 874–882 (1992).
[Crossref]
M. Wilhelm, I. Martinovic, J. B. Schmitt, and V. Lenders, “Short paper: reactive jamming in wireless networks: how realistic is the threat?” in Proceedings of the fourth ACM conference on Wireless network security (ACM, 2011) 47–52.
[Crossref]
W. Liu, M. Li, R. S. Guzzon, E. J. Norberg, J. S. Parker, M. Lu, L. A. Coldren, and J. Yao, “A fully reconfigurable photonic integrated signal processor,” Nat. Photonics 10(3), 190–195 (2016).
[Crossref]
H. Wang, L. Zhang, T. Li, and J. Tugnait, “Spectrally efficient jamming mitigation based on code-controlled frequency hopping,” IEEE Trans. Wirel. Commun. 10(3), 728–732 (2011).
[Crossref]
K. Grover, A. Lim, and Q. Yang, “Jamming and anti-jamming techniques in wireless networks: a survey,” Int. J. Ad Hoc Ubiquitous Comput. 17(4), 197–215 (2014).
[Crossref]
K. Grover, A. Lim, and Q. Yang, “Jamming and anti–jamming techniques in wireless networks: a survey,” Int. J. Ad Hoc Ubiquitous Comput. 17(4), 197–215 (2014).
[Crossref]
W. Liu, M. Li, R. S. Guzzon, E. J. Norberg, J. S. Parker, M. Lu, L. A. Coldren, and J. Yao, “A fully reconfigurable photonic integrated signal processor,” Nat. Photonics 10(3), 190–195 (2016).
[Crossref]
W. Liu, M. Li, R. S. Guzzon, E. J. Norberg, J. S. Parker, M. Lu, L. A. Coldren, and J. Yao, “A fully reconfigurable photonic integrated signal processor,” Nat. Photonics 10(3), 190–195 (2016).
[Crossref]
S. A. Stamper, M. S. Madhav, N. J. Cowan, and E. S. Fortune, “Beyond the jamming avoidance response: weakly electric fish respond to the envelope of social electrosensory signals,” J. Exp. Biol. 215(23), 4196–4207 (2012).
[Crossref]
[PubMed]
R. P. Webb, R. J. Manning, G. D. Maxwell, and A. J. Poustie, “40 Gbit/s all-optical XOR gate based on hybrid-integrated Mach-Zehnder interferometer,” Electron. Lett. 39(1), 79–81 (2003).
[Crossref]
M. Wilhelm, I. Martinovic, J. B. Schmitt, and V. Lenders, “Short paper: reactive jamming in wireless networks: how realistic is the threat?” in Proceedings of the fourth ACM conference on Wireless network security (ACM, 2011) 47–52.
[Crossref]
R. P. Webb, R. J. Manning, G. D. Maxwell, and A. J. Poustie, “40 Gbit/s all-optical XOR gate based on hybrid-integrated Mach-Zehnder interferometer,” Electron. Lett. 39(1), 79–81 (2003).
[Crossref]
S. Khattab, D. Mosse, and R. Melhem, “Jamming mitigation in multi-radio wireless networks: Reactive or proactive?” In: Proceedings of the 4th International Conference on Security and privacy in communication networks (ACM, 2008) 27.
[Crossref]
W. Metzner, “The jamming avoidance response in Eigenmannia is controlled by two separate motor pathways,” J. Neurosci. 13(5), 1862–1878 (1993).
[Crossref]
[PubMed]
R. Pickholtz, D. Schilling, and L. Milstein, “Theory of spread-spectrum communications - a tutorial,” IEEE Trans. Commun. 30(5), 855–884 (1982).
[Crossref]
S. U. Yoon, R. Murawski, E. Ekici, S. Park, and Z. Mir, “Adaptive channel hopping for interference robust wireless sensor networks,” In: 2010 IEEE International Conference on Communications (IEEE, 2010) p 1–5.
[Crossref]
S. Khattab, D. Mosse, and R. Melhem, “Jamming mitigation in multi-radio wireless networks: Reactive or proactive?” In: Proceedings of the 4th International Conference on Security and privacy in communication networks (ACM, 2008) 27.
[Crossref]
S. U. Yoon, R. Murawski, E. Ekici, S. Park, and Z. Mir, “Adaptive channel hopping for interference robust wireless sensor networks,” In: 2010 IEEE International Conference on Communications (IEEE, 2010) p 1–5.
[Crossref]
P. R. Prucnal, B. J. Shastri, T. Ferreira de Lima, M. A. Nahmias, and A. N. Tait, “Recent progress in semiconductor excitable lasers for photonic spike processing,” Adv. Opt. Photonics 8(2), 228–299 (2016).
[Crossref]
V. Navda, A. Bohra, S. Ganguly, and D. Rubenstein, “Using channel hopping to increase 802.11 resilience to jamming attacks,” In: IEEE 26th IEEE International Conference on Computer Communications (IEEE, 2007) 2526–2530.
[Crossref]
R. Inohara, K. Nishimura, M. Tsurusawa, and M. Usami, “Experimental analysis of cross-phase modulation and cross-gain modulation in SOA-injecting CW assist light,” IEEE Photonics Technol. Lett. 15(9), 1192–1194 (2003).
[Crossref]
W. Liu, M. Li, R. S. Guzzon, E. J. Norberg, J. S. Parker, M. Lu, L. A. Coldren, and J. Yao, “A fully reconfigurable photonic integrated signal processor,” Nat. Photonics 10(3), 190–195 (2016).
[Crossref]
S. U. Yoon, R. Murawski, E. Ekici, S. Park, and Z. Mir, “Adaptive channel hopping for interference robust wireless sensor networks,” In: 2010 IEEE International Conference on Communications (IEEE, 2010) p 1–5.
[Crossref]
W. Liu, M. Li, R. S. Guzzon, E. J. Norberg, J. S. Parker, M. Lu, L. A. Coldren, and J. Yao, “A fully reconfigurable photonic integrated signal processor,” Nat. Photonics 10(3), 190–195 (2016).
[Crossref]
K. Pelechrinis, C. Koufogiannakis, and S. V. Krishnamurthy, “Gaming the jammer: is frequency hopping effective?” In: Proceedings of the 7th International Conference on Modeling and Optimization in Mobile, Ad Hoc, and Wireless Networks, (IEEE, 2009) 187–196.
[Crossref]
R. Pickholtz, D. Schilling, and L. Milstein, “Theory of spread-spectrum communications - a tutorial,” IEEE Trans. Commun. 30(5), 855–884 (1982).
[Crossref]
C. Popper, M. Strasser, and S. Capkun, “Anti-jamming broadcast communication using uncoordinated spread spectrum techniques,” IEEE J. Sel. Areas Comm. 28(5), 703–715 (2010).
[Crossref]
R. P. Webb, R. J. Manning, G. D. Maxwell, and A. J. Poustie, “40 Gbit/s all-optical XOR gate based on hybrid-integrated Mach-Zehnder interferometer,” Electron. Lett. 39(1), 79–81 (2003).
[Crossref]
P. R. Prucnal, B. J. Shastri, T. Ferreira de Lima, M. A. Nahmias, and A. N. Tait, “Recent progress in semiconductor excitable lasers for photonic spike processing,” Adv. Opt. Photonics 8(2), 228–299 (2016).
[Crossref]
M. P. Fok and P. R. Prucnal, “All-optical XOR gate with optical feedback using highly Ge-doped nonlinear fiber and a terahertz optical asymmetric demultiplexer,” Appl. Opt. 50(2), 237–241 (2011).
[Crossref]
[PubMed]
P. R. Prucnal, M. P. Fok, D. Rosenbluth, and K. Kravtsov, “Lightwave neuromorphic signal processing,” 2011 ICO International Conference on Information Photonics (IEEE, 2011) p. 1–2.
W. Heiligenberg and G. Rose, “Phase and amplitude computations in the midbrain of an electric fish: intracellular studies of neurons participating in the jamming avoidance response of Eigenmannia,” J. Neurosci. 5(2), 515–531 (1985).
[Crossref]
[PubMed]
P. R. Prucnal, M. P. Fok, D. Rosenbluth, and K. Kravtsov, “Lightwave neuromorphic signal processing,” 2011 ICO International Conference on Information Photonics (IEEE, 2011) p. 1–2.
V. Navda, A. Bohra, S. Ganguly, and D. Rubenstein, “Using channel hopping to increase 802.11 resilience to jamming attacks,” In: IEEE 26th IEEE International Conference on Computer Communications (IEEE, 2007) 2526–2530.
[Crossref]
H. Scheich, “Neural basis of communication in the high frequency electric fish, Eigenmannia virescens (Jamming Avoidance Response),” J. Comp. Physiol. 113(2), 181–206 (1977).
[Crossref]
R. Pickholtz, D. Schilling, and L. Milstein, “Theory of spread-spectrum communications - a tutorial,” IEEE Trans. Commun. 30(5), 855–884 (1982).
[Crossref]
M. Wilhelm, I. Martinovic, J. B. Schmitt, and V. Lenders, “Short paper: reactive jamming in wireless networks: how realistic is the threat?” in Proceedings of the fourth ACM conference on Wireless network security (ACM, 2011) 47–52.
[Crossref]
Y. K. Seo, C. S. Choi, and W. Y. Choi, “All-optical signal up-conversion for radio-on-fiber applications using cross-gain modulation in semiconductor optical amplifiers,” IEEE Photonics Technol. Lett. 14(10), 1448–1450 (2002).
[Crossref]
R. Gummadi, D. Wetherall, B. Greenstein, and S. Seshan, “Understanding and mitigating the impact of RF interference on 802.11 networks,” ACM SIGCOMM Comput. Commun. Rev. 37(4), 385–396 (2007).
[Crossref]
P. R. Prucnal, B. J. Shastri, T. Ferreira de Lima, M. A. Nahmias, and A. N. Tait, “Recent progress in semiconductor excitable lasers for photonic spike processing,” Adv. Opt. Photonics 8(2), 228–299 (2016).
[Crossref]
S. A. Stamper, M. S. Madhav, N. J. Cowan, and E. S. Fortune, “Beyond the jamming avoidance response: weakly electric fish respond to the envelope of social electrosensory signals,” J. Exp. Biol. 215(23), 4196–4207 (2012).
[Crossref]
[PubMed]
C. Popper, M. Strasser, and S. Capkun, “Anti-jamming broadcast communication using uncoordinated spread spectrum techniques,” IEEE J. Sel. Areas Comm. 28(5), 703–715 (2010).
[Crossref]
P. R. Prucnal, B. J. Shastri, T. Ferreira de Lima, M. A. Nahmias, and A. N. Tait, “Recent progress in semiconductor excitable lasers for photonic spike processing,” Adv. Opt. Photonics 8(2), 228–299 (2016).
[Crossref]
Q. Xu, W. Trappe, Y. Zhang, and T. Wood, “The feasibility of launching and detecting jamming attacks in wireless networks,” in Proceedings of the 6th ACM international symposium on Mobile ad hoc networking and computing (ACM, 2005) 46–57.
[Crossref]
R. Inohara, K. Nishimura, M. Tsurusawa, and M. Usami, “Experimental analysis of cross-phase modulation and cross-gain modulation in SOA-injecting CW assist light,” IEEE Photonics Technol. Lett. 15(9), 1192–1194 (2003).
[Crossref]
H. Wang, L. Zhang, T. Li, and J. Tugnait, “Spectrally efficient jamming mitigation based on code-controlled frequency hopping,” IEEE Trans. Wirel. Commun. 10(3), 728–732 (2011).
[Crossref]
R. Inohara, K. Nishimura, M. Tsurusawa, and M. Usami, “Experimental analysis of cross-phase modulation and cross-gain modulation in SOA-injecting CW assist light,” IEEE Photonics Technol. Lett. 15(9), 1192–1194 (2003).
[Crossref]
H. Wang, L. Zhang, T. Li, and J. Tugnait, “Spectrally efficient jamming mitigation based on code-controlled frequency hopping,” IEEE Trans. Wirel. Commun. 10(3), 728–732 (2011).
[Crossref]
J. M. Wang, S. C. Fang, and W. S. Feng, “New efficient designs for XOR and XNOR functions on the transistor level,” IEEE J. Solid-State Circuits 29(7), 780–786 (1994).
[Crossref]
R. P. Webb, R. J. Manning, G. D. Maxwell, and A. J. Poustie, “40 Gbit/s all-optical XOR gate based on hybrid-integrated Mach-Zehnder interferometer,” Electron. Lett. 39(1), 79–81 (2003).
[Crossref]
R. Gummadi, D. Wetherall, B. Greenstein, and S. Seshan, “Understanding and mitigating the impact of RF interference on 802.11 networks,” ACM SIGCOMM Comput. Commun. Rev. 37(4), 385–396 (2007).
[Crossref]
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