迟学芬 照片

迟学芬

教授 博导

所属大学: 吉林大学

所属学院: 通信工程学院

邮箱:
chixf@jlu.edu.cn

个人主页:
http://dce.jlu.edu.cn/info/1181/5214.htm

个人简介

主要学历 1980.09-1984.07 北京邮电学院 应用物理专业 学士 1987.08-1990.03 中科院长春光学精密机械与物理研究所 光学专业 硕士 2000.09-2003.09 中科院长春光学精密机械与物理研究所 光学专业 博士 主要学术经历 1991.03 长春邮电学院 讲师 1995.09 长春邮电学院 副教授 2004.12 吉林大学 教授 2012.09 吉林大学 教授 博导

研究领域

通信网络建模理论和网络性能评价。无线通信理论和技术。MTC通信理论和技术。VLC通信理论和技术

近期论文

W. Yang, X. Chi, Task-driven Semantic-aware Green Cooperative Transmission Strategy for Vehicular Networks, IEEE Transactions on Communications. 大修。 S.Chen,X.Chi,Analysis of optical camera communications for terminal jiggle with quality of service guarantees."Journal of Lightwave Technology. 大修,已修回。 B.Yu, X. Chi, Martingale-based URLLC Slice Customization for the Provisioning of Reliability Regard to End-to-end Latency,IEEE Internet of Things Journal, R&R,在审 L.Zhao, X. Chi, Ma, Shaodan Delay-QoS-Aware Local-Information-Driven Multiple Access for MTC Networks", IEEE Transactions on Mobile Computing. 大修,已修回。 H. Yan, X. Chi,End-to-End Delay Analysis for Multi-hop Wireless Links Based on Martingale,IEEE Wireless Communications Letters. 在审。 S.Li, X.Chi, B.Yu. An improved particle swarm optimization algorithm for the reliability redundancy allocation problem with global reliability. Reliability Engineering & System Safety, vol.225, pp.108604, 2022. Y.Zhao, X.Chi, L.Qian, et al. Resource allocation and slicing puncture in cellular networks with eMBB and URLLC terminals coexistence. IEEE Internet of Things Journal, vol.9, no.19, pp.18431-18444,2022. B.Yu, X.Chi and X.Liu. Martingale-based bandwidth abstraction and slice instantiation under the end-to-end latency-bounded reliability constraint. IEEE Communications Letters, vol.26, no.1, pp.217-221, 2022. https://doi.org/10.1109/LCOMM.2021.3122305. Y.Sun, X.Chi, B.Yu, et al. Hop-by-hop bandwidth allocation and deployment for SFC with end-to-end delay QoS guarantees.Computer Communications, vol.192, pp.256-267, 2022. S. Zhao, X.Chi, B.Yu, et al. Service function chains deployment for 5G slice with bandwidth coupling. IEEE Communications Letters, vol.26, no.10, pp.2425-2429,2022. https://doi.org/10.1109/LCOMM.2022.3188678. L.Qian, X.Chi, L.Zhao,et al. User-centric secure cell formation for visible light networks with statistical delay guarantees. IEEE Transactions on Wireless Communications,vol.20, no.3, pp.1831-1846, 2021.https://doi.org/10.1109/TWC.2020.3036907. S.Chen, X.Chi, T. Li . Non-line-of-sight optical camera communication aided by pilot.Optics Letters, vol.46,no.14, pp.3348-3351, 2021.https://doi.org/10.1364/OL.431932. W.Yang, X.Chi, L.Zhao,et al. Predictive two-timescale resource allocation for VoD services in fast moving scenarios.IEEE Transactions on Vehicular Technology, vol.70, no.10, pp.10002-10017, 2021. https://doi.org/10.1109/TVT.2021.3095917. W.Yang, X.Chi, L.Zhao,et al. QoE-based MEC-assisted predictive adaptive video streaming for on-road driving scenarios. IEEE Wireless Communications Letters, vol.10, no.11, pp.2552-2556, 2021. https://doi.org/10.1109/LWC.2021.3106945. L.Qian, X.Chi, L.Zhao,et al. Secure visible light communications via intelligent reflecting surface. 2021 IEEE International Conference on Communications (ICC-2021), Canada, pp.1-6, 2021. https://doi.org/10.48550/arXiv.2101.12390. B.Yu,X.Chi, H.Sun. Delay analysis for aggregate traffic based on martingales theory. IET Communications,vol.14, no.5, pp.760-767,2020.http://dx.doi.org/10.1049/iet-com.2019.0282. B.Yu, X.Chi, H.Sun. Bandwidth abstraction and instantiation under closed-loop latency constraint for tactile slice based on martingale theory.Computer Communications,vol.160, pp.274-283,2020.https://doi.org/10.1016/j.comcom.2020.06.008. T.Li, X.Chi, F.Ji,et al.Optimal optical camera communication-ALOHArandom access algorithm aided visible lightcommunication system. Optical Engineering,vol.59, no.7,2020.https://doi.org/10.1117/1.OE.59.7.076111. W.Yang, X.Chi, L.Zhao. Proactive VoD delivery pattern reconfiguration based on temporal-spatial channel prediction. 2020 IEEE International Conference on Communications (ICC-2020),Ireland, pp.1-7,2020.http://dx.doi.org/10.1109/ICC40277.2020.9149070. L.Zhao, X.Chi, L.Qian,et al.Analysis on latency-bounded reliability for adaptive grant-free access with multipackets reception (MPR) in URLLCs.IEEE Communications Letters, vol.23, no.5, pp.892-895, 2019.http://dx.doi.org/10.1109/LCOMM.2019.2899614. H.Shi, X.Chi,Y.Zhao,et al. Imperceptible visible light communications based on just imperceptible difference. IEEE Communications Letters, vol.23, no.12, pp.2279-2283, 2019.http://dx.doi.org/10.1109/LCOMM.2019.2942025. L.Zhao, X.Chi, Y.Zhu. Martingales-based energy-efficient D-ALOHA algorithms for MTC networks with delay-insensitive/URLLC terminals co-existence. IEEE Internet of Things Journal, vol.5, no.2, pp.1285-1298,2018.https://doi.org/10.1109/JIOT.2018.2794614. H.Sun, X.Chi, L.Qian. Bandwidth estimation for aggregate traffic under delay QoS constraint based on supermartingale theory. Computer Communications, vol.130, pp.1-9, 2018. https://doi.org/10.1016/j.comcom.2018.08.007. H.Sun, X.Chi, Z.Nan. Router buffer behavior analysis for aggregate traffic based on martingale method. IEEE Communications Letters, vol.22, no.10, pp.2040-2043,2018. https://doi.org/10.1109/LCOMM.2018.2859397. L.Qian, X.Chi, L.Zhao. Analysis of effective capacity for visible light communication systems with mobility support. AEU-International Journal of Electronics and Communications, vol.88, pp.38-43,2018. https://doi.org/10.1016/j.aeue.2018.02.017. L.Qian, X.Chi,L.Zhao. Hybrid access algorithm for eMBB terminals with heterogeneous QoS in MPR aided VLC system. 2018 IEEE Global Communications Conference (GLOBECOM),United Arab Emirates, pp.1-6,2018. https://doi.org/10.1109/GLOCOM.2018.8647841. L. Zhao, X.Chi, W.Shi. A QoS-driven random access algorithm for MPR-capable VLC system. IEEE Communications Letters, vol.20, no.6, pp.1239-1242, 2016, https://doi.org/10.1109/LCOMM. 2016.2553661. Z.Nan, X.Chi. Research on an uplink carrier sense multiple access algorithm of large indoor visible light communication networks based on an optical hard core point process. Appl. Opt., vol.55, no.36, pp.10392-10399, 2016.