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MiSARN 2019: Mission-Oriented Wireless Sensor, UAV and Robot Networking

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截稿日期:
2019-01-18 Extended
通知日期:
2019-02-11
会议日期:
2019-04-29
会议地点:
Paris, France
届数:
1
浏览: 17384   关注: 2   参加: 0

会伴指数 (CP-I)

36.9 / 100
全站第 5,599 名 / 共 5,693 个会议 · 前 99%

机器人与控制 第 458 / 470 电气与电子工程 第 505 / 511 网络与通信 第 851 / 865

学术认可 (35%) 无数据 —— 按中性基准 50 分计入 —
投稿选择性 (20%) 无数据 —— 按中性基准 50 分计入 —
会议传承 (20%)
19
社区关注 (10%)
19
资料公开度 (15%)
25

用到的输入: 有据可查的届次:1 · 在会伴关注它的研究者:2 人 · 过去 24 个月打开过本页的研究者:2 人

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主办方认领本会议后,可直接在这一页补上;分数每晚重算。如何提升这个分数

置信度 45% —— 分数中有多大比例来自实际观测到的数据,而不是中性基准。 这个分数是怎么算出来的 · 查看完整榜单 · 算法版本 1.1 · 算于 2026-10-05

征稿

MiSARN 2019 (Mission-Oriented Wireless Sensor, UAV and Robot Networking) is an academic conference held in Paris, France on 2019-04-29. The paper submission deadline is 2019-01-18 (extended). Acceptance notifications are sent on 2019-02-11.

Over the last two decades, the recent and fast advances in inexpensive sensor technology and wireless communications has made the design and development of large-scale wireless sensor networks (WSNs) and cyber-physical systems (CPS) cost-effective and appealing to a wide range of mission-critical situations, including civilian, natural, industrial, and military applications, such as health and environmental monitoring, seism monitoring, industrial process automation, and battlefields surveillance. Some of these mission-critical applications include the utilization of ground sensor, robot and UAV networks, which are the confluence point where the traditional fields of wireless communications, robotics and control theory meet. Autonomous cooperative systems, made of intelligent devices (such as robots and UAVs), may deploy, repair and relocate sensors to improve coverage, build routes and fix network partition to ensure data communication, change network topology to shape routing patterns and balance energy consumption, and respond to reported events in a timely and effective manner. The benefits are limited only by imagination. As an emerging field, the 5G architecture foresees explicitly the usage of these specialized systems and offer new networking techniques, by which they can fully exploit their particularities and potentials. Starting from the tradition of MiSeNet and WiSARN workshops, IEEE MiSARN 2018 will aim to provide a forum for participants from academia and industry to discuss topics in mission-oriented WSNs, cyber-physical systems and UAV/Robot networking, combining both research and practice. IEEE MiSARN 2018 will serve as incubator for scientific communities that share a particular research agenda in the area of the workshop’s topics. IEEE MiSARN 2018 will provide its participants with opportunities to understand the major technical and application challenges of mission-oriented WSNs, cyber-physical systems and UAV/Robot networking as well as exchange and discuss scientific and engineering ideas related to their architecture, protocol, algorithm, and application design, in particular at a stage before they have matured to warrant conference/journal publications. IEEE MiSARN 2018 will seek papers that present novel theoretical and practical ideas as well as work in-progress, which will lead to the development of solid foundations for the design, analysis, and implementation of energy-efficient, reliable, and secure mission-oriented WSN applications and cyber-physical systems. Topics of Interest Possible topics include, but are not limited to: UAV and robot networks in 5G systems Theoretical foundations, modeling and analysis of mission-oriented WSNs System design, implementation, and evaluation of mission-oriented WSNs Medium access control and scheduling in mission-oriented WSNs Software architectures for mission-oriented WSNs Self-organization, self-configuration, and energy efficiency in mission-oriented WSNs Topology control, coverage and connectivity issues in mission-oriented WSNs Routing and data dissemination in mission-oriented WSNs In-network data storage and processing in mission-oriented WSNs Sensor database management in mission-oriented WSNs Localization, detection and tracking in mission-oriented WSNs Cryptography, privacy, robustness, security aspects of mission-oriented WSNs Internet and cloud computing, cloud of Things in mission-oriented WSNs Sensor-enabled robots and drones in mission-oriented WSNs Wearable computing and human centricity in mission-oriented WSNs Cyber-physical systems in mission-oriented WSNs Theoretical foundations of Cyber-Physical Systems Signal Processing for Cyber-Physical Systems Mechanism Design for Cyber-Physical Systems Control and Optimization of Cyber-Physical Systems Data Mining and Analytics Applied to Cyber-Physical Systems Game Theory Applied to Cyber-Physical Systems Mobile and Cloud Computing for Cyber-Physical Systems Security of Cyber-Physical Systems Model-Based Design and Verification of Cyber-Physical Systems Testbed design and real-world applications of mission-oriented WSNs Autonomous sensor networks Emergent behavior in robotic systems UAV-aided wireless sensor networks Optimal control of networked robots Robot advanced motion control Modeling and control of fleet of UAVs Autonomic and self-organizing coordination and communication in Robot and UAV networks Sensor-robot and robot-robot coordination Energy-efficient and real-time communication protocols in Robot and UAV networks Distributed control and management for Robot and UAV network deployments Communication protocols for swarms of mobile nodes Map exploration and pattern formation of mobile robots Robot task assignment Biologically inspired communication systems for Robot and UAV networks Software-Defined Aerial Networks Endurance Management Ground sensors to UAVs communication and data gathering Context-awareness and decision making for UAV systems Path planning, and target tracking in UAV networks
由 Angelo Trotta 最后更新于

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