101 research outputs found

    A low Complexity Wireless Gigabit Ethernet IFoF 60 GHz H/W Platform and Issues

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    6 pagesInternational audienceThis paper proposes a complete IFoF system architecture derived from simplified IEEE802.15.3c PHY layer proposal to successfully ensure near 1 Gbps on the air interface. The system architecture utilizes low complexity baseband processing modules. The byte/frame synchronization technique is designed to provide a high value of preamble detection probability and a very small value of the false detection probability. Conventional Reed-Solomon RS (255, 239) coding is used for Channel Forward Error Correction (FEC). Good communication link quality and Bit Error Rate (BER) results at 875 Mbps are achieved with directional antennas

    Multi-hop Transmission in Millimeter Wave WPAN with Directional Antenna

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    Millimeter-wave (mmWave) communications is a promising enabling technology for high rate (Giga-bit) multimedia applications. However, because oxygen absorption peaks at 60 GHz, mmWave signal power degrades significantly over long distances. Therefore, a traffic flow transmitting over multiple short hops is preferred to improve the flow throughput. In this thesis, we first design a hop selection metric for the piconet controller (PNC) to select appropriate relay hops for a traffic flow, aiming to improve the flow throughput and balance the traffic loads across the network. We then propose a multi-hop concurrent transmission (MHCT) scheme to exploit the spatial diversity of the mmWave WPAN by allowing multiple communication links to transmit simultaneously. By deriving the probability that two links can transmit simultaneously as a function of link length, the MHCT scheme is capable of improving spatial multiplexing gain in comparison with the single hop concurrent transmission (SHCT) scheme. We theoretically demonstrate that by properly breaking a single long hop into multiple short hops, the time resource can be utilized more efficiently, thus supporting more traffic flows in the network within the same time interval. In addition, the per-flow throughput is obtained analytically. Extensive simulations are conducted to validate the analysis and demonstrate that the proposed MHCT scheme can significantly improve the average traffic flow throughput

    Wireless Alliance for Testing Experiment and Research (WALTER) Experts Workshop

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    The purpose of the publication is to describe the WALTER experts workshop and related results and findings. The workshop was conducted in Ispra, Varese, Italy from the 2nd to the 3rd of July 2008 at the European Commission JRC facilities. The workshop was organized as part of the FP7 WALTER project, which has the objective of define a networked test bed laboratory to evaluate UltraWideBand (UWB) technology and equipment. The purpose of WALTER workshop was to present and discuss the current regulatory, standardization and research status of UltraWideBand (UWB) technology with special focus on the definition of requirements, methodologies and tools for UWB measurements and testing. The WALTER workshop had the following main objectives: - Identify the main regulatory and standardization challenges for the adoption of UWB in Europe and the world. Support the identification and resolution of conflicting requirements. - Identify the main challenges in the UWB testing and measurements. Describe how the current industrial and research activity could support the resolution of these challenges. - Discuss the future developments like UWB at 60 GHz and innovative interference and mitigation techniques including Detect And Avoid (DAA). A number of international experts in the UltraWideBand field have been invited to participate to this workshop, to encourage bi-directional communication: in one direction to disseminate the information on WALTER project and its activities, in the other direction to collect the input and feedback on the regulatory and standardization work, industrial activity and research studies.JRC.G.6-Sensors, radar technologies and cybersecurit

    Millimeter Wave Cellular Networks: A MAC Layer Perspective

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    The millimeter wave (mmWave) frequency band is seen as a key enabler of multi-gigabit wireless access in future cellular networks. In order to overcome the propagation challenges, mmWave systems use a large number of antenna elements both at the base station and at the user equipment, which lead to high directivity gains, fully-directional communications, and possible noise-limited operations. The fundamental differences between mmWave networks and traditional ones challenge the classical design constraints, objectives, and available degrees of freedom. This paper addresses the implications that highly directional communication has on the design of an efficient medium access control (MAC) layer. The paper discusses key MAC layer issues, such as synchronization, random access, handover, channelization, interference management, scheduling, and association. The paper provides an integrated view on MAC layer issues for cellular networks, identifies new challenges and tradeoffs, and provides novel insights and solution approaches.Comment: 21 pages, 9 figures, 2 tables, to appear in IEEE Transactions on Communication

    Usean gigabitin langaton tiedonsiirto 60 GHz:lla: keilanmuodostus ja mittauksia

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    Usage of wireless communication systems has been growing steadily during the past decades as more and more services and users are starting to utilize various cloud based systems. Need for higher data rates and the exponential increase of users are becoming significant difficulties for the current wireless communication systems. To tackle this problem, frequency bands of several gigahertz have been suggested for the next generation of local and personal communication systems (WLAN/WPAN). The extremely large unlicensed band at 60 GHz is an attractive option to provide multi-gigabit data rates over short distances. However, even at short distances systems have to compensate the poor link budget which is due to increased frequency and bandwidth. To mitigate these losses, highly directional communication with antenna arrays and beamforming is proposed. IEEE 802.11ad standard is one of the most promising millimeter wave standards to offer multi-gigabit data rates for WLAN/WPAN use. In comparison to the legacy IEEE 802.11 standards, the IEEE 802.11ad introduces completely new medium access control (MAC) and physical (PHY) layers due to highly directional communication. This thesis studies the IEEE 802.11ad standard, focusing on the renewed MAC and PHY layers, beamforming mechanisms, and overall performance in a home environment. While previous academic work has included measurements at 60 GHz, these measurements have been limited to laboratory and office areas which do not realistically model an actual end-user environment. Additionally, the measurement equipment in these research papers has not explicitly implemented the IEEE 802.11ad standard. Hence, measurements in this thesis are conducted with a prototype implementing the mandatory parts of the standard resulting in a more thorough realization of the performance. The results indicate that the prototype performs well in a home environment. Overall, theoretical PHY data rates of above 2 Gbps are to be expected in most cases if operated in similar environment
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