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An Energy-Efficient and Low-Latency Routing Protocol for Wireless Sensor Networks Antonio G. Ruzzelli, Richard Tynan and G.M.P. O’Hare Adaptive Information Cluster, Smart Media Institute Department of Computer Science University College Dublin Proceedings of the 2005 Systems Communications (ICW’05) Chien-Ku Lai
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Outline Introduction Related Work Scheduling in Merlin Experimentation and Results Conclusions and Future Work
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Introduction - Wireless Sensor Networks (WSNs) Components: One or more base-stations Many sensor nodes Constraints on sensor nodes: Energy Storage capacities Data processing
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Introduction - Wireless Sensor Networks (WSNs) (cont.) Applications: Ecosystem monitoring Emergency operation Intelligence detection of ambient conditions Intrusion detection Localization of objects or animals Medical monitoring Structural monitoring Surveillance
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Introduction - Wireless Sensor Networks (WSNs) (cont.) Major form of energy wastage: Idle listening Collision Transmissions overhead Overhearing
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Introduction - about this paper MERLIN is presented Mac Energy efficient, Routing and Localization INtegrated Combination of TDMA and CSMA
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Related Work SMAC TMAC DMAC
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SMAC Uses a coordinated adaptive sleeping mechanism The main drawbacks: Latency RTS/CTS mechanism The increase of energy consumption when some nodes join the network
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TMAC An improvement to the SMAC protocol Uses an overhearing mechanism RTS/CTS collisions are very high Latency is still present
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DMAC Incorporates a data gathering tree to reduce the latency The main drawback: It is suitable only for unidirectional communication flow to a single gateway
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Scheduling in Merlin
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The purpose of MERLIN scheduling is to allocate time-zone slots Nodes in the same time-zone use the same slot to transmit The timing of the slots prevents most collisions
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Scheduling in Merlin V-table X-table
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Scheduling in Merlin - V-scheduling 123456789 Gateway
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Scheduling in Merlin - X-scheduling 123456789 Gateway
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Experimentation and Results 1. Network setup time 2. Network lifetime 3. Latency of messages
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Simulation environment OmNet++ EYES WSNs testbed Number slot /frame = 4 DataRate = 115200 bits/sec Contention period = 30ms DataSize = 16+8 Bytes (data + 3 bytes preamble + starting code)
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Simulation environment (cont.) Nodes with the same colors are in the same zone (same hop count number)
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Network setup time
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Network lifetime
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Latency of messages (1/4) X-scheduling V-scheduling
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Latency of messages (2/4) X-scheduling V-scheduling
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Latency of messages (3/4) X-scheduling V-scheduling
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Latency of messages (4/4) X-scheduling V-scheduling
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Latency of messages - Comparison
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Conclusions and Future Work
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Conclusions The absence of handshake mechanisms like RTS/CTS can considerably reduce the latency of messages Idle listening is reduced by the TDMA approach CSMA technique increases the scalability
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Conclusions (cont.) X scheduling is suitable for applications in which latency is a tighter constraint V-scheduling performs better than the X-scheduling in terms of percentage of collisions and network lifetime
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Future Work Perform more experimentation to compare MERLIN scheduling with other WSN protocols Clarify the impact of our design decisions with mobile nodes
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Questions? Thank you.
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