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Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu,...

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Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Dis tribution Xiaobing Wu, Guihai Chen and Saj al K. Das Parallel and Distributed Systems 2008
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Page 1: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution

Xiaobing Wu, Guihai Chen and Sajal K. Das

Parallel and Distributed Systems 2008

Page 2: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Outline Introduction

Energy Hole Problem Analysis of the Nonuniform Node Distribution Str

ategy Impossibility of Balanced Energy Depletion Possibility of Subbalanced Energy Depletion

Novel Nonuniform Node Distribution Strategy and q-switch Routing

Simulation

Page 3: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Energy Hole Problem in Sensor Network

Energy hole: Unbalanced energy utilization

Some nodes deplete their power more quickly

Sink

Energy hole

Energy hole

Sink

Energy hole

Sink

Page 4: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Related Work

Approaches that have been proposed to mitigate the energy hole problem Sink mobility Multiple sinks Hierarchical deployment

Clustering Non-uniform initial energy budgets Non-uniform node distribution

The objective of this paper

Page 5: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Contributions of this paper

1. Prove that balanced energy utilization is impossible for many-to-one traffic pattern.

2. Prove that subbalanced energy utilization is possible

3. Propose a nonuniform node deployment strategy

4. Propose a q-switch routing

Page 6: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Assumptions and Network Model

Assume that all the nodes are deployed in a circular area with a radius R

The width of each corona is 1 unit length Maximum transmission range is 1 unit length Nodes belonging to a corona will forward data generated by both themselves and nodes from coronas

{ | }iC i R

{ | 1 }jC i j R

Page 7: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Assumptions and Network Model

Assume that each sensor node generates and sends L bits of data per unit time

Regular reporting The initial energy of each sensor is Sending 1 bit costs e1 units of energy

Receiving 1 bit costs e2 units of energy

Page 8: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Energy Consumption

Ni : the number of nodes in Ci

Ei: the energy consumed per time unit

by nodes in Ci

Page 9: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Balanced v.s. Subbalanced

Page 10: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Impossibility of Balanced Energy Depletion

Proof

If balanced energy depletion is achieved, then

Average energy consumption per node

Page 11: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Impossibility of Balanced Energy Depletion

Page 12: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Subbalanced Energy Depletion

Proof: If the network achieves the subbalanced energy depletion

Average energy consumption per node

Page 13: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Subbalanced Energy Depletion

Page 14: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Subbalanced Energy Depletion

the number of nodes in coronas increases in geometric progression with a common ratio of q

Page 15: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Nonuniform Node Distribution-- Subbalanced Energy Depletion

81648144

q=3

Page 16: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Nonuniform Node Distribution-- Subbalanced Energy Depletion

Proof

Page 17: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Nonuniform Node Distribution-- Subbalanced Energy Depletion

Page 18: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Nonuniform Node Distribution Strategy

The number of nodes in Ci

Subbalanced Energy Depletion

Page 19: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Nonuniform Node Distribution Strategy

Page 20: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

q-Switch Routing

Page 21: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Simulation

Page 22: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.
Page 23: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.
Page 24: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.
Page 25: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.
Page 26: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.
Page 27: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.
Page 28: Avoiding Energy Holes in Wireless Sensor Network with Nonuniform Node Distribution Xiaobing Wu, Guihai Chen and Sajal K. Das Parallel and Distributed Systems.

Conclusion

This paper explored the theoretical aspects of the nonuniform node distribution strategy in WSNs.

Although it is impossible to achieve balanced energy depletion, subbalanced energy depletion in the network is possible.


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