End to End Delay and Energy Consumption in a Two Tier Cluster Hierarchical Wireless Sensor Networks
Abstract
:1. Introduction
2. Related Work
3. WSN Scenario
Cells, Sensors and Cell Head Selection
4. Communication
4.1. Frame Structure
4.2. Slot Assignment for Intra-Cell and Inter-Cell Communications
4.3. The Communication Range
4.4. Inter-Cell Routing and Load Balancing
4.5. Synchronization of the WSN
5. The Intra-Cluster Communication
5.1. Traffic Model
5.2. The Contention Process
6. The Inter-Cluster Communication
6.1. The Traffic Load and the Stability Conditions
6.2. The Embedded Markov Chain
6.3. On the Input Process in the Inter-Cluster Communication
6.4. On the Output Process in the Inter-Cluster Communication
7. End-To-End Delay Analysis
7.1. Sojourn Times in a CH
7.2. Local and Exogenous Traffic
7.3. Delay of a Tagged Data Packet
7.4. Algorithmic Procedure
7.5. Model Validation
8. The Energy Consumption Model
9. Numerical Results
9.1. Delay Analysis
9.2. Energy Consumption
10. Conclusions and Further Work
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
Hexagonal coordinates for a cluster | |
Polar coordinates for a cluster | |
Maximum number of rings in the WSN area | |
Minimum range of intra-cell communication | |
Minimum range of inter-cell communication | |
Total number of sensors or motes in the WSN area | |
Total number of members per cluster | |
Number of slots per sub-frame | |
Number of mini-slots per slot | |
Number of slots per sub-frame | |
Number of mini-slots per slot | |
Number of slots per Combi-Frame | |
Number of mini-slots per Combi-Frame | |
Time duration of the mini-slot | |
Time duration of the mini-slot | |
Time duration of the sub-frame | |
Time duration of the sub-frame | |
Time duration of the Combi-Frame | |
Poisson arrival rate of data packets per sensor | |
Probability a sensor becomes active during one mini-slot | |
PGF of the input process at a CH | |
PGF of the output process after a slot | |
PGF of the arrival data packets at CH during slot i | |
PGF of the departure process at a CH after a slot | |
Normalized traffic load at any CH of ring k |
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Sector | Condition | Axes | Condition |
---|---|---|---|
0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | ... | |
---|---|---|---|---|---|---|---|---|---|---|---|
0 | 0 | ||||||||||
1 | 1 | 3 | |||||||||
2 | 4 | 7 | 12 | ||||||||
3 | 9 | 13 | 19 | 27 | |||||||
4 | 16 | 21 | 28 | 37 | 48 | ||||||
5 | 25 | 31 | 39 | 49 | 61 | 75 | |||||
6 | 36 | 43 | 52 | 63 | 76 | 91 | 108 | ||||
7 | 49 | 57 | 67 | 79 | 93 | 109 | 127 | 147 | |||
8 | 64 | 73 | 84 | 97 | 112 | 129 | 148 | 169 | 192 | ||
9 | 81 | 91 | 103 | 117 | 133 | 151 | 171 | 193 | 217 | 243 | |
⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋱ |
1 | 1 | 3 | |
2 | 0 | 4 | |
2 | 1 | 7 | |
2 | 2 | 12 | |
3 | 0 | 9 | |
3 | 1 | 13 | |
3 | 2 | 19 | |
3 | 3 | 27 | |
4 | 0 | 16 | |
4 | 1 | 21 | |
4 | 2 | 28 | |
4 | 3 | 37 | |
4 | 4 | 48 | |
5 | 0 | 25 | |
5 | 1 | 31 | |
5 | 2 | 39 | |
5 | 3 | 49 | |
5 | 4 | 61 | |
5 | 5 | 75 | |
6 | 0 | 36 | |
6 | 1 | 43 | |
6 | 2 | 52 | |
6 | 3 | 63 | |
6 | 4 | 76 | |
6 | 5 | 91 | |
6 | 6 | 108 | |
⋮ | ⋮ | ⋮ | ⋮ |
-- | -- | 9 | |
-- | -- | 6 | |
-- | -- | 5 | |
-- | -- | 9 | |
-- | -- | 8 | |
-- | -- | 3 | |
-- | -- | 2 | |
-- | -- | 6 | |
-- | -- | 5 | |
-- | -- | 10 | |
-- | -- | 7 | |
-- | -- | 6 | |
-- | -- | 4 | |
-- | -- | 3 |
Ring k | |||||||||
---|---|---|---|---|---|---|---|---|---|
0 (1) | 1 (6) | 2 (12) | 3 (18) | 4 (24) | 5 (30) | 6 (36) | 7 (42) | ... | |
0 | 1 (sink) | ||||||||
1 | 1 + 6 | 1 | |||||||
2 | 1 + 18 | 3 | 1 | ||||||
3 | 1 + 36 | 6 | 1 | ||||||
4 | 1 + 60 | 10 | 1 | ||||||
5 | 1 + 90 | 15 | 1 | ||||||
6 | 1 + 126 | 21 | 1 | ||||||
7 | 1 + 168 | 28 | 1 | ||||||
⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋮ | ⋱ |
RING | CH | ||
---|---|---|---|
4 | -- | -- | |
-- | -- | ||
-- | -- | ||
-- | -- | ||
-- | -- | ||
3 | -- | -- | |
-- | -- | ||
-- | -- | ||
-- | -- | ||
2 | -- | -- | |
-- | -- | ||
-- | -- | ||
1 | -- | -- | |
-- | -- |
0 | 363 | 364 | (63, 0) | 63 | - | - | - | - | - |
1 | 51 | 364 | (10, 3) | 51 | 0.8254 | - | - | - | - |
2 | 18 | 361 | (3, 1) | 16 | 0.8552 | 0.2850 | - | - | - |
3 | 9 | 370 | (2, 1) | 13 | 0.6967 | 0.2903 | 0.1161 | - | - |
4 | 5 | 366 | (2, 1) | 13 | 0.6456 | 0.2905 | 0.1506 | 0.0645 | - |
5 | 3 | 364 | (2, 1) | 13 | 0.5813 | 0.2712 | 0.1550 | 0.0871 | 0.0387 |
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Casares-Giner, V.; Inés Navas, T.; Smith Flórez, D.; Vargas Hernández, T.R. End to End Delay and Energy Consumption in a Two Tier Cluster Hierarchical Wireless Sensor Networks. Information 2019, 10, 135. https://doi.org/10.3390/info10040135
Casares-Giner V, Inés Navas T, Smith Flórez D, Vargas Hernández TR. End to End Delay and Energy Consumption in a Two Tier Cluster Hierarchical Wireless Sensor Networks. Information. 2019; 10(4):135. https://doi.org/10.3390/info10040135
Chicago/Turabian StyleCasares-Giner, Vicente, Tatiana Inés Navas, Dolly Smith Flórez, and Tito Raúl Vargas Hernández. 2019. "End to End Delay and Energy Consumption in a Two Tier Cluster Hierarchical Wireless Sensor Networks" Information 10, no. 4: 135. https://doi.org/10.3390/info10040135
APA StyleCasares-Giner, V., Inés Navas, T., Smith Flórez, D., & Vargas Hernández, T. R. (2019). End to End Delay and Energy Consumption in a Two Tier Cluster Hierarchical Wireless Sensor Networks. Information, 10(4), 135. https://doi.org/10.3390/info10040135