RETRACTED: A Comprehensive Survey of Energy-Efficient MAC and Routing Protocols for Underwater Wireless Sensor Networks
Abstract
:1. Introduction
Motivation and Contribution
- Based on energy efficiency, we assessed several MAC and routing protocols in this study for which the process of sending and received data packets from source to destination is shown in Figure 3 for the better understanding of the readers.
- On the basis of routing techniques, we proposed a new classification of current E2RPs that is specially tailored for UWSNs.
- We explore the key ideas, guiding principles, benefits, and drawbacks of different proposed works, and offer a comparative analysis of routing algorithms with also providing a reliable cooperative routing strategies for UWSNs in terms of energy efficiency.
2. Characteristics of UWSNs Transmission
3. Challenges for Designing MAC Protocols in UWSNs
3.1. Restricted Bandwidth
3.2. Variabiity in Propogation Delays
3.3. Presence of Different Noise Sources
3.4. Power Consumption
3.5. Doppler Spread
3.6. Synchronization
3.7. Data Aggregation
4. Classification of Energy Efficient MAC Protocols for UWSNs
4.1. Frequency Domain
4.1.1. Frequency Division Multiple Access (FDMA)-Based MAC Protocol
4.1.2. Code Division Multiple Access (CDMA)-Based MAC Protocol
4.1.3. Time Division Multiple Access (TDMA)-Based MAC Protocol
- A.
- Efficiency Reservation (ER-MAC)
- B.
- Spatial Temporal (ST MAC)
- C.
- Graph Coloring MAC (GC-MAC)
- D.
- Depth-Based Layering MAC (DL MAC)
4.2. Hybrid-Based Protocols
4.2.1. Energy-Efficient Reliable and Cluster-Based Adaptive MAC (ERCA-MAC)
4.2.2. Underwater Acoustic Multi-Channel MAC (UAMC-MAC)
4.2.3. Preamble-MAC (P-MAC)
4.2.4. Hybrid-MAC (H-MAC)
4.3. Bandwidth
4.3.1. Handshaking-Based
4.3.2. Random Access-Based
- A.
- Carrier sense multiple access (CSMA)
- B.
- ALOHA
- (i)
- Slotted-ALOHA (S-ALOHA)
- (ii)
- Pure-ALOHA (P-ALOHA)
- (iii)
- ALOHA with carrier sense (ALOHA-CS)
- (iv)
- ALOHA with advance notification (ALOHA-AN)
- (v)
- Buffered ALOHA protocol
- (vi)
- Slotted carrier sense ALOHA (Slotted_CS_ALOHA)
- (vii)
- Variable interval ALOHA (VI-ALOHA)
- (viii)
- Learning-ALOHA (L-ALOHA)
- (ix)
- Saving time slotted carrier sense ALOHA (ST-Slotted–CS_ALOHA)
- (x)
- Modified-Slotted-ALOHA
- (xi)
- Slotted-Buffering-ALOHA
- (xii)
- Buffering_Slotted_ALOHA
- (xiii)
- ALOHA by collision avoidance and ALOHA by prior notification (Aloha-CA, Aloha-AN)
- (xiv)
- Tone-Lohi (T-Lohi)
5. Energy-Efficient Routing Protocols (E2RPs) for UWSNs
5.1. Bio-Inspired Energy-Efficient Routing Protocols (Bio-Inspired E2RPs)
5.1.1. Firefly Mating Optimization Routing Protocol (FFRP)
5.1.2. Memetic Flower and Energy-Efficient Pollination Routing Protocol (MFE2PRP)
5.1.3. Comparison of Bio-Inspired Energy-Efficient Routing Protocols
5.2. Cluster-Based Energy-Efficient Routing Protocols (C-b E2RPs)
5.2.1. Energy-Efficient Routing Clustering Approach for UWSNs (E2RCA-UWSNs)
5.2.2. Energy-Efficient Grid-Based Clustering Routing Protocol (E2GRCP)
5.2.3. Energy-Efficient Layer-Based Routing Protocol (E2LRP)
5.2.4. Energy-Efficient Multi-Layer Cluster-Based Routing Protocol (MCE2RP)
5.2.5. Energy-Efficient Adaptive Clustering Algorithm (E2ACA)
5.2.6. Energy-Efficient Grid-Based Clustering Routing Protocol (E2GCRP)
5.2.7. Comparison of Cluster-Based Energy-Efficient Routing Protocols (C-bE2RPs)
5.2.8. Cooperative Reliability-Based Energy-Efficient Routing Protocols (CO-RE2RPs)
5.3. Reliable Physical Distance-Based Energy-Efficient Routing Protocol (RPDE2RP)
5.3.1. Reliable Energy-Efficient Routing Protocol (R-E2RP)
5.3.2. Cooperative Energy-Efficient Routing Protocol (CO-E2RP)
5.3.3. Energy-Efficient Multi-Path Grid-Based Geographic Routing Protocol (E2MG2RP)
5.3.4. Energy-Efficient Cooperative Opportunistic Routing Protocol (E2CORP)
5.3.5. Cooperative Energy-Efficient Routing Protocol (CO-E2RP)
5.3.6. Reliable Energy-Efficient Cross-Layer Routing Protocol (RE2CRP)
5.3.7. Reliable Multi-Path Energy-Efficient Routing Protocol (RME2RP)
5.3.8. Energy-Efficient Localization-Based Routing Protocol (E2LRP)
5.3.9. Comparison of Cooperative Reliability-Based Energy-Efficient Routing Protocols (CO-RE2RPs)
5.4. Reinforcement Learning Energy-Efficient Routing Protocols (RL-Based E2RPs)
5.4.1. Energy-Efficient Delay-Tolerant Q-Learning-Based Routing Protocol (E2DTQRP)
5.4.2. Q-Learning-Based Energy-Efficient Lifetime Aware Routing Protocol (QE2LARP)
5.4.3. Q-learning-Based Energy-Efficient Routing Protocol (QL-E2RP)
5.4.4. Comparison of Reinforcement Learning Energy-Efficient Routing Protocols
5.4.5. Depth-Based Energy-Efficient Routing Protocols (D-b-E2RPs)
5.4.6. Energy-Efficient Depth-Based Routing Protocol (E2D-bRP)
5.4.7. Enhanced Energy-Efficient Depth-Based Routing Protocol (E3D-bRP)
5.4.8. Comparison of Depth-Based Energy-Efficient Routing Protocols (D-b E2RPs)
6. Current Problems and Research Difficulties
6.1. Unstable Links
6.2. Privacy and Security
6.3. Problem of Hotspot
6.4. QoS with Routing
7. Conclusions
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
WSN | Wireless sensor networks | ALOHA-CA | ALOHA with carrier sense |
UWSNs | Underwater wireless sensor networks | ALOHA-CS | ALOHA with collision avoidance |
TWSNs | Terrestrial wireless sensor networks | EI-ALOHA | Equal interval ALOHA |
UWASNs | Underwater acoustic sensor networks | L-ALOHA | Learning ALOHA |
UW | Underwater | P-ALOHA | Pure ALOHA |
MAC | Media access control | S-ALOHA | Slotted ALOHA |
ACK | Acknowledgment | Slotted-CS-ALOHA | Slotted carrier sense ALOHA |
CS | Carrier sense | ST-Slotted-CS-ALOHA | Saving time slotted carrier sense ALOHA |
CTS | Clear-to-send | VI-ALOHA | Variable interval ALOHA |
RTS | Request-to-send | T-LOHI | Tone-LOHI |
CDMA | Code division multiple access | OP | Operating system |
TDMA | Time division multiple access | E2RPs | Energy-efficient routing protocols |
FDMA | Frequency division multiple access | FFRP | Firefly mating optimization routing protocol |
CSMA | Carrier sense multiple access | MFPRP | Memetic flower and energy-efficient pollination routing protocol |
ERCA-MAC | Energy-efficient reliable and cluster-base adaptive MAC | C-b | Cluster-based |
H-MAC | Hybrid-MAC | CH | Cluster head |
KHZ | Kilo-hertz | CM | Cluster members |
MACA | Multiple access collision avoidance | E2GRCP | Energy-efficient grid-based cube routing protocol |
PN | Pseudo noise | E2LRP | Energy-efficient layer-based routing protocol |
RF | Radio frequency | MCE2RP | Energy-efficient cluster-based multi-layer routing protocol |
P-MAC | Preamble MAC | E2ACA | Energy-efficient adaptive clustering algorithm |
UAMC-MAC | Underwater acoustic multi-channel MAC | E2GCRP | Energy-efficient grid-based clustering routing protocol |
UW Sink | Underwater sink | CO-RE2RPs | Cooperative reliability-based energy-efficient routing protocols |
ER-MAC | Efficiency reservation MAC | RPDE2RP | Reliable physical distance-based energy-efficient Routing protocol |
GC-MAC | Graph coloring MAC | CO-E2RP | Cooperative and energy-efficient routing protocol |
DL-MAC | Depth Layering MAC | E2MG2RP | Energy-Efficient Multi-Route Grid-based Geographic Routing Protocol |
LO-MAC | Latency-Optimized MAC | E2CORP | Energy Efficient Cooperative Opportunistic Routing Protocol |
ST-MAC | Spatial-Temporal MAC | RE2CRP | Reliable Energy-Efficient Cross-Layer Routing Protocol |
FF-MAC | Fitness-Function-based MAC | RME2RP | Reliable Multi-Route Energy-Efficient Routing Protocol |
CSMA/CA | Carrier-Sense-Multiple-Access/Collision-Avoidance | E2LRP | Energy-Efficient Localization-based Routing Protocol |
ALOHA-AN | ALOHA with Advance-Notification | RL | Reinforcement Learning |
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Ref. No | Year | Key Contribution | Scope | Limitation |
---|---|---|---|---|
[35] | 2016 | Provides a comprehensive review on routing protocols for UWASNs | All the routing protocols have been classified into different groups according to their characteristics and routing algorithms, such as the non-cross-layer design routing protocol, the traditional cross-layer design routing protocol, and the intelligent algorithm-based routing protocol. | Energy-efficiency was not the core focus of this work. |
[36] | 2016 | Provides a comparative analysis of routing protocols based on node mobility for UWSNs | This article focuses on routing protocols that were based on node mobility with a focus on analytical performance of routing protocols. | Energy-efficiency was not the core focus of this work. |
[37] | 2017 | Provides a comprehensive survey on localization based and localization-free routing protocols. | Covers routing issues and in its associated protocols for UWSNs. | Energy-efficiency was not the core focus of this work. |
[38] | 2019 | Covers research on two enabling technologies for underwater communication: (i) Acoustic communication (ii) Magneto inductive communication, their channel propagation characteristics, challenges, and proposals to overcome these challenges. | Provides a comprehensive survey on existing works related to physical layer in a network for underwater communication using acoustic and magneto inductive mediums of communication. | Energy-efficiency was not the core focus of this work. |
[39] | 2019 | Provides a comprehensive overview of latest research projects and emerging topics in underwater communication with a comparative analysis of acoustics, optical and electromagnetic communication for UWSNs. | Highlights related issues of each enabling technology with future prospects and provides recommendations for next generation enabling technologies in UWSNs. | Energy-efficiency was not the core focus of this work. |
[40] | 2020 | This work aims to provide a thematic taxonomy to classify existing literature on UWSNs. | Discusses various aspects of UWSNs, such as: simulation platforms, network elements, enabling technologies, routing protocols, security and its applications. | Reviews energy-efficient routing protocols for network layer only and does not review energy-efficient techniques in other network layers for UWSNs. |
Characteristics | Optical Communication | Acoustical Communication | RF Communication | References |
---|---|---|---|---|
Bandwidth | From 10 to 150 (MHz) | ∼1 Hz | ∼1 kHz | [6] |
Frequency Band | ∼1014–1015 (Hz) | ∼1 kHz | ∼1 MHz | [9] |
Speed of propagation. m/s | m/s | m/s | m/s | [7,12] |
Signal Attenuation | High | Low | Very High | [12] |
The Size of Antenna | 0.1 m | 0.1 m | 0.5 m | [13] |
Operational Range | From 10 m to 50 m | 1000 m | 10 m | [14] |
Transmission Range | From 10 m to 100 m | 1500 m | 30 m | [14] |
Attributes | Low Power Consumption High Data Rate Low Equipment Cost | High Power Consumption Medium Data Rate High Equipment Cost | High Power Consumption Medium Data Rate High Equipment Cost | [15] |
Features | UWSNs | TWSNs | References |
---|---|---|---|
Localization | GPS Non-Supportive | GPS Supportive | [17] |
Stability of Links | Unstable | Stable | [23] |
Transmission Range | Up To 2 km | 10–100 M | [27] |
Transmission Speed | m/s | m/s | [30] |
Energy Consumption | High | High | [33] |
Data Rate | Low Data Rate | High Data Rate | [34] |
Bandwidth | Limited | Limited | [48] |
Bit Per Second Rates | Low | High | [49] |
Transmission Delays | Extended and Flexible Transmission Delays | Small and Steady Transmission Delays | [49] |
Noise | High-Influence | Low-Influence | [52] |
Collective Association Technique | Acoustic Signals | Radio Signals | [53] |
Protocol | Author/Year | Topology | Energy-Efficiency | Synchronization |
---|---|---|---|---|
ERMAC | (Nguyen/2008) | Centralized | Very High | Yes |
ST-MAC | Hsu/2009 | Centralized | High | No |
GC-MAC | Alfouzan/2019 | Distributed | Low | No |
DL-MAC | Alfouzan/2019 | Distributed | Low | No |
Protocol | Collision Rat | Network Topology | Simultaneous Transmission | Throughput | Power Consumption | Propagation Delay |
---|---|---|---|---|---|---|
UAMC-MAC | Medium | Ad-hoc, stationary | Yes, during one session | High | Medium | Low |
ERCA-MAC | Low | Cluster, stationary | No | Medium | Low | Medium |
P-MAC | High | Ad-hoc, stationary | Yes | High | High | Low |
H-MAC | Medium | Ad-hoc, stationary | Yes | High | Low | Low |
Factors | Frequency Dominion | Bandwidth |
---|---|---|
Scheduling | Central | Spread |
Channel usage | Low | High |
Network resource sharing | Reserved for a certain user | On demand |
Appropriate network load | Low | High |
Appropriate node density | Low | High |
Appropriate network size | Small | Big |
Ratio of collision | Low | High |
Throughput | Low | High |
Energy consumption | Low | High |
Propagation delay | High | Low |
Features | CSMA | ALOHA |
---|---|---|
Presentation in WSNs | Unchanging | Unchanging |
Presentation in UWSNs | Not unchanging | Unchanging |
Utilization of channel | High | Low |
Limitations of optimization | The transporter intellect is starting point which is attuned | adjust the unpleasant back-off time |
Energy ingesting | Low | High |
Rate of Collision | Low | High |
Transmission delay | Actual high in Underwater | High |
Left over nodes of the network | Average | Lesser |
Protocol/Year | Objective | Need of Localization | Implementation | Strategy of Energy Efficiency | Energy Efficiency | Advantages | Disadvantages |
---|---|---|---|---|---|---|---|
FFRP/2020 | Find reliable and stable routing | Yes | Simulation | Balancing communicating data packets traffic | High | Increased connection quality | Computational cost is high |
MFPRP/2020 | Increased QoS | Yes | Simulation | Optimal route selecting for communicating data packet transmission | Low | Prevents sending duplicate data packets | Performance in terms of energy consumption is not better |
Protocol/Year | Position of a Node | Need of Localization | Change for New Cluster head | Energy Efficiency | Advantages | Disadvantages |
---|---|---|---|---|---|---|
E2RU-CA/2015 | Layer-based | No | No | High | Reduce energy consumption | End-to-end delay of the network is high |
E2GRCP/2016 | Random and grid cube-based | Yes | Yes | Medium | Finds the shortest route to sink node | Overhead control is high |
E2LRP/2018 | Layer-based | No | Yes | Low | Balancing the load | Overhead high routing and network congestion |
E2ACA/2018 | Layer-based | Yes | No | Low | Load of first layer communicating nodes is very low | Control data packets exchange is high |
MCE2RP/2019 | Layer-based | No | No | High | Load of first layer communicating nodes is low | Cluster head node is not changed during in communication |
E2GCRP/2019 | Grid-based | Yes | No | High | Throughput performance of a repeater node is high | Early end of the cluster repeater node and the cluster head |
Protocol/Year | Selection of a Repeater Node | Optimality of Repeater Node Selection | Total Number of Repeater Nodes in Every Level | Control Data Packets | Mobility and Sink | Need of Localization | Energy Efficiency | Advantages | Disadvantages |
---|---|---|---|---|---|---|---|---|---|
RE2RP/2014 | Distance from receiver node, link quality and remaining energy | Yes | Single | Yes | Static and multi | Yes | Low | End-to-end delay of the network is reduced | Control data packets are overhead |
R-E2RP/2014 | Transmission delay of communicating data packet | Yes | Single | Yes | Static and single | No | Medium | Communicating data packet sending is possible with minimum delay of transmission | When owing the lack of multi-route, the R-E2RP do not achieved full reliability of the network |
COO-E2RPUWSN/2017 | Capacity of channel and SNR | Yes | Multiple | No | Static and multiple | Yes | Moderate | Data packet forwarding overlapping is none | Infrastructure cost is high |
E2MG2RP/2016 | Remaining energy | Yes | Single | Yes | Static and single | Yes | High | Balancing the load between the sensor Rx nodes | The whole network is disturbed from the failure of the gateway node |
E2COOORP/2017 | Fuzzy logic and fitness value | Yes | Multiple | No | Static and single | No | Moderate | Shortest path finding for routing | High delay, in sparse network the performance of E2COOORP is poor |
COO-E2ORS/2018 | The distance from sensor Rx node is minimum | No | Single | Yes | Static and single | No | Medium | Data packet delivery ratio is increased | End-to-end delay of the network is high |
RE2CRP/2018 | Distance between present and neighboring node, remaining energy, level of the node and neighboring nodes remaining energy | Yes | Single | Yes | Static and multi | No | High | Data packet redundancy is reduced | Due to overhearing no need of energy efficiency |
RME2RP/2018 | Link quality and remaining energy | No | Multiple | Yes | Static and multi | No | High | Data packet delivery is reliable | Data packet delivery is redundant |
E2LRP/2018 | Remaining energy and information of location | Yes | Single | Yes | Static and multi | Yes | Very High | E2LRP achieves better performance in terms of energy efficiency | Overhead is increased and the ratio of data packet delivery is low |
Protocol/Year | Objectives | State Space | Action Space | Reward | Need of Localization | Number of Sinks | Energy Efficiency | Advantages | Disadvantages |
---|---|---|---|---|---|---|---|---|---|
E2DTRPQ/2010 | Adaptability increased and reduced energy consumption | Individual Data packet | Forwarding data packet | Remaining energy and density of the node | No | Single | Moderate | Overhead control is reduced | The performance of E2DTRPQ in dense network is not suitable |
QE2LARP/2010 | Network lifetime is increased with distributed remaining energy | Individual Data packet | Forwarding data packet | Probabilities of transmission and function value | No | Single | High | Increased the lifetime of the network | A lot of overhearing |
QL-E2DRP/2019 | With the decrease of transmission delay increase lifetime of the network | Sensor Rx node position | Next Node | Distance of transmission | Yes | Single | High | Finds optimal route from Tx anchor node to sensor Rx node | Stability of link is not considered during in communication |
Protocol/Year | Control Data Packets | Need of Localization | Strategy of Energy Efficiency | Application Scope | Advantages | Disadvantages | Protocol/Year | Control Data Packets | Need of Localization |
---|---|---|---|---|---|---|---|---|---|
E2DBRP/2012 | Yes | No | Forwarder node in the network is selected on the basis of remaining energy | Military surveillance and application of monitoring | Redundant communicating data packet transmission is reduced | Medium nodes of depth are early losing | E2DBRP/2012 | Yes | No |
E3DBRP/2016 | Yes | No | A node in the network is selected as a forwarder node, which is closed to sink node and have a high remaining energy | Application scope of E3DBRP is time critical | During the transmission of medium nodes of depth, the network lifetime is increased | Throughput of the network is low | E3DBRP/2016 | Yes | No |
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Khan, Z.U.; Gang, Q.; Muhammad, A.; Muzzammil, M.; Khan, S.U.; Affendi, M.E.; Ali, G.; Ullah, I.; Khan, J. RETRACTED: A Comprehensive Survey of Energy-Efficient MAC and Routing Protocols for Underwater Wireless Sensor Networks. Electronics 2022, 11, 3015. https://doi.org/10.3390/electronics11193015
Khan ZU, Gang Q, Muhammad A, Muzzammil M, Khan SU, Affendi ME, Ali G, Ullah I, Khan J. RETRACTED: A Comprehensive Survey of Energy-Efficient MAC and Routing Protocols for Underwater Wireless Sensor Networks. Electronics. 2022; 11(19):3015. https://doi.org/10.3390/electronics11193015
Chicago/Turabian StyleKhan, Zahid Ullah, Qiao Gang, Aman Muhammad, Muhammad Muzzammil, Sajid Ullah Khan, Mohammed El Affendi, Gauhar Ali, Imdad Ullah, and Javed Khan. 2022. "RETRACTED: A Comprehensive Survey of Energy-Efficient MAC and Routing Protocols for Underwater Wireless Sensor Networks" Electronics 11, no. 19: 3015. https://doi.org/10.3390/electronics11193015
APA StyleKhan, Z. U., Gang, Q., Muhammad, A., Muzzammil, M., Khan, S. U., Affendi, M. E., Ali, G., Ullah, I., & Khan, J. (2022). RETRACTED: A Comprehensive Survey of Energy-Efficient MAC and Routing Protocols for Underwater Wireless Sensor Networks. Electronics, 11(19), 3015. https://doi.org/10.3390/electronics11193015