A Novel Cross-Layering Power Control Mechanism for AODV †
Abstract
:1. Introduction
2. Background
- Proactive protocols: they are a variation of the link status protocols. They determine their routes to all destinations at the beginning and keep the address information updated through a periodic process of exchange of packets. This allows a great availability of addressing requests, but it generates more signaling traffic, as well as an overload of the network. Each node has an individual routing table, for example, OLSR (Optimized Link State Routing) and DSDV (Destination-Sequenced Distance-Vector Routing) [6].
- Reactive protocols: Derived from protocols by distance-vector, they act on demand [7]. A route discovery process determines the correct route only when it is required by the source node [5]. In this way, it reduces unnecessary signaling traffic. AODV [8] and DSR (Dynamic Source Routing) [9] are part of this group.
- Hybrid protocols: Combine the basic characteristics of the preceding types of protocols into one. At the beginning of the routing, the route is determined proactively, and along with the network changes, the reactive type protocols are used. An example of this type is the TORA (Temporally Ordered Routing Algorithm) protocol [10].
3. Power Control in MANETs
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- Power control focused on the MAC layer, it focuses on sending packets at the minimum power needed such that the SINR in the receiver is only above the predefined threshold for successful transmission.The methods studied have been: contention-based MAC Scheme, Interference-Based MAC Schemes, Scheduling-Based MAC Schemes [14].
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- Power control focused on Network layer: Power control that operates at the MAC layer does not give routing protocols the opportunity of choosing optimal next-hop node. This means that the MAC approach only leads to local optimization of network performance, and hence it is necessary to add transmission power control at the network layer (or higher) to obtain the global optimization [13]. Authors considering the interaction between power control and network layer propose COMPOW, CLUSTERPOW, and LOADPOW schemes. The difference between these mechanisms with DPCM is that our mechanism depends on the number of neighbors detected.
4. DPCM (Density Power Control Mechanism)
4.1. Power Control Mechanism Definition
Algorithm 1: |
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4.1.1. Addition Factor
4.1.2. Minimum Power
4.1.3. Maximum Power
4.2. AODV Routing Protocol Modification
5. Performance Evaluation
5.1. Linear Topology
5.2. MANET with RandomWaypoint
5.2.1. Throughput vs. Network Density
5.2.2. Throughput vs. Speed of Nodes
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Maygua-Marcillo, L.; Urquiza-Aguiar, L. A Novel Cross-Layering Power Control Mechanism for AODV. Proceedings 2020, 42, 40. https://doi.org/10.3390/ecsa-6-06561
Maygua-Marcillo L, Urquiza-Aguiar L. A Novel Cross-Layering Power Control Mechanism for AODV. Proceedings. 2020; 42(1):40. https://doi.org/10.3390/ecsa-6-06561
Chicago/Turabian StyleMaygua-Marcillo, Lesly, and Luis Urquiza-Aguiar. 2020. "A Novel Cross-Layering Power Control Mechanism for AODV" Proceedings 42, no. 1: 40. https://doi.org/10.3390/ecsa-6-06561
APA StyleMaygua-Marcillo, L., & Urquiza-Aguiar, L. (2020). A Novel Cross-Layering Power Control Mechanism for AODV. Proceedings, 42(1), 40. https://doi.org/10.3390/ecsa-6-06561