Dynamic Resource Allocation and Access Class Barring Scheme for Delay-Sensitive Devices in Machine to Machine (M2M) Communications
Abstract
:1. Introduction
2. Preliminaries
2.1. Related Works
2.2. Random Access Procedure in LTE-A System
- Msg1: preamble transmission. Once an MTC device launches an access request to the RACH, it randomly selects a preamble with equal probability and transmits the selected preamble to the eNodeB via PRACH (i.e., the same uplink time-frequency resources). When two or more nodes select identical preambles and send them at the same time, there could be a collision.
- Msg2: random access response. If a preamble has been received correctly, the eNodeB computes an identifier and then transmits a random access response (RAR) to the UE devices. The RAR includes a RA preamble identifier (ID), an uplink grant for MSG3, timing alignment (TA) command for corresponding UEs, and assignment of a temporary identifier (the cell radio network temporary identifier, CRNTI). UE is expected to receive RAR within a timing window.
- Msg3: data transmission. A UE first finds its random access response by looking up the index of the preamble it has used in its random access request, and then uses the dedicated resource block (RB) on PUSCH to transmit a Connection Request message with a UE identifier to the eNodeB. If two or more UEs select an identical preamble in Step 1, they will implement uplink scheduling in the same RBs, thus scheduled message will not be correctly decoded by eNB due to the co-channel interference. This section is the main reason of random access conflict.
- Msg4: contention resolution. Upon reception of a Connection Request in Step 3, the eNodeB transmits a Connection Resolution message as an response to Step 3. Therefore, if a device does not receive Step 4, it will indicate a failure in the Contention Completion and launch a new access request after a random backoff.
3. Dynamic Resource Allocation and ACB Scheme for Delay-Sensitive Devices
3.1. Clustured Structure
3.2. Proposed Optimization Scheme
- Average access delay of delay-sensitive devices.
- Preamble utilization rate for delay-sensitive devices.
Algorithm 1 Proposed dynamic resource allocation and ACB scheme in a slot |
1: : number of DS devices attempt to access |
2: : ACB factor |
3: : optimal number of preambles allocated to DS devices |
4: : optimal value of ACB factor for DS devices |
5: : number of available preambles |
6: if then |
7: Set ; |
8: Compute through Equation (9); |
9: if then |
10: ; |
11: else |
12: Compute through Equation (10); |
13: end if |
14: else if then |
15: Set |
16: Compute through Equation (12); |
17: if then |
18: ; |
19: else |
20: Compute through Equation (13); |
21: end if |
22: end if |
4. Analysis Model
5. Performance Evaluation
5.1. Model Verification
5.2. Performance Analysis
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Parameter | Value |
---|---|
30 | |
50, 80 | |
10 ms | |
22 ms, 50 ms | |
200~2000 arrivals/s |
Descriptions | Notation | Value |
---|---|---|
Maximum number of active devices to be handled in a slot | 500 | |
Arrival rate of DS devices | 300~3000 arrivals/s | |
Total number of available preambles in an RA slot | 64 | |
Maximum number of available preambles for DS Devices in an RA slot | 54 | |
Length of a random access slot | 10 ms | |
Delay requirement of DS devices | 22 ms |
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Li, N.; Cao, C.; Wang, C. Dynamic Resource Allocation and Access Class Barring Scheme for Delay-Sensitive Devices in Machine to Machine (M2M) Communications. Sensors 2017, 17, 1407. https://doi.org/10.3390/s17061407
Li N, Cao C, Wang C. Dynamic Resource Allocation and Access Class Barring Scheme for Delay-Sensitive Devices in Machine to Machine (M2M) Communications. Sensors. 2017; 17(6):1407. https://doi.org/10.3390/s17061407
Chicago/Turabian StyleLi, Ning, Chao Cao, and Cong Wang. 2017. "Dynamic Resource Allocation and Access Class Barring Scheme for Delay-Sensitive Devices in Machine to Machine (M2M) Communications" Sensors 17, no. 6: 1407. https://doi.org/10.3390/s17061407
APA StyleLi, N., Cao, C., & Wang, C. (2017). Dynamic Resource Allocation and Access Class Barring Scheme for Delay-Sensitive Devices in Machine to Machine (M2M) Communications. Sensors, 17(6), 1407. https://doi.org/10.3390/s17061407