Title :
iQueue-MAC: A traffic adaptive duty-cycled MAC protocol with dynamic slot allocation
Author :
Shuguo Zhuo ; Zhi Wang ; Ye-Qiong Song ; Zhibo Wang ; Almeida, Luis
Author_Institution :
State Key Lab. of Ind. Control Technol., Zhejiang Univ., Hangzhou, China
Abstract :
Duty-cycling technique has been widely adopted in MAC protocols for wireless sensor networks to conserve energy. However, low duty-cycle also leads to limited throughput in most of existing solutions. In this paper, we propose iQueue-MAC to provide immediate yet energy-efficient throughput enhancement for dealing with burst or heavy traffic. Combined with CSMA/CA, iQueue-MAC makes use of queue length of each sensor node and allocates suitable TDMA slots to them for packets transmission. During light traffic period, no extra slots will be allocated; iQueue-MAC acts like other low duty-cycle MACs to conserve power. While in burst or heavy traffic period, iQueue-MAC senses the build up of packet queues and dynamically schedules adequate number of slots for packet transmission. We have implemented iQueue-MAC on STM32W108 chips that offer IEEE 802.15.4 standard communication. We set up several real-world experimental scenarios, including a 46 nodes multi-hop test-bed for simulating a general application, and conducted numerous experiments to evaluate iQueue-MAC, in comparison with other traffic adaptive duty-cycle protocols, such as multi-channel version RI-MAC and CoSenS. Results clearly show that iQueue-MAC outperforms multi-channel version of RI-MAC and CoSenS in terms of packet delay and throughput.
Keywords :
Zigbee; carrier sense multiple access; delays; telecommunication traffic; time division multiple access; wireless channels; wireless sensor networks; CSMA-CA; CoSenS; IEEE 802.15.4 standard communication; STM32W108 chip; TDMA slot allocation; dynamic scheduling; energy conservation; energy-efficient throughput enhancement; heavy traffic period; iQueue-MAC protocol; light traffic period; multichannel version RI-MAC; packet delay; packet queue transmission; traffic adaptive duty-cycled MAC protocol; wireless sensor network; Delays; Media Access Protocol; Resource management; Routing protocols; Throughput; Time division multiple access;
Conference_Titel :
Sensor, Mesh and Ad Hoc Communications and Networks (SECON), 2013 10th Annual IEEE Communications Society Conference on
Conference_Location :
New Orleans, LA
DOI :
10.1109/SAHCN.2013.6644967