Title :
MiFi: a framework for fairness and QoS assurance for current IEEE 802.11 networks with multiple access points
Author :
Bejerano, Yigal ; Bhatia, Randeep S.
Author_Institution :
Lucent Technol. Bell Labs., Murray Hill, NJ
Abstract :
In this paper, we present a framework for providing fair service and supporting quality of service (QoS) requirements in IEEE 802.11 networks with multiple access points (APs). These issues becomes critical as IEEE 802.11 wireless LAN are widely deployed in nationwide networks, linking tens of thousands of "hot-spots" for providing both real-time (voice) and non real-time (data) services to a large population of mobile users. However, both fairness and QoS guarantees cannot be supported in the current 802.11 standard. Our system, termed MiFi, relies on centralized coordination of the APs. During any given time of the "contention-free" period only a set of non-interfering APs is activated while the others are silenced. Moreover, the amount of service granted to an AP is proportional to its load and the system\´s performance is optimized by employing efficient scheduling algorithms. We show that such a system can be implemented without requiring any modification of the underlying MAC protocol standard or the behavior of the mobile stations. Our scheme is complementary to the emerging 802.11e standard for QoS and guarantees to overcome the hidden node and the overlapping cell problems. Our simulations establish that the system supports fairness and hence can provide QoS guarantees for real-time traffic, while maintaining a relative high throughput
Keywords :
access protocols; mobile radio; quality of service; scheduling; telecommunication traffic; wireless LAN; IEEE 802.11 networks; MAC protocol standard; MiFi; QoS assurance; contention-free period; data services; efficient scheduling algorithms; fair service; hidden node; mobile stations; mobile users; multiple access points; overlapping cell problems; quality of service requirements; real-time traffic; voice services; wireless LAN; Bandwidth; Cities and towns; Joining processes; Media Access Protocol; Quality of service; Real time systems; Scheduling algorithm; Throughput; Traffic control; Wireless LAN; Approximation algorithms; IEEE 802.11; fairness; quality of service (QoS); wireless LAN;
Journal_Title :
Networking, IEEE/ACM Transactions on
DOI :
10.1109/TNET.2006.880161