Wimax standards and Security The Wimax



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QoS Services

There are several QoS related concepts defined in the IEEE 802.16 standards. These concepts cover the following: service flow QoS scheduling, dynamic service establishment, and two-phase activation model.
The principal mechanism for providing QoS is to associate packets travers- ing the MAC interface into a service flow as identified by the transport CID. A service flow is a unidirectional flow of packets that is provided a partic- ular QoS. The SS and BS provide this QoS according to the QoS parameter set defined for the service flow. Service flows exist in both the uplink and downlink direction and may exist without actually being activated to carry traffic. All service flows have a 32-bit service flow identified (SFID); admitted and active service flows also have a 16-bit CID.
The primary purpose of the QoS features is to define transmission ordering and scheduling on the air interface. However, these features often need to work in conjunction with mechanisms beyond the air interface to provide end-to-end QoS or to police the behavior of SSs. So, the key requirements for QoS are listed as follows:



  1. A configuration and registration function for preconfiguring SS- based QoS service flows and traffic parameters.




  1. A signaling function for dynamically establishing QoS-enabled service flows and traffic parameters.

  2. Utilization of MAC scheduling and QoS traffic parameters for uplink service flows.

  3. Utilization of QoS traffic parameters for downlink service flows.

  4. Grouping of service flow properties into named service classes, so upper-layer entities and external applications (at both the SS and BS) may request service flows with the desired QoS parameters in a globally consistent way.

A service flow is a MAC transport service that provides unidirectional transport of packets either to uplink packets transmitted by the SS or to down- link packets transmitted by the BS. A service flow is characterized by a set of QoS parameters such as latency, jitter, and throughput assurances. To stan- dardize operation between the SS and BS, these attributes include details of how the SS requests uplink bandwidth allocations and the expected behavior of the BS uplink scheduler.


To most efficiently utilize network resources such as bandwidth and mem- ory, 802.16 adopts a two-phase activation model in which resources assigned to a particular admitted service flow may not be actually committed until the service flow is activated. Each admitted or active service flow is mapped to a MAC connection with a unique CID. Generally, there are three basic types of service flows, namely

  1. Provisioned service flows: This service flow may be provisioned but not immediately activated and defers admission. The network assigns a SFID for such a service flow. The BS may also require an exchange with a policy module prior to admission.

  2. Admitted service flows: This protocol supports a two-phase acti- vation model that is often utilized in telephony applications. In the two-phase activation model, the resources are first “admitted’’ and once the end-to-end negotiation is completed, the resources are “activated.’’ The two-phase model helps to conserve net- work resources until a complete end-to-end connection has been established. It performs policy checks and admission control on resources as quickly as possible and, in particular, before inform- ing the far end of a connection request, preventing several potential theft-of-service scenarios.

  3. Active service flows: A service flow that has a non-NULL Active- QoSParamSet is said to be an active service flow. It is requesting according to its request/transmission policy and being granted bandwidth for transport of data packets. An admitted service flow may be activated by providing an ActiveQoSParamSet, signaling the resources actually desired at the current time. This completes the second stage of the two-phase activation model.



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