The present invention relates to a method and a device for providing improved performance in a cellular radio system.
Recently, minimum data rates or Quality of Service (QoS) for some target users have been introduced by some providers of mobile services. For example, different guaranteed bit rates are for “gold”, “silver” and “bronze” users. Consequently, a novel High-Speed Downlink Packet Access (HSDPA) scheduler is expected to guarantee data rates of some target users to be higher than a desired minimum rate. This new HSDPA scheduler achieves the minimum rate without Radio resource Management (RRM) functions of admission control, congestion control or dropping and similar.
In Jonas Olsson: “Performance impact of introducing higher bit-rate streaming over HS-DSCH in a WCDMA mixed traffic scenario”, EAB/TB-04:000053, December 2004 HSDPA scheduling impact on stream and web mixed traffic scenario is studied. Scheduling priorities are computed differently for different services according to each different minimum rate, and streaming priority is usually set much higher than web priority. As a result, streaming users often take resources from web users. However, for a single traffic scenario, the method does not work. In addition, the dropping function was enabled in Jonas Olsson: “Performance impact of introducing higher bit-rate streaming over HS-DSCH in a WCDMA mixed traffic scenario”, EAB/TB-04:000053, December 2004.
In Patrick A. Hosein, “Qos Control in WCDMA HSDPA”, September 2002, the 4th IEEE Conference on Mobile and Wireless Communication Networks; a Barrier-Proportional Fair (B-PF) scheduler in HSDPA is described. The paper describes a procedure where the SINR difference is manually set between gold users and silver users in the simulation, which is not realistic in reality.
It has been observed that the minimum rate scheduling is at the cost of cell throughput (system capacity) compared with proportional fair scheduling, and too high minimum rate and too large number of target users would decrease system capacity largely without achieving minimum rate for target users. The existing solutions fail to provide an efficient method for setting a minimum rate and number of target users.
Hence, there exist a need for a method and a system that is able to provide an efficient method for setting a minimum rate and number of target users.
It is an object of the present invention to overcome or at least reduce some of the problems associated with providing an efficient method for setting a minimum rate and number of target users, which guarantees the Quality of Service (QoS) for the target users.
This object and others are obtained by the method and system as set out in the appended claims. Thus, by determining both minimum rate and number of target users during a network dimensioning and planning phase, the minimum rate and number of target users can be set in a more efficient manner without suffering from the drawbacks of existing methods for setting a minimum rate and number of target users. In order to get individual user data rate, geometry factors on some traffic scenarios can be collected and used for determining individual data rates.
In accordance with one embodiment the maximum value of target users and minimum rate can be determined by estimating the user individual data rate in typical user position and a given traffic scenario.
In accordance with one embodiment individual data rate for a User Equipment can be determined by first measuring a cell geometry factor in a typical position for given traffic scenario for the User Equipment. Then input parameters for the User Equipment is collected and finally, and the individual rate for the User Equipment is determined based on the collected input parameters.
In accordance with one embodiment a possible target user number and/or target user position distributions are selected during determination of the maximum value of users and minimum rate.
In accordance with one embodiment, the outcome of a determined maximum value of users and minimum rate is checked against one or many criteria set for the system performance, thereby ensuring that the system criteria are met.
When an individual user rate is generated, the minimum rate and number of target users can be set based on the individual user rate.
Hereby an efficient method for determined maximum value of users and minimum rate settings is obtained that enables system operators to guarantee certain minimum performance levels in the system to a particular user.
The invention also extends to a node, in particular a node B, in a cellular radio system adapted to perform procedural steps in accordance with the above.
The present invention will now be described in more detail by way of non-limiting examples and with reference to the accompanying drawings, in which:
In
Assuming there are K users in a cell and N users are target users for minimum rate, the scheduler 107 can in accordance with one embodiment be adapted to ensure minimum rate rm for N target users. The scheduler 107 then uses a proportional fair scheduling for all K users. The scheduling can be described as:
If any
else, schedule all users as
Where
In accordance with one embodiment at a full-buffer scenario without code multiplexing, there are K users in a cell, and N (N≦K) users are target users for minimum rate rm. In the below description it is assumed that every user has the time-invariant data rate to radio base station NodeB no matter what interference changes and channel fades.
These N target users have the individual rate r1,r2,ΛrN. The individual rate is defined as the rate of single user per cell, that is to say the user is always scheduled. For convenience, all rates here are data rate per Transmission Tome Interval (TTI).
The minimum mean rate and number of target users should meet the formula below:
In accordance with one embodiment individual user rates in a deployed network can be generated in three steps: The three steps can for a given User Equipment (UE) be:
Step 1: measure a cell geometry factor in a typical position for given traffic scenario for the UE.
Step 2: collect input parameters, such as cell power, code and UE category for the UE.
Step 3: determine the individual rate for the UE based on the collected input parameters.
In
Using the method and scheduler as described herein will enable operators of cellular radio systems to promise a certain Quality of service (QoS) for one or several users without degrading system performance below a determined level or failing to deliver an agreed minimum data rate.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/SE2009/050187 | 2/19/2009 | WO | 00 | 8/18/2011 |