Multi-mode interoperable mobile station communications architectures and methods
A Multi-mode mobile wireless communications device architecture (200) including an application layer (210), a services layer (220) interfacing the applications layer, a multi-mode layer (230) interfacing the service layer, and a hardware layer (240) interfacing the multi-mode layer. The multi-mode layer includes first and second interoperable radio access technologies, for example W-CDMA UMTS and GSM/GPRS technologies.
The present application is a continuation of commonly assigned U.S. patent application Ser. No. 10/228,484 filed on 27 Aug. 2002 with like title, from which the benefits under 35 U.S.C. 120 are claimed, the contents of which are hereby incorporated herein by reference.
FIELD OF THE DISCLOSUREThe present disclosure relates generally to wireless mobile station communications, and more particularly to wireless mobile station communication architectures with multi-mode interoperability, for example, communications supporting time division multiple access (TDMA) based and spread spectrum based modes of operation, wireless devices having multi-mode architectures and methods therefor.
BACKGROUNDWireless cellular communication mobile stations with multi-service interoperability will enable communications in areas served by different communications protocols, otherwise referred to herein as a heterogeneous communications environments.
The initial deployment of new communications technologies is characterized typically by limited areas of new technology service in contiguous regions served by legacy technologies. In many countries, for example, the W-CDMA implementation of Universal Mobile Telecommunications Services (UMTS) will be deployed initially on isolated islands of service in a sea served by existing Groupe Special Mobile services (GSM)/Generalized Packet Radio Services (GPRS) network infrastructure.
UMTS services will not be offered over substantial contiguous areas until new technology infrastructure is installed or until existing infrastructure is upgraded, but this will require substantial capital outlays by telecommunications services providers and may not be complete for some time, resulting in a heterogeneous communications environment in many geographic regions for the foreseeable future.
Multi-mode cellular handsets capable of operating in areas served by emerging and legacy communications infrastructures will provide users earlier access to the emerging communications technology and hasten its deployment. Multi-mode wireless communications devices are also desirable for communications in other heterogeneous environments.
Mobile wireless communications devices will require architectures with multi-mode interoperability for seamless operation in heterogeneous communications environments.
The various aspects, features and advantages of the present disclosure will become more fully apparent to those having ordinary skill in the art upon careful consideration of the following Detailed Description with the accompanying drawings described below.
BRIEF DESCRIPTION OF THE DRAWINGS
For multi-mode wireless communications devices operating in heterogeneous networks, for example a mobile terminal following user route 130 in
In
In
The multi-mode layer comprises generally an interoperability entity that interconnects the radio access technologies. In
In
In the exemplary architecture of
In the exemplary embodiment of
In the exemplary embodiment of
In
In
Time critical radio access technology functionality, for example, Public Land Mobile Network (PLMN) selection, cell selection and reselection, signal measurement, handover, etc., is coordinated by a real-time coordinator 343 in the real-time portion of the timing component. The real-time coordinator reports status and other information to the radio resource layer 338, and the real-time coordinator controls switching between radio access technologies under control from the radio resource component 337.
For example, during initial cell selection the radio resource component 337 controls cell selection on the appropriate radio access technology, for example GSM or W-CDMA in the exemplary embodiment, commands power measurement and channel synchronization, commands to read system information scheduled by Radio Resource (RR) component, and follows cell selection procedure to camp on the most suitable cell. After finding a cell to camp on, the radio resource component sends an indication to RR/RRC. If no cells are found suitable on the desired radio access technology, cell selection procedure on the other radio access technology is selected. If no suitable cells are found, an available PLMN list is sent to radio resource component.
The timing component also controls interrupt processing, for example medium access control (MAC) functionality of the first and second radio access technologies. The W-CDMA Layer 1/MAC interruption service routine (ISR) functionality includes, for example, DSP timing, transport to logical and vice verse channel mapping, etc. The timing component also controls interrupt processing for the GSM/GPRS Layer 1 MAC ISR, for example Adaptive Gain Control (AGC), Adaptive Frequency Control (AFC), waveform generation, MAC procedures, etc.
Interrupt processing information is communicated from each Layer 1 MAC ISR to the corresponding radio link control (RLC) components 346 and 348 of the first and second radio access technologies and to a DSP 350 via an Micro Controller Unit (MCU)/DSP interface 352 common to both radio access technologies.
The mobility management layer interfaces with the radio resource layer 540, the radio access technology L1-task layer 550, the GSM Logical Link Control (LLC) entity 560, the Session Management (SM) entity 570, the MMICM 580, and the DSSP 590. These interfaces are also illustrated generally in
In the exemplary embodiment of
The data router 360 generally routes data between the services layer 320 and one of the radio access technologies. In
While the present disclosure and what is considered presently to be the best mode thereof have been described in a manner that establishes possession thereof by the inventors and that enables those of ordinary skill in the art to make and use the same, it will be understood and appreciated that there are many equivalents to the exemplary embodiments disclosed herein and that myriad modifications and variations may be made thereto without departing from the scope and spirit thereof, which are to be limited not by the exemplary embodiments but by the appended claims.
Claims
1. A multi-mode mobile wireless communications device architecture, comprising:
- a services layer;
- a data router coupled to the services layer;
- a radio resource component coupled to the data router;
- first and second radio access technologies coupled to the radio resource component and to the data router.
2. The multi-mode mobile wireless communications device architecture of claim 1, a mobility management layer coupled to the services layer, to the radio resource component and to the data router, the mobility management layer for communicating active radio access technology information to the data router, the data router for routing data to the active radio access technology.
3. The multi-mode mobile wireless communications device architecture of claim 1, the radio resource component for transitioning between the first and second radio access technologies.
4. The multi-mode mobile wireless communications device architecture of claim 1, the data router for routing data between the services layer to the first and second radio access technologies.
5. The multi-mode mobile wireless communications device architecture of claim 1, a timing layer coupled to the radio resource component and to the first and second radio access technologies.
6. A multi-mode mobile wireless communications device architecture, comprising:
- a services layer;
- first and second radio access technologies, the first radio access technology different than the second radio access technology;
- a radio resource component for transitioning between the first and second radio access technologies.
7. The multi-mode mobile wireless communications device architecture of claim 6, the radio resource component including a first state machine of the first radio access technology, the radio resource component including a second state machine of the second radio access technology, and the radio resource component including a state transition component for transitioning between the first and second state machines.
8. The multi-mode mobile wireless communications device architecture of claim 7, the state transition component for maintaining states of the radio resource component during switching between the first and second state machines.
9. The multi-mode mobile wireless communications device architecture of claim 7, the state transition component for allocating resources among the first and second radio access technologies.
10. A multi-mode mobile wireless communications device architecture, comprising:
- first and second radio access technologies, the first radio access technology different than the second radio access technology;
- a timing layer for performing real-time and interrupt processing on both of the first and second radio access technologies.
11. The multi-mode mobile wireless communications device architecture of claim 10, a radio resource component for transitioning between the first and second radio access technologies.
12. The multi-mode mobile wireless communications device architecture of claim 10, the first radio access technology is a Wideband Code Division Multiple Access (W-CDMA) Universal Mobile Telecommunications Services (UMTS) radio access technology, the second radio access technology is a Generalized Packet Radio Services (GPRS) radio resource/Groupe Special Mobile (GSM) radio access technology.
13. The multi-mode mobile wireless communications device architecture of claim 12, the timing layer for performing W-CDMA medium access control (MAC) interrupt processing.
14. A method in a multi-mode mobile wireless communications device, comprising:
- performing real-time task processing of first and second radio access technologies;
- performing medium access control (MAC) of the first and second radio access technologies by interrupt processing.
15. A method in a multi-mode mobile wireless communications device, comprising:
- performing medium access control (MAC) of first and second radio access technologies by interrupt processing;
- communicating interrupt processing information to first and second radio link control (RLC) components of the first and second radio access technologies.
16. A method in a multi-mode mobile wireless communications device, comprising:
- communicating control information from a mobility management layer to a data router;
- routing data with the data router between one of first and second radio access technologies and a services layer based on the control information received from the mobility management layer.
17. The method of claim 16, communicating control information between the mobility management layer and a radio resource layer, transitioning between the first and second radio access technologies at radio resource layer.
Type: Application
Filed: Jun 28, 2005
Publication Date: Jan 5, 2006
Inventors: Arnold Sheynman (Glenview, IL), Carl Grube (Barrington, IL), Rajendra Kosgi (Mundelein, IL), Rohini Polisetty (Grayslake, IL), Mahesh Perepa (Hyderabad), Maloor Sreekrishna (Bangalore), Krishnamurthy Vijayaprasad (Kamataka), Sharada Raghuram (Buffalo Grove, IL), Donald Dorsey (Vernon Hills, IL), Kevin Spriggs (Chicago, IL), Ramesh Sudini (Palatine, IL)
Application Number: 11/168,113
International Classification: H04M 1/00 (20060101);