Heterogeneous Network Optimization Utilizing Modal Antenna Techniques
20210273327 · 2021-09-02
Inventors
Cpc classification
H04W88/04
ELECTRICITY
H01Q5/00
ELECTRICITY
H04W16/14
ELECTRICITY
H04W88/06
ELECTRICITY
H04W40/22
ELECTRICITY
H01Q3/00
ELECTRICITY
H01Q3/005
ELECTRICITY
International classification
H01Q3/00
ELECTRICITY
H04W16/14
ELECTRICITY
H04W40/22
ELECTRICITY
Abstract
A communication system is described where multiple communication networks are simultaneously accessible from a plurality of fixed and/or mobile communication devices. A Master and Slave hierarchy is implemented among the communication devices to improve communication properties on one or multiple networks. A network system controller is implemented to select the network with optimal communication characteristics for subsets of communication devices as well as assigning Master status to a communication device within these subsets.
Claims
1-6. (canceled)
7. A method for controlling communications in a communication system, the method comprising: obtaining, at a first device in the communication system, a control signal from a second device in the communication system, the control signal specifying one of a plurality of distinct radiation patterns for a modal antenna associated with the first device as a selected radiation pattern for the modal antenna; controlling the modal antenna of the first device to operate in the selected radiation pattern to communicate with the second device over a communication network; wherein the selected radiation pattern has a null steered in a direction of an interferer.
8. The method of claim 7, wherein the communication network is a wireless local area network.
9. The method of claim 7, wherein the communication network is a first communication network, wherein the second device is configured to communicate over the first communication network and a second communication network, the second communication network having a distinct protocol relative to the first communication network.
10. The method of claim 9, wherein the first device is incapable of communicating with the second device over the second communication network.
11. The method of claim 9, wherein the second communication network is a cellular communication network.
12. The method of claim 9, wherein the first device is capable of communicating with the second device over the second communication network.
13. A method for controlling communications in a communication system, the method comprising: obtaining, at a first device in the communication system, a control signal from a second device in the communication system, the control signal specifying one of a plurality of distinct radiation patterns for a modal antenna associated with the first device as a selected radiation pattern for the modal antenna; controlling the modal antenna of the first device to operate in the selected radiation pattern to communicate with the second device over a communication network; wherein the selected radiation pattern has a gain maxima steered in a direction of the second device.
14. The method of claim 13, wherein the communication network is a wireless local area network.
15. The method of claim 13, wherein the communication network is a first communication network, wherein the second device is configured to communicate over the first communication network and a second communication network, the second communication network having a distinct protocol relative to the first communication network.
16. The method of claim 15, wherein the first device is incapable of communicating with the second device over the second communication network.
17. The method of claim 15, wherein the second communication network is a cellular communication network.
18. The method of claim 15, wherein the first device is capable of communicating with the second device over the second communication network.
19. A method for controlling communications in a communication system, the method comprising: obtaining, at a first device in the communication system, a control signal from a second device in the communication system, the control signal specifying one of a plurality of distinct radiation patterns for a modal antenna associated with the first device as a selected radiation pattern for the modal antenna; controlling the modal antenna of the first device to operate in the selected radiation pattern to communicate with a third device of the communication system over a communication network, wherein the selected radiation pattern has a gain maxima steered in a direction of the third device.
20. The method of claim 19, wherein the communication network is a wireless local area network.
21. The method of claim 19, wherein the communication network is a first communication network, wherein the second device is configured to communicate over the first communication network and a second communication network, the second communication network having a distinct protocol relative to the first communication network.
22. The method of claim 21, wherein the first device is incapable of communicating with the second device over the second communication network.
23. The method of claim 21, wherein the second communication network is a cellular communication network.
24. The method of claim 21, wherein the first device is capable of communicating with the second device over the second communication network.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0017] As cellular networks become more congested, off-loading users onto WLAN becomes an attractive solution. An area of improvement for today's devices and communication networks is better coordination between networks in regard to ensuring that all devices have access to cellular networks. When a group of communication devices are located in-building, and these devices are capable of communication on both cellular networks and WLAN, an improvement over today's system architecture would be to have the capability where an in-building device that has the best connectivity with the cellular network is used to control and coordinate data transfer of the other in-building communication devices on the cellular as well as the in-building WLAN network. Selecting the optimal in-building device to control and coordinate data transfer among the in-building devices will ensure that in-building communication devices that cannot connect to the external cellular network directly due to blockage and propagation challenges can use a data transfer capability from the selected device to pass critical information to the cellular network.
[0018] In the embodiments herein, multiple communication systems are described, such as 3G and 4G cellular networks, WLAN systems and networks, a plurality of fixed and/or mobile communication devices accessing these networks. Using dynamically configurable systems comprising adaptive antenna system and RF-front end circuits, where network parameters such as capacity and throughput are dynamically managed, operation can be alternated between cellular, WLAN and other networks to optimize communication parameters, and “Master” and “Slave” designation among groups of fixed and/or mobile communication devices can be dynamically adjusted to improve communication among the various networks and communication devices.
[0019] One example is a communication system where multiple communication networks are simultaneously accessible from a plurality of fixed and/or mobile communication devices. These fixed and/or mobile communication devices can be dynamically altered to improve communication link qualities with one or multiple networks by selecting the optimal radiation mode for the communication devices. The radiation mode will define a radiation pattern and polarization characteristic, with the radiation mode being a factor in determining the quality of the communication link in both transmit and receive operation. A Master and Slave hierarchy is implemented among the communication devices to improve communication properties on one or multiple networks. The selection of a Master communication device among a group of communication devices to direct network selection as well as radiation mode selection for these devices is novel. A network system controller is implemented to select the network with optimal communication characteristics for subsets of communication devices as well as assigning Master status to a communication device within these subsets.
[0020] In one embodiment of this invention two communication networks designated Network A and Network B are accessible by a group of communication devices. One of these communication devices, labeled D1, is designated “Master” status. The other communication devices are designated “slave” status. “Master” device D1 coordinates communication between Networks A and B and the other communication devices; this coordination includes radiation Mode selection for the communication devices to optimize communication link quality between the devices as well as between the communication devices and Network A and Network B. “Master” device D1 has optimal communication to Network A through Base Terminal 1 associated with Network A.
[0021] In another embodiment of this invention two communication networks designated Network A and Network B are accessible by a group of communication devices. One of these communication devices, labeled D1, is designated “Master” status. The other communication devices are designated “slave” status. “Master” device D1 coordinates communication between Networks A and B and the other communication devices; this coordination includes radiation Mode selection for the communication devices to optimize communication link quality between the devices as well as between the communication devices and Network A and Network B. During network operations and as information is transmitted and received between the multiple communication devices “Master” status is removed from communication device D1 and assigned to another communication device, for example D5. This decision is based on total network capacity and throughput, with the network system controller associated with Network A and/or B making the decision to switch “Master” status from one communication device to another.
[0022] In another embodiment of this invention multiple communication devices are fixed in position within a local area such as a building. These multiple communication devices operate on one communication network such as wireless local area network (WLAN). A communication device such as a cell phone capable of operation on both cellular and WLAN networks is within range of the fixed communication devices. The cell phone is assigned Master status from the cellular network and is used to coordinate communication between the fixed communication devices on the WLAN network. This coordination includes radiation mode selection for the WLAN devices to optimize communication link between the fixed WLAN devices and the cell phone. Communication between the cellular network and the fixed WLAN devices is implemented through the cell phone, allowing information from the fixed WLAN devices to be passed to the cellular network and vice versa.
[0023] Now turning to the drawings,
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