This application claims priority to New Zealand patent application number NZ 615898, filed Sep. 24, 2013, which is incorporated herein by reference.
This invention relates to data rates in mobile radio systems and particularly but not only to systems which combine two or more wireless protocols such as P25 and LTE.
Long range communications are a key requirement for mission critical systems such as public safety and utility operations. Such systems are commonly private networks and are characterised by a need for operation over very wide geographic areas while offering service to a relatively low density of users. Land Mobile Radio (LMR) systems such as P25 have been a typical choice for such solutions because of its ability to offer economically acceptable coverage. This has typically been used for mission critical voice communication. DMR and Tetra are similarly used in some countries.
Increasingly public safety users require more information. Maps, electronic forms and video are all examples of applications that are now aiding public safety and critical infrastructure such as electrical distribution in their operations. New technology such as LTE (Long Term Evolution), part of the 3GPP standards represent a communications path that can support such applications. There is however a challenge. LTE is not typically designed for economic long range operation in the same way as LMR. LTE represents a broadband technology which means the power of a transmission is spread over a relatively wide frequency allocation. LMR is a narrow band technology and as such its transmission is concentrated in a relatively narrow allocation of spectrum. In concentrating power in a relatively narrow allocation of spectrum, LMR is able to offer superior range.
Cellular technology such as LTE provides an effective means of communicating relatively high rate data. This is typically accomplished using a relatively high density of cellular base sites to serve a relatively large population density of users. Commercial consumers are an example. LMR technology provides an effective means of communicating at a relatively low data rate. This is typically accomplished using a relatively low density of LMR base sites to serve a relatively low population density of users. Emergency services are an example.
There exists a problem when relatively high data rates need to be communicated to a relatively low user population density. In this scenario, the economics of deploying broadband cellular technology can become questionable and LMR technology is unable to offer the required relatively high data rates required. There exists therefore a gap in the suitability of LTE or LMR in serving the need for high data rate over a wide area.
It is an object of the invention to provide for improved long range communications requiring relatively high data rates, by combining LMR and LTE.
In one aspect the invention resides in a method of communicating with a mobile radio device, including: providing a first network of base stations which use a first bearer having a relatively low data rate, providing a second network of base stations which use a second bearer having a relatively high data rate, receiving location data from the mobile device at a base station using the first bearer, providing a directional beam toward the location of the mobile device at a base station using the second bearer, and transmitting data to or receiving data from the mobile device using the directional beam and the second bearer.
In a further aspect the invention resides in a system for communicating with a mobile radio device, including: a first network of base stations which use a first bearer having a relatively low data rate, a second network of base stations which use a second bearer having a relatively high data rate, and a controller having a memory containing software instructions which cause the controller to: receive location data from the mobile device at a base station using the first bearer, provide a directional beam toward the mobile device at a base station using the second bearer, and transmit data to or receive data from the mobile device using the directional beam and the second bearer.
Generally, the first network of base stations provides omnidirectional relatively long range RF communication and the second network of base stations provides directional relatively short range RF communication. The first bearer is LMR, DMR, TETRA or other relatively narrowband RF bearer, and the second bearer is LTE or other relatively broadband RF bearer. The method may further include receiving data at the mobile device relating to the directional beam, and moving the mobile device into the directional beam.
In a further aspect the invention resides in a method of communicating with a mobile radio system, including: providing a mobile device having capability for using either of a first bearer with a relatively low data rate or a second bearer with a relatively high data rate, receiving data from a first base station using the first bearer, relating to location of a second base station which uses the second bearer, providing a directional beam from the mobile device toward the location of the second base station which uses the second bearer, and transmitting data from or receiving data at the mobile device using the directional beam and the second bearer.
In a still further aspect the invention resides in mobile device for communicating with a mobile radio system, including: a transceiver arrangement having capability for using either of a first bearer with a relatively low data rate or a second bearer with a relatively high data rate, and a controller having a memory containing software instructions which cause the mobile device to: receive data from a first base station using the first bearer, relating to location of a second base station which uses the second bearer, provide a directional beam from the mobile device toward the second base station which uses the second bearer, and transmit data or receive data at the mobile device using the directional beam and the second bearer.
Preferred embodiments of the invention will be described with respect to the accompanying drawings, of which:
Referring to the drawings it will be appreciated that the invention can be implemented in a range of different ways using a variety of different narrowband and broadband communication systems such as LMR and LTE.
Also shown in
LMR network offering location status for the mobile devices 15 or 16. Upon reception of a location report 41 along with a flag indicating the need to communicate high rate data, the controller will calculate which sector is best aligned to serve the device and calculate 42 the angle and reachability of the device. If it is possible 43 to reach the device then a beam will be directed 44 to those coordinates for the duration of the session. A broadband connection is established 45 and data is transferred 46 until the session is complete 47.
Preferably the mobile device is reporting its own location data to the overall infrastructure using the LMR network of base stations. In another form, the infrastructure can conversely report the location of broadband sites, and the estimated coverage of those sites, to mobile devices via the LMR network. A periodic broadcast of site information over the LMR network can be made. A mobile receiving the location of broadband sites has two options.
Number | Date | Country | Kind |
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615898 | Sep 2013 | NZ | national |