This application is based on and hereby claims priority to European Application No. EP04004076 filed on Feb. 23, 2006, the contents of which are hereby incorporated by reference.
A method for transmitting data inside a base station of a mobile radio system and a corresponding base station are described.
In mobile radio systems, users of the mobile radio system communicate via radio waves. A plurality of mobile radio systems are known, for example for the second mobile radio generation GSM (Global System of Mobile Communication) or IS-95 and for the third mobile radio generation UMTS-FDD (Universal Mobile Telecommunication System—Frequency Division Duplex). Furthermore, mobile radio systems may be produced which are designed according to one of the so-called WLAN—(Wireless Local Area Network) or WMAN (Wireless Metropolitan Area Network) standards, such as for example the 802.x standards.
The radio access points of mobile radio systems, by means of which users communicate via the air interface, are frequently also designated as base stations. A plurality of companies have, together with Siemens, defined an interface inside such base stations, which is firstly intended to be used for UMTS-FDD and subsequently also for other standards. This interface is known by the designation Common Public Radio Interface (CPRI). CPRI connects the so-called radio equipment control portion of a base station with its so-called radio equipment portion. The radio equipment control portion includes, amongst other things, the baseband processing of the signals to be transmitted and/or the received signals, whilst in the radio equipment portion, signals to be transmitted are converted into the high frequency band and/or received signals are converted into baseband.
In order to save costs in network planning and in installation, it may be useful to provide base stations and/or radio access points of different mobile radio systems at the same location.
In transmitting data inside a base station of a first mobile radio system, data of the first mobile radio system are processed in baseband in a baseband unit of the base station and converted in a high frequency unit of the base station from and/or into the high frequency range, that the data of the first mobile radio system are transmitted between the baseband unit and the high frequency unit via an interface and that data to be transmitted of a second mobile radio system, before processing in baseband, and/or received data of the second mobile radio system, after processing in baseband, are also transmitted via the interface.
Whilst data to be transmitted of the first mobile radio system are therefore processed in baseband before their transmission via the interface and only converted into the high frequency range after transmission via the interface, data to be transmitted of the second mobile radio system are transmitted via the interface, even before baseband processing. Similarly, therefore, the baseband processing for received data of the first mobile radio system is only carried out after transmission via the interface, whilst the baseband processing for received data of the second mobile radio system is already carried out before transmission via the interface.
This means that no separate interface has to be provided for the transmission of the data of the second mobile radio system from the location of the high frequency unit to the location of the baseband unit of the base station of the first mobile radio system and in the reverse direction. Thus, the requirement for an additional connection for transmitting the data of the second mobile radio system is dispensed with. This is particularly advantageous when the distance between the high frequency unit and the baseband unit is considerable, such as for example if the baseband unit is arranged in the cellar of a building and the high frequency unit on the roof of the building.
Therefore, an interface between the baseband unit and the high frequency unit, provided in any case for the base station of the first mobile radio system, is used also for the transmission of data of the second mobile radio system, without costly adaptations to the design of the base station of the first mobile radio system having to be carried out.
According to a development, the data of the second mobile radio system are input and/or output data of a radio access point of the second mobile radio system.
The two mobile radio systems may be any kind of mobile radio systems, in which a communication with mobile users is carried out via radio waves. At least one of the two mobile radio systems may, for example, be of cellular construction, i.e. include a plurality of cells with at least one base station and/or one radio access point, which serves to supply the respective cells.
According to an embodiment, the interface between the baseband unit and the high frequency unit is a serial interface, via which the data of the two mobile radio systems are transmitted in time-division multiplexing. According to a preferred embodiment, the serial interface is an interface according to the aforementioned CPRI standard. In this connection, each version of the CPRI standard (the current version is Version 1.0) is considered, as are future versions.
According to an embodiment, the data of the first mobile radio system are to be assigned to the physical layer and the data of the second mobile radio system to a higher layer of a reference model, in particular of the ISO-OSI (International Standards Organization-Open System Interconnect) reference model.
According to a development, the base station of the first mobile radio system and the radio access point of the second mobile radio system transmit and/or receive signals to be transmitted by means of a common transmitting and/or receiving antenna. As a result, the necessity of separate antennae is avoided.
Irrespective of whether common transmitting or receiving antennae are used, preferably the radio access point of the second mobile radio system and the high frequency unit of the base station of the first mobile radio system are structurally integrated in a common unit. However, both may also be constructed separately from one another.
The base station for the first mobile radio system preferably includes means and/or units which aid the performance of the method.
These and other objects and advantages of the present will become more apparent and more readily appreciated from the following description of the preferred embodiments, taken in conjunction with the accompanying drawings of which:
Reference will now be made in detail to the preferred embodiments, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to like elements throughout.
The base station BS in
The control signals CM of the first processor C1 enter, via an interface IC, the second processor C2 inside the second unit RE which undertakes an evaluation of the control signals CM and controls the high frequency unit RF in an appropriate manner.
The first unit REC of the base station BS includes a baseband unit BB for processing data IQ of the first mobile radio system in baseband. The baseband unit BB carries out, amongst other things, channel coding, interleaving, spreading and scrambling of data to be transmitted of the first mobile radio system. Similarly, the baseband unit BB carries out channel decoding, de-interleaving, de-spreading and de-scrambling of received data of the first mobile radio system.
In the second unit RE of the base station BS, a high frequency unit RF is located, by which the data IQ, which have previously been generated by the baseband unit BB and transmitted via the interface IC, are converted to digital/analog, converted into the high frequency range and then amplified in power and emitted as radio signals F1 via a first antenna A1. In the reverse transmission direction, radio signals F1 of the first mobile radio system received via the first antenna A1 undergo low noise amplification inside the high frequency unit RF, are converted from the high frequency range into baseband and then converted to analog/digital. The received data IQ are then transmitted via the interface IC to the baseband unit BB. After the baseband processing in the baseband unit BB, the received data of the first mobile radio system are fed as ATM-data packets ATM (in other embodiments they may also be IP-data packets or circuit switched data, for example) via a first add-drop-multiplexer ADM1 to an outlet of the base station BS, from where transmission to a base station controller and/or radio network controller (not shown in
Data IP of the second mobile radio system, namely input and output data of the radio access point AP, are transmitted in addition to the baseband data IQ and the control signals CM, in time division multiplexing via the interface IC between the two units REC, RE of the base station BS. In this connection, the (user) data IQ of the first mobile radio system is transmitted according to the CPRI IQ protocol, whilst the control signals CM are transmitted by an HDLC (High Data Link Control) protocol or ethernet protocol and the data IP of the second mobile radio system are transmitted according to the ethernet protocol or HDLC protocol.
The data IP of the second mobile radio system have the format of IP (Internet Protocol) data packets. The radio access point AP has the same functionality as a conventional radio access point of the second mobile radio system under consideration, in this example the same as a conventional radio access point according to the 802.11 or 802.16 standard. The radio access point AP may, as shown in
Both baseband processing of the data IP and their conversion from baseband into the high frequency range and/or vice versa is carried out in the radio access point AP of
The first unit REC and the second unit RE in
The invention has been described in detail with particular reference to preferred embodiments thereof and examples, but it will be understood that variations and modifications can be effected within the spirit and scope of the invention covered by the claims which may include the phrase “at least one of A, B and C” as an alternative expression that means one or more of A, B and C may be used, contrary to the holding in Superguide v. DIRECTV, 358 F3d 870, 69 USPQ2d 1865 (Fed. Cir. 2004).
Number | Date | Country | Kind |
---|---|---|---|
04004076.8 | Feb 2004 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP05/50006 | 1/3/2005 | WO | 8/23/2006 |