The invention relates to a circuit arrangement with a transmission unit for inserting data belonging to a terminal equipment in a frame, a circuit arrangement with a reception unit for dividing a transmitted datastream to a terminal equipment type, and a method for transmitting a data stream in a frame belonging to a terminal equipment type.
In a particular network environment, a payload data rate of 144 kbit/s is offered for a subscriber within an ISDN service data network connection. This payload data rate is divided for a first and second payload data channel of 64 kbit/s each as well as for a signaling channel with 16 kbit/s. 12 kbit/s for frame words as well as an overhead channel with 4 kbit/s are required within the ISDN frame for these channels that form the payload region of an ISDN frame.
In the classic ISDN basic access, a two-wire data connecting path is employed exclusively for this ISDN service (see
The invention is based on the object of specifying a further circuit arrangement and an appertaining method for multiple utilization of a data connection.
The stated object is inventively achieved by an apparatus comprising: a transmission unit to provide first payload data and second payload data in a payload section of a common frame; an entity to provide an overhead section in the common frame, the overhead section comprising a common eoc channel, the common eoc channel comprising control information related to a transmission path and control information related to one or more transmitted services or terminal equipment types. The object is also achieved by an apparatus comprising: a transmission entity configured to eliminate a frame word of a payload data service and to transmit in payload data service in a common frame with payload of other services.
The invention is also achieved by an apparatus comprising a transmission entity to transmit overhead data in an overhead section and to transmit payload data of a service in a payload section, wherein the transmission entity is configured to relocate information content of operational bits of the service transmitted in the payload section to an eoc channel provided in the overhead section.
The stated object is also achieved by a method comprising: providing first payload data and second payload data in a common frame; providing an overhead section in the common frame, the overhead section comprising a common eoc channel, the common eoc channel comprising control information related to a transmission path and control information related to one or more transmitted services or terminal equipment types.
The invention has a number of advantages:
1) a plurality of ISDN connections can be arranged within a payload region of an SDSL symmetric digital subscriber line frame. The payload region can also be referred to as a payload data region of an SDSL frame;
2) the bandwidth of the payload region can be expanded by a relocation of operational bits;
3) a traditional telephony connection, instead of the ISDN connection, can be synchronously transmitted in the SDSL frame, for example, together with an Ethernet connection;
4) a plurality of traditional telephony connections, instead of the plurality of ISDN connections, can be transmitted in the SDSL frame;
5) the bandwidth of the payload region can be expanded by relocating operational bits, in the case of traditional telephony connections as well.
6) the available bandwidth of the eoc channel can be utilized better due to the accommodation of the information content of the operational bits in the eoc channel present in the SDSL frame in the form of suitable messages.
7) the plurality of possible, different services, for example, given a plurality of transmitted ISDN connections, are addressable on the basis of a suitable expansion of the eoc message format, for example, by inserting an eoc sub-address.
Additional advantageous developments of the circuit arrangement and of the method are discussed below.
The following more detailed explanation of an exemplary embodiment provides other characteristics of the invention on the basis of drawings.
bits D1 and D2 are for ISDN signaling, X1, X2, S1, S2, S3 and S4 are reserved for operational purposes (for example, activation, etc.).
The merging at the transmission side and the division at the reception side of the data belonging to the narrow or/and broadband network is implemented in the module SDSLM, which can also be referred to as a transmission-reception device, according to known methods of digital time-division multiplex technology. The broadband data are forwarded to an Ethernet controller EC in the network termination NT. The narrow band data are forwarded to a narrow band controller that forwards the relevant data to the following a/b controller for the traditional telephone connection or to the S0 controller for the ISDN connection.
An Ethernet terminal equipment as well as one or more ISDN systems or one or more traditional telephone sets can be connected to the network termination unit NT. For example, the terminal equipment type E1 is a traditional telephone, the terminal equipment type E2, alternatively, is an ISDN system, and the terminal equipment type E3 is, for example, a data processing system.
The data transmission of the data in an SDSL frame occurs synchronously in time-division multiplex. The synchronization takes place with the assistance of the SDSL clock. The frame word of the ISDN frame can be eliminated in a transmission of the SDSL frame. The information contained in the overhead channel in the ISDN connection such as status information or a transmission control are already contained in the SDSL frame. Among other things, an eoc channel, also be referred to as an “operating channel”, and that is synchronized with the ISDN data stream, is provided in the ISDN overhead channel. This eoc channel serves as the control channel between network equipment for operational purposes.
The SDSL overhead data are accommodated in the overhead section OH of the SDSL frame, these containing status information and an embedded control channel or operating channel (eoc channel) for the operation of the SDSL transmission link.
Furthermore, the start of the SDSL frame contains the 14-bit wide frame word (sync word) for the synchronization and two unused bits (spare) at the frame end.
In
For embedding this expansion into the previously existing message strategy for the eoc channel within an SDSL frame, a message encoding, for example, that was previously unused is used in order to transmit existing signaling for operational purposes for exactly one type of service (for example, ISDN). A specific service number within a service type (for example, one of a plurality of ISDN connections) is addressed in a following field that lies in the parameter region of this message encoding. In the same way, a further message encoding that is still free can be employed for traditional telephone connections.
The above-described method and arrangement are illustrative of the principles of the present invention. Numerous modifications and adaptations thereof will be readily apparent to those skilled in this art without departing from the spirit and scope of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
19952303.7 | Oct 1999 | DE | national |
This application is a continuation of parent application Ser. No. 09/697,262, filed Oct. 26, 2000. The parent application is herein incorporated by reference.
Number | Date | Country | |
---|---|---|---|
Parent | 09697262 | Oct 2000 | US |
Child | 12017898 | US |