This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2008-115293 filed on Apr. 25, 2008, the content of which is incorporated by reference.
1. Field of the Invention
The present invention relates to technology that performs communication in a plurality of communication modes in a communication network.
2. Description of the Related Art
In order to construct at a low cost a communication network that supports a plurality of communication standards such as SDH (Synchronous Digital Hierarchy) and GbE (Gigabit Ethernet), a method has been used that converts signals that have undergone multiplexing using OMLDX (Optical Multiplex and Demultiplex) or the like into signals for the respective communication standards using a single CWDM (Coarse Wavelength Division Multiplexing) device.
For example, a CWDM device shown in
Further, as shown in
However in the CWDM device shown in
An exemplary object of the present invention is to provide technology that performs communication that supports a plurality of communication standards at a low cost.
To achieve the above object, according to an exemplary aspect of the invention there is provided a communication device that includes first transceiver means that transmits/receives a first signal corresponding to a first communication standard in a frame of the first communication standard, and second transceiver means that, with a clock that is synchronized with the first transceiver means, processes a second signal corresponding to a second communication standard and transmits/receives the second signal in a frame of the first communication standard.
A communication system of the invention includes a plurality of the communication devices of the invention that are connected in a ring shape.
A communication method of the invention is a method in which, first transceiver means transmits/receives a first signal corresponding to a first communication standard in a frame of the first communication standard, and second transceiver means, with a clock that is synchronized with the first transceiver means, processes a second signal corresponding to a second communication standard and transmits/receives the second signal in a frame of the first communication standard.
The above and other objects features, and advantages of the present invention will become apparent from the following description with references to the accompanying drawings which illustrate examples of the present invention.
A first exemplary embodiment for implementing the present invention will now be described in detail with reference to
Transponder 21 is an ADM (Add Drop Multiplexing) transponder that includes a communication interface that transmits/receives SDH standard signals in STM (Synchronous Transport Module)-16 units (approximately 2.4 Gbps).
Transponder 21 receives multiplexed optical signals from OMLDX 10 and transponder 23, and converts the optical signals into electrical signals. Transponder 21 cross-connects channels, that carry the signals that have been converted into electrical signals to each other. Transponder 21 then converts the cross-connected electrical signals into optical signals, and transmits the optical signals to OMLDX 10 or transponder 23.
When a node that performs SDH communication is connected, transponder 21 multiplexes a signal for SDH communication from the node or separates a signal for SDH communication to the node.
Transponder 23 is an ADM transponder that includes a communication interface for GbE communication.
Transponder 23 receives multiplexed optical signals from OMLDX 30 and transponder 21, and converts the signals into electrical signals. Transponder 23 cross-connects channels, that carry the signals that have been converted into electrical signals to each other. Transponder 21 then converts the cross-connected. Transponder 23 then converts the cross-connected electrical signals into optical signals, and transmits the optical signals to OMLDX 30 or transponder 21.
At this time) transponder 23 multiplexes a signal for GbE communication that has a clock synchronized with a signal for SDH communication into a signal for SDH communication. Further, transponder 23 separates a signal for GbE communication from an optical signal into which a signal for GbE communication has been multiplexed from OMLDX 30. For example, transponder 23 stores an Ethernet frame in a GFP frame and maps that frame into an SDH frame, or extracts an Ethernet frame stored in a GFP frame that has been mapped into an SDH frame.
Thus, by synchronizing the clock and using a GFP frame format, CWDM device 20 can transmit/receive signals of a plurality of communication standards with channels of the same wavelength.
In this connection, as long as transponder 21 includes a function that transmits/receives a signal corresponding to a predetermined communication standard, transponder 21 may be a different communication apparatus. Further, as long as transponder 23 is an apparatus that includes a function that multiplexes a signal of a different communication standard for which a clock is synchronized, transponder 23 may be a different communication apparatus. Multiplexing by transponder 23 may be a method other than a method using a GFP frame format.
As described above, according to the present exemplary embodiment, transponder 21 transmits/receives a received signal and a signal for SDH communication and, with a clock synchronized with transponder 21, processes a signal for GbE communication and transmits/receives a signal for GbE communication in an SDH frame. Since it is possible to transmit signals corresponding to a plurality of communication standards on the same wavelength, the rental charge of dark fiber can be significantly reduced and communication corresponding to a plurality of communication standards can be performed at a low cost. Further, since only one case is required, in comparison to a configuration in which a transponder is externally connected as shown in
In this connection, although according to the above described exemplary embodiment a configuration is adopted in which OMLDX (10 and 30) are provided outside CWDM device 20, a configuration may also be adopted in which OMLDX (10 and 30) are provided inside the CWDM device as shown in
The CWDM device is not limited to use of an optical fiber cable, and naturally the CWDM device may also use a coaxial cable and carry out transmitting/receiving, multiplexing, and separation of electrical signals.
A second exemplary embodiment will now be described in detail referring to
CWDM devices 20a, 20b, 20c, and 20d are connected using a single-core connection in a ring shape by an optical fiber cable. A plurality of nodes such as clients or servers are connected to communication system 1. In
As shown in
In this connection, communication system 1 can perform recovery with respect to a communication failure by a method other than UPSR, such as a BLSR (Bidirectional Line Switching Ring) method, and the topology of communication system 1 is not limited to a ring shape.
As described above, according to the present exemplary embodiment, because communication system 1 has a single-core connection configuration, a communication system that requires two rings with the CWDM device shown in
While preferred exemplary embodiments of the present invention have been described using specific terms, such description is for illustrative purposes only, and it is to be understood that changes and variations may be made without departing from the spirit or scope of the following claims.
Number | Date | Country | Kind |
---|---|---|---|
2008-115293 | Apr 2008 | JP | national |