Claims
- 1. A distributed cable modem termination system in a hybrid fiber/coaxial (HFC) plant, comprising:
a network layer; at least one media access control layer, said at least one media access control layer implementing a media access control chip; and at least one physical layer, said at least one physical layer interfacing to said media access control chip in said at least one media access control layer; wherein said network layer, said at least one media access control layer, and said at least one physical layer each function as separate modules, enabling said network layer, said at least one media access layer and said at least one physical layer to each be in a separate component location of said HFC plant, wherein said network layer is connected to said at least one media access control layer and said at least one physical layer is connected to said at least one media access control layer.
- 2. The distributed cable modem termination system of claim 1, wherein said media access control chip provides timing signals to maintain components in said at least one physical layer.
- 3. The distributed cable modem termination system of claim 2, wherein said components in said at least one physical layer include a downstream module and an upstream module.
- 4. The distributed cable modem termination system of claim 1, wherein said media access control chip is coupled to a first buffer for buffering upstream packets and to a central processing unit (CPU), said CPU coupled to a second buffer, wherein said CPU extracts and processes said buffered upstream packets for transmission to said network layer via a network interface subsystem coupled to said CPU and to said network layer.
- 5. The distributed cable modem termination system of claim 4, wherein said media access control chip is also coupled to said network interface subsystem for providing an extra layer of encapsulation to allow a packet to pass directly to said network interface subsystem, thereby bypassing said CPU.
- 6. The distributed cable modem termination system of claim 1, wherein said media access control chip is coupled to a first buffer for buffering upstream packets, a central processing unit (CPU), and a network layer interface, said CPU is coupled to a second buffer and to said network layer interface, and said network layer interface is coupled to said network layer, wherein said media access control chip includes a packet portal feature that enables said media access control chip to process packets for transmission to said network layer, via network layer interface, thereby bypassing said CPU.
- 7. The distributed cable modem termination system of claim 1, wherein said media access control chip provides a timing offset feature that allows said media access control chip to handle timing delays between said at least one media access control layer and said at least one physical layer.
- 8. The distributed cable modem termination system of claim 1, wherein said network layer is located in a fiber portion of said HFC plant and said at least one media access control layer and said at least one physical layer are located in a coaxial portion of said HFC plant to increase bandwidth allocations to one or more cable modems.
- 9. The distributed cable modem termination system of claim 1, wherein said network layer is placed in a headend of said HFC plant, said at least one media access control layer is placed in a hub of said HFC plant, and said at least one physical layer is placed in one or more fiber nodes of said HFC plant to increase bandwidth allocations to one or more cable modems.
- 10. The distributed cable modem termination system of claim 9, wherein said hub is a primary hub.
- 11. The distributed cable modem termination system of claim 9, wherein said hub is a secondary hub.
- 12. The distributed cable modem termination system of claim 1, wherein said network layer is placed in a primary hub of said HFC plant, said at least one media access control layer is placed in a secondary hub of said HFC plant, and said at least one physical layer is placed in one or more post fiber nodes of said HFC plant to increase bandwidth allocations to one or more cable modems.
- 13. The distributed cable modem termination system of claim 1, wherein said network layer is placed in one of a headend and a hub of a fiber portion of said HFC plant, and said at least one media access control layer and said at least one physical layer are co-located in one or more fiber nodes of said fiber portion of said HFC plant to increase bandwidth allocations to one or more cable modems located in a coaxial portion of said HFC plant.
- 14. The distributed cable modem termination system of claim 1, wherein said network layer is placed in one of a headend and a hub of a fiber portion of said HFC plant, said at least one media access control layer is placed in one or more fiber nodes of said HFC plant, and said at least one physical layer is placed in one or more post fiber nodes of said HFC plant to increase bandwidth allocations to one or more cable modems located in a coaxial portion of said HFC plant.
- 15. The distributed cable modem termination system of claim 1, wherein said network layer is placed in one of a headend and a hub of a fiber portion of said HFC plant, and said at least one media access control layer and said at least one physical layer are co-located in one or more post fiber nodes of said HFC plant to increase bandwidth allocations to one or more cable modems.
- 16. The distributed cable modem termination system of claim 15, wherein said hub is a primary hub.
- 17. The distributed cable modem termination system of claim 15, wherein said hub is a secondary hub.
- 18. The distributed cable modem termination system of claim 1, wherein said network layer is placed in a headend of said HFC plant and said at least one media access control layer and said at least one physical layer are co-located in one or more fiber nodes or one or more post fiber nodes of said HFC plant to increase bandwidth allocations to one or more cable modems.
- 19. The distributed cable modem termination system of claim 1, wherein said HFC plant comprises a headend, a primary hub, and a secondary hub in a fiber portion of said HFC plant, wherein said network layer is placed in said headend, said at least one media access layer is placed in said primary hub, and said at least one physical layer is placed in said secondary hub to increase bandwidth allocations to one or more cable modems located in a coaxial portion of said HFC plant.
- 20. The distributed cable modem termination system of claim 1, wherein said HFC plant comprises a headend, a primary hub, a secondary hub, and one or more fiber nodes in a fiber portion of said HFC plant, wherein said network layer is placed in said headend, said at least one media access layer is placed in one of said primary hub and said secondary hub, and said at least one physical layer is placed in said one or more fiber nodes to increase bandwidth allocations to one or more cable modems located in a coaxial portion of said HFC plant.
- 21. The distributed cable modem termination system of claim 1, wherein said HFC plant comprises a headend, a primary hub, a secondary hub, and one or more fiber nodes in a fiber portion of said HFC plant, wherein said network layer is placed in said headend, said at least one media access layer is placed in one of said primary hub and said secondary hub, and said at least one physical layer is placed in said one or more fiber nodes to increase bandwidth allocations to one or more cable modems located in a coaxial portion of said HFC plant.
- 22. The distributed cable modem termination system of claim 1, wherein said HFC plant comprises a headend, a primary hub, a secondary hub, and one or more fiber nodes in a fiber portion of said HFC plant, wherein said network layer is placed in one of said headend, said primary node and said secondary node, and said at least one media access layer and said at least one physical layer are co-located in said one or more fiber nodes to increase bandwidth allocations to one or more cable modems located in a coaxial portion of said HFC plant.
- 23. The distributed cable modem termination system of claim 1, wherein said HFC plant comprises a headend, a primary hub, a secondary hub, one or more fiber nodes, and one or more post fiber nodes, wherein said network layer is placed in said headend, said at least one media access layer is placed in one of said primary hub and said secondary hub, and said at least one physical layer is placed in said one or more post fiber nodes to increase bandwidth allocations to one or more cable modems located in a coaxial portion of said HFC plant.
- 24. The distributed cable modem termination system of claim 1, wherein said HFC plant comprises a headend, a primary hub, a secondary hub, one or more fiber nodes, and one or more post fiber nodes, wherein said network layer is placed in one of said headend, said primary node, and said secondary node, said at least one media access layer is placed in one said one or more fiber nodes, and said at least one physical layer is placed in said one or more post fiber nodes to increase bandwidth allocations to one or more cable modems located in a coaxial portion of said HFC plant.
- 25. The distributed cable modem termination system of claim 1, wherein said HFC plant comprises a headend, a primary hub, a secondary hub, one or more fiber nodes, and one or more post fiber nodes, wherein said network layer is placed in one of said headend, said primary node, and said secondary node, said at least one media access layer and said at least one physical layer are co-located in said one or more post fiber nodes to increase bandwidth allocations to one or more cable modems located in a coaxial portion of said HFC plant.
- 26. A distributed cable modem termination system (CMTS) in a hybrid fiber/coaxial (HFC) plant, comprising:
at least one network layer; at least one physical layer; and at least one media access control layer, said at least one media access control layer implementing a media access control chip for interfacing with said at least one physical layer; wherein said media access control chip provides packet level media access control functions and a timing offset feature for handling time delays between said at least one media access control layer and said at least one physical layer to enable said at least one network layer, said at least one media access control layer, and said at least one physical layer to each be in separate component locations of the HFC plant, wherein said at least one network layer is connected to said at least one media access control layer and said at least one physical layer is connected to said at least one media access control layer.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to the following non-provisional applications:
[0002] “A MiniMAC Implementation of a Distributed Cable Modem Termination System (CMTS) Architecture,” U.S. patent application Ser. No. ______ TBD (Attorney Docket No. 1875.2630000), by Scott Cummings et al., filed concurrently herewith and incorporated by reference herein in its entirety.
[0003] “A Distributed Cable Modem Termination System (CMTS) Architecture Implementing a Media Access Control Chip,” U.S. patent application Ser. No. ______ TBD (Attorney Docket No. 1875.2560001), by Scott Cummings et al., filed concurrently herewith and incorporated by reference herein in its entirety.
[0004] “A Distributed Cable Modem Termination System (CMTS) Architecture,” U.S. patent application Ser. No. ______ TBD (Attorney Docket No. 1875.2550000), by Scott Cummings et al., filed concurrently herewith and incorporated by reference herein in its entirety.