Abstract:
A multi-service platform system (200) having a VXS backplane (204) includes a VXS payload module (202) coupled to the VXS backplane, a first switched fabric enabled mezzanine card (212) coupled to the VXS payload module, and a second switched fabric enabled mezzanine card (213) coupled to the VXS payload module. VXS payload module also includes a switching element (215) communicatively interposed between the first and second switched fabric enabled mezzanine card and the switching element, wherein the first and second switched fabric enabled mezzanine card are coupled to directly communicate with a switched fabric (206, 207) via the switching element.
Abstract:
A method of performing a VMEbus split-read transaction (401) includes providing a master VMEbus module (102) coupled to a slave VMEbus module (104) through a VMEbus network (106). The master VMEbus module initiates a VMEbus split-read transaction request (124) in a VME address encoding phase (201) to the slave VMEbus module, where the VMEbus split-read transaction request includes a tag identifier (206, 306) in the VMEbus address encoding phase corresponding to the VMEbus split-read transaction request, where the tag identifier is unique to the VMEbus split-read transaction request, and where the VMEbus split-read transaction request requests a set of data (144). The master VMEbus module releases the VMEbus network and the slave VMEbus module acquires the VMEbus network. The slave VMEbus module places the set of data on the VMEbus network, wherein the set of data includes the tag identifier. The master VMEbus module correlates the tag identifier to the split-transaction request and the master VMEbus module retrieves the set of data.
Abstract:
A multi-service platform system (100) includes a switched fabric backplane (102), a baseboard (104) coupled to interface with the switched fabric backplane, a full-span switched fabric carrier module (106) coupled to interface with the baseboard, and a switched fabric link (108), wherein the full-span carrier interfaces with the baseboard via the switched fabric link.
Abstract:
A method of communicating a VMEbus transfer (235) from an initiator VMEbus domain (202) over an IP packet network (210) to a responder VMEbus domain (204) can include the initiator VMEbus domain creating the VMEbus transfer and reading a VMEbus destination address (452) of the VMEbus transfer. The VMEbus destination address can be mapped to a responder VMEbus domain IP address and the VMEbus transfer encapsulated in an IP packet (236). The IP packet can be communicated to the responder VMEbus domain over the IP packet network.
Abstract:
A method of communicating a VMEbus transfer (235) from an initiator VMEbus domain (202) over an IP packet network (210) to a responder VMEbus domain (204) can include the initiator VMEbus domain creating the VMEbus transfer and reading a VMEbus destination address (452) of the VMEbus transfer. The VMEbus destination address can be mapped to a responder VMEbus domain IP address and the VMEbus transfer encapsulated in an IP packet (236). The IP packet can be communicated to the responder VMEbus domain over the IP packet network.
Abstract:
A multi-service platform system (100) includes a VXS backplane (104), a switched fabric (106) operating on the VXS backplane, a parallel bus (108) operating coincident with the switched fabric on the VXS backplane, a VXS payload module (102) coupled to the VXS backplane, and a storage module (110) coupled to the VXS payload module, wherein the storage module is coupled to communicate with the switched fabric.
Abstract:
In a computer network (100), a method transporting a PCI Express packet (235) from an initiator PCI Express node (202) over an IP packet network (210) to a receiver PCI Express node (204), can include the initiator PCI Express node creating the PCI Express packet and reading a global PCI Express destination address (352) of the PCI Express packet. The initiator PCI Express node can map the global PCI Express destination address to a receiver PCI Express node IP address (242). The PCI Express packet can be encapsulated in an IP packet (236). The IP packet with the encapsulated PCI Express packet can be communicated over an IP packet network (210) to receiver PCI Express node.
Abstract:
A method of performing a VMEbus split-read transaction (401) includes providing a master VMEbus module (102) coupled to a slave VMEbus module (104) through a VMEbus network (106). The master VMEbus module initiates a VMEbus split-read transaction request (124) in a VME address encoding phase (201) to the slave VMEbus module, where the VMEbus split-read transaction request includes a tag identifier (206, 306) in the VMEbus address encoding phase corresponding to the VMEbus split-read transaction request, where the tag identifier is unique to the VMEbus split-read transaction request, and where the VMEbus split-read transaction request requests a set of data (144). The master VMEbus module releases the VMEbus network and the slave VMEbus module acquires the VMEbus network. The slave VMEbus module places the set of data on the VMEbus network, wherein the set of data includes the tag identifier. The master VMEbus module correlates the tag identifier to the split-transaction request and the master VMEbus module retrieves the set of data.
Abstract:
In a multi-service platform system (103), a method of transfer speed (119) negotiation includes an initiator VME module (402) communicating a negotiation code (406) to a responder VME module (404) using a two edge source synchronous protocol. If the responder VME module recognizes the negotiation code, the responder VME module communicating to the initiator VME module a negotiation ready signal (408). The initiator VME module and the responder VME module auto-negotiating for a transfer speed (119) and setting a negotiated transfer speed between the initiator VME module and the responder VME module.
Abstract:
In a computer network (100), a method transporting a PCI Express packet (235) from an initiator PCI Express node (202) over an IP packet network (210) to a receiver PCI Express node (204), can include the initiator PCI Express node creating the PCI Express packet and reading a global PCI Express destination address (352) of the PCI Express packet. The initiator PCI Express node can map the global PCI Express destination address to a receiver PCI Express node IP address (242). The PCI Express packet can be encapsulated in an IP packet (236). The IP packet with the encapsulated PCI Express packet can be communicated over an IP packet network (210) to receiver PCI Express node.