Patent classifications
G06F13/4221
Methods and apparatus for boot time reduction in a processor and programmable logic device environment
Methods and apparatus for boot time reduction in a processor and programmable logic device environment are disclosed. An example apparatus includes a multicore processor including a first core and a second core. A bootstrap processor is to initialize the first core into a standby mode and initialize the second core into a non-standby mode. A programmable logic device is to be programmed with instructions to be executed by the programmable logic device by the second core via a first connection initialized by the second core. The bootstrap processor is to, upon completion of the programming of the programmable logic device, initialize a data connection between the programmable logic device and the second core.
HIGH PERFORMANCE INTERCONNECT LINK LAYER
Transaction data is identified and a flit is generated to include three or more slots and a floating field to be used as an extension of any one of two or more of the slots. In another aspect, the flit is to include two or more slots, a payload, and a cyclic redundancy check (CRC) field to be encoded with a 16-bit CRC value generated based on the payload. The flit is sent over a serial data link to a device for processing, based at least in part on the three or more slots.
INFORMATION PROCESSING APPARATUS
An information processing device having a processor and memory, and including one or more accelerators and one or more storage devices, wherein: the information processing device has one network for connecting the processor, the accelerators, and the storage devices; the storage devices have an initialization interface for accepting an initialization instruction from the processor, and an I/O issuance interface for issuing an I/O command; and the processor notifies the accelerators of the address of the initialization interface or the address of the I/O issuance interface.
COMMUNICATION PROTOCOLS FOR SECURE DIGITAL (SD) CARDS
In some examples, a system comprises: a socket; a controller coupled to the socket; a storage device comprising machine-readable instructions; and a processor coupled to the controller and the storage device, wherein execution of the machine-readable instructions causes the processor to: detect a Secure Digital (SD) card in the socket via the controller; prompt a user to select a communication protocol to be utilized by the system to communicate with the SD card; and enable the system to communicate with the SD card based on the user selection.
SHADOW DRAM WITH CRC+RAID ARCHITECTURE, SYSTEM AND METHOD FOR HIGH RAS FEATURE IN A CXL DRIVE
Systems, apparatuses, and methods can include a multi-stage cache for providing high reliability, availability, and serviceability (RAS). The multi-stage cache memory comprises a shadow DRAM, which is provided on a volatile main memory module, coupled to a memory controller cache, which is provided on a memory controller. During a first write operation, the memory controller writes data with a strong error correcting code (ECC) from the memory controller cache to the shadow DRAM without writing a RAID (Redundant Arrays of Inexpensive Disks) parity data. During a second write operation, the memory controller writes the data with the strong ECC and writes the RAID parity data from the shadow DRAM to a memory device provided on the volatile main memory module.
Peripheral component interconnect (PCI) hosting device
Methods and systems are disclosed to aggregate traffic from multiple server devices through a peripheral component interconnect (PCI) hosting device. In one embodiment, the PCI hosting device comprises a network interface to couple the PCI hosting device to a network, a plurality of PCI interfaces, a processing circuit to forward packets, and a power supply to supply power to the PCI interfaces independently from the plurality of server devices. Each of the PCI interfaces is designed to be coupled to one server device to the PCI hosting device, which is registered as a first PCI board of a first server device through a first PCI interface and as a second PCI board of a second server device through a second PCI interface, and the PCI hosting device is designed to forward packets between the network interface and the first server device, and the network interface and the second server device.
Efficient management of bus bandwidth for multiple drivers
Systems and methods are disclosed for efficient management of bus bandwidth among multiple drivers. An example method may comprise: receiving a request from a driver to write data via a bus; reading contents of a random access memory (RAM) at a specified interval of time to determine whether the data written by the driver is accumulated in the RAM; responsive to determining that the data written by the driver is accumulated in the RAM, determining whether a bandwidth of the bus satisfies a bandwidth condition; and responsive to determining that the bandwidth satisfies the bandwidth condition, forwarding, via the bus, a portion of the data written by the driver in the RAM to a device memory of a device.
Bus transceiver
In accordance with an embodiment, an integrated driver circuit includes: a first connection and a second connection configured to be connected to a control chip; at least one bus connection configured to be connected to a bus line; and a control circuit. The control circuit is configured to operate in a first mode or a second mode; to output a reception signal at the second connection in the second mode, where the reception signal represents a bus signal received at the bus connection; to assume a state of low power consumption in the first mode; to change from the first mode to the second mode when a first command is detected at the first connection or at the second connection; and to change from the second mode to the first mode when the bus signal does not indicate any data for a predefined period of time.
SYSTEM, METHOD, AND APPARATUS FOR SRIS MODE SELECTION FOR PCIE
Aspects of the embodiments are directed to systems, methods, and computer program products that facilitate a downstream port to operate in Separate Reference Clocks with Independent Spread Spectrum Clocking (SSC) (SRIS) mode. The system can determine that the downstream port supports one or more SRIS selection mechanisms; determine a system clock configuration from the downstream port to a corresponding upstream port connected to the downstream port by the PCIe-compliant link; set an SRIS mode in the downstream port; and transmit data across the link from the downstream port using the determined system clock configuration.
TRANSACTION LAYER CIRCUIT OF PCIE AND OPERATION METHOD THEREOF
The invention provides a transaction layer circuit of a PCIe. The transaction layer circuit includes transaction layer processing channels, a channel selection circuit, and a merge circuit. The transaction layer processing channels are coupled to a data bus transmitting at least one packet data output by a data link layer circuit of the PCIe. The channel selection circuit receives packet start/end location information in a current clock cycle from the data link layer circuit, and distributes at least one packet data in the current clock cycle to at least one transaction layer processing channel according to the packet start/end location information. The merge circuit is coupled to the transaction layer processing channels and selectively merges transaction layer processing results output by the transaction layer processing channels based on the distribution of the packet data in the current clock cycle to the transaction layer processing channels via the channel selection circuit.