Searched full:processor (Results 1 – 25 of 516) sorted by relevance
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| /Documentation/ABI/testing/ |
| D | sysfs-class-remoteproc | 4 Description: Remote processor firmware 7 remote processor. 9 To change the running firmware, ensure the remote processor is 15 Description: Remote processor state 17 Reports the state of the remote processor, which will be one of: 25 "offline" means the remote processor is powered off. 27 "suspended" means that the remote processor is suspended and 30 "running" is the normal state of an available remote processor 33 the remote processor. 35 "invalid" is returned if the remote processor is in an [all …]
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| D | sysfs-bus-rpmsg | 7 processor. Channels are identified with a (textual) name, 19 processor. Channels have a local ("source") rpmsg address, 37 processor. Channels have a local ("source") rpmsg address, 48 remote processor. This make it a local rpmsg server, 59 processor. Channels are identified by a textual name (see 69 to the other processor, in order to let it know about the 83 processor. Channels are identified by a textual name (see 89 remote processor is referred as rpmsg driver. The rpmsg device
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| /Documentation/arch/powerpc/ |
| D | elf_hwcaps.rst | 80 The processor is PowerPC 601. 93 The processor is 40x or 44x family. 97 The processor has a unified L1 cache for instructions and data, as 99 Unused in the kernel since 39c8bf2b3cc1 ("powerpc: Retire e200 core (mpc555x processor)") 112 This is a 601 specific HWCAP, so if it is known that the processor 118 The processor is POWER4 or PPC970/FX/MP. 122 The processor is POWER5. 125 The processor is POWER5+. 128 The processor is Cell. 131 The processor implements the embedded category ("BookE") architecture. [all …]
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| D | vcpudispatch_stats.rst | 7 For Shared Processor LPARs, the POWER Hypervisor maintains a relatively 8 static mapping of the LPAR processors (vcpus) to physical processor 10 on their associated physical processor chip. However, under certain 11 scenarios, vcpus may be dispatched on a different processor chip (away 31 2. number of times this vcpu was dispatched on the same processor as last 33 3. number of times this vcpu was dispatched on a different processor core
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| /Documentation/devicetree/bindings/interrupt-controller/ |
| D | fsl,mu-msi.yaml | 16 for one processor (A side) to signal the other processor (B side) using 23 registers (Processor A-side, Processor B-side). 45 - const: processor-a-side 46 - const: processor-b-side 62 - const: processor-a-side 63 - const: processor-b-side 94 reg-names = "processor-a-side", "processor-b-side"; 98 power-domain-names = "processor-a-side", "processor-b-side";
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| /Documentation/devicetree/bindings/soc/qcom/ |
| D | qcom,smsm.yaml | 16 information between the processors in a Qualcomm SoC. Each processor is 17 assigned 32 bits of state that can be modified. A processor can through a 19 certain bit owned by a certain remote processor. 32 Identifier of the local processor in the list of hosts, or in other words 34 processor. 41 this client. Each entry represents the N:th remote processor by index 57 remote processor. 63 Each processor's state bits are described by a subnode of the SMSM device 65 remote processor's state bits or the local processors bits. The node 75 belong to a remote processor. [all …]
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| /Documentation/devicetree/bindings/remoteproc/ |
| D | ti,omap-remoteproc.yaml | 13 The OMAP family of SoCs usually have one or more slave processor sub-systems 14 that are used to offload some of the processor-intensive tasks, or to manage 17 The processor cores in the sub-system are usually behind an IOMMU, and may 21 The OMAP SoCs usually have a DSP processor sub-system and/or an IPU processor 22 sub-system. The DSP processor sub-system can contain any of the TI's C64x, 23 C66x or C67x family of DSP cores as the main execution unit. The IPU processor 27 Each remote processor sub-system is represented as a single DT node. Each node 29 the host processor (MPU) to perform the device management of the remote 30 processor and to communicate with the remote processor. The various properties 54 for this remote processor to access any external RAM memory or [all …]
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| D | st-rproc.txt | 1 STMicroelectronics Co-Processor Bindings 7 the bootloader starts a co-processor, the primary OS must detect its state 17 - clocks Clock for co-processor (See: ../clock/clock-bindings.txt) 18 - clock-frequency Clock frequency to set co-processor at if the bootloader 21 for the co-processor
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| D | renesas,rcar-rproc.yaml | 7 title: Renesas R-Car remote processor controller 15 R-Car gen3 family may have a realtime processor, this processor shares peripheral 16 and RAM with the host processor with the same address map. 32 the remote processor (e.g. remoteproc firmware and carveouts, rpmsg
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| /Documentation/admin-guide/pm/ |
| D | intel_idle.rst | 20 a particular processor model in it depends on whether or not it recognizes that 21 processor model and may also depend on information coming from the platform 26 ``intel_idle`` uses the ``MWAIT`` instruction to inform the processor that the 28 processor's functional blocks into low-power states. That instruction takes two 30 first of which, referred to as a *hint*, can be used by the processor to 47 Each ``MWAIT`` hint value is interpreted by the processor as a license to 48 reconfigure itself in a certain way in order to save energy. The processor 52 processor) corresponding to them depends on the processor model and it may also 59 for different processor models included in the driver itself and the ACPI tables 60 of the system. The former are always used if the processor model at hand is [all …]
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| /Documentation/admin-guide/acpi/ |
| D | cppc_sysfs.rst | 4 Collaborative Processor Performance Control (CPPC) 13 performance of a logical processor on a contiguous and abstract performance 40 * highest_perf : Highest performance of this processor (abstract scale). 41 * nominal_perf : Highest sustained performance of this processor 43 * lowest_nonlinear_perf : Lowest performance of this processor with nonlinear 45 * lowest_perf : Lowest performance of this processor (abstract scale). 49 The above frequencies should only be used to report processor performance in 54 Reference counter ticks up proportional to processor's reference performance. 55 Delivered counter ticks up proportional to processor's delivered performance.
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| /Documentation/peci/ |
| D | peci.rst | 8 interface between Intel processor and management controllers 13 controller is acting as a PECI originator and the processor - as 15 PECI can be used in both single processor and multiple-processor based 35 For PECI Wire, each processor package will utilize unique, fixed 37 have a fixed relationship with the processor socket ID - if one of the
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| /Documentation/hwmon/ |
| D | fam15h_power.rst | 25 1) Processor TDP (Thermal design power) 28 processor varies based on the workload being executed. Derated power 36 be calculated using different processor northbridge function 41 consumed by the processor for NB and logic external to the core. 45 the processor can support. 48 consumed by the processor. 57 attributes only for internal node0 of a multi-node processor. 62 calculate the average power consumed by a processor during a
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| D | asc7621.rst | 117 - Monitors VCCP, 2.5V, 3.3V, 5.0V, and 12V motherboard/processor supplies 137 peci_legacy = 1, PECI Processor Temperature 0 141 4 PECI Processor Temperature 0 142 5 PECI Processor Temperature 1 143 6 PECI Processor Temperature 2 144 7 PECI Processor Temperature 3 153 4 PECI Processor Temperature 0 154 5 PECI Processor Temperature 1 155 6 PECI Processor Temperature 2 156 7 PECI Processor Temperature 3 [all …]
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| D | k10temp.rst | 73 AMD Family 11h Processor Power and Thermal Data Sheet for Notebooks: 77 AMD Family 10h Server and Workstation Processor Power and Thermal Data Sheet: 81 AMD Family 10h Desktop Processor Power and Thermal Data Sheet: 99 socket type, not the processor's actual capabilities. Therefore, if you 100 are using an AM3 processor on an AM2+ mainboard, you can safely use the 108 Tctl is the processor temperature control value, used by the platform to 112 the processor temperature relative to the point at which the system must 113 supply the maximum cooling for the processor's specified maximum case 119 which the processor will throttle itself to avoid damage is available in
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| /Documentation/core-api/ |
| D | this_cpu_ops.rst | 9 variables associated with the *currently* executing processor. This is 12 specific processor). 14 this_cpu operations add a per cpu variable offset to the processor 21 processor is not changed between the calculation of the address and 33 data specific to the currently executing processor. Only the current 34 processor should be accessing that variable and therefore there are no 70 the processor. So the relocation to the per cpu base is encoded in the 87 prevent the kernel from moving the thread to a different processor 110 reserved for a specific processor. Without disabling preemption in the 115 the value of the individual counters for each processor are [all …]
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| /Documentation/staging/ |
| D | rpmsg.rst | 2 Remote Processor Messaging (rpmsg) Framework 14 Modern SoCs typically employ heterogeneous remote processor devices in 26 multimedia tasks from the main application processor. 34 hardware accessible only by the remote processor, reserving kernel-controlled 35 resources on behalf of the remote processor, etc..). 48 to the processor. To minimize the risks of rogue (or buggy) userland code 54 Every rpmsg device is a communication channel with a remote processor (thus 73 sends a message across to the remote processor from the given endpoint. 81 one becomes available (i.e. until the remote processor consumes 93 sends a message across to the remote processor from a given endpoint, [all …]
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| D | remoteproc.rst | 2 Remote Processor Framework 8 Modern SoCs typically have heterogeneous remote processor devices in asymmetric 29 existing virtio drivers with remote processor backends at a minimal development 39 Boot a remote processor (i.e. load its firmware, power it on, ...). 41 If the remote processor is already powered on, this function immediately 54 Power off a remote processor (previously booted with rproc_boot()). 76 the remote processor's refcount, so always use rproc_put() to 91 /* let's power on and boot our remote processor */ 100 * our remote processor is now powered on... give it some work 116 Allocate a new remote processor handle, but don't register [all …]
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| /Documentation/devicetree/bindings/arm/keystone/ |
| D | ti,k3-sci-common.yaml | 13 The TI K3 family of SoCs usually have a central System Controller Processor 15 resets, interrupts etc. The communication with that processor is performed 42 - description: TI-SCI processor id for the remote processor device 43 - description: TI-SCI host id to which processor control ownership
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| /Documentation/admin-guide/hw-vuln/ |
| D | gather_data_sampling.rst | 54 IA32_ARCH_CAPABILITIES[GDS_NO] R/O Processor is not vulnerable. 67 However, the processor will still enumerate AVX support. Userspace that 89 Not affected Processor not vulnerable. 90 Vulnerable Processor vulnerable and mitigation disabled. 91 Vulnerable: No microcode Processor vulnerable and microcode is missing 94 no microcode Processor is vulnerable and microcode is missing 96 Mitigation: Microcode Processor is vulnerable and mitigation is in 98 Mitigation: Microcode (locked) Processor is vulnerable and mitigation is in 101 hypervisor status Running on a virtual guest processor that is 103 processor is mitigated or vulnerable.
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| D | special-register-buffer-data-sampling.rst | 22 A processor is affected by SRBDS if its Family_Model and stepping is 67 processor. 102 Setting IA32_MCU_OPT_CTRL[0] (RNGDS_MITG_DIS) to 1 for a logical processor 104 enclave on that logical processor. Opting out of the mitigation for a 105 particular logical processor does not affect the RDRAND and RDSEED mitigations 130 Not affected Processor not vulnerable 131 Vulnerable Processor vulnerable and mitigation disabled 132 Vulnerable: No microcode Processor vulnerable and microcode is missing 134 Mitigation: Microcode Processor is vulnerable and mitigation is in 136 Mitigation: TSX disabled Processor is only vulnerable when TSX is [all …]
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| /Documentation/devicetree/bindings/powerpc/nintendo/ |
| D | gamecube.txt | 16 Represents the interface between the graphics processor and a external 25 1.b) The Processor Interface (PI) node 27 Represents the data and control interface between the main processor 28 and graphics and audio processor. 45 1.c) The Digital Signal Processor (DSP) node 47 Represents the digital signal processor interface, designed to offload
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| D | wii.txt | 25 Represents the interface between the graphics processor and a external 34 1.b) The Processor Interface (PI) node 36 Represents the data and control interface between the main processor 37 and graphics and audio processor. 56 1.c) The Digital Signal Processor (DSP) node 58 Represents the digital signal processor interface, designed to offload 120 1.j) The Inter-Processor Communication (IPC) node 122 Represent the Inter-Processor Communication interface. This interface
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| /Documentation/tee/ |
| D | amd-tee.rst | 8 TEE environment is provided by AMD Secure Processor. 10 The AMD Secure Processor (formerly called Platform Security Processor or PSP) 11 is a dedicated processor that features ARM TrustZone technology, along with a 21 User space (Kernel space) | AMD Secure Processor (PSP) 44 At the lowest level (in x86), the AMD Secure Processor (ASP) driver uses the 47 the secure processor and return results to AMD-TEE driver. The interface 48 between AMD-TEE driver and AMD Secure Processor driver can be found in [1]. 64 AMD-TEE Trusted OS is the firmware running on AMD Secure Processor.
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| /Documentation/driver-api/pm/ |
| D | cpuidle.rst | 17 fetch and execute instructions: hardware threads, if present, or processor 20 with it, there is an opportunity to save energy for the processor that it 22 instructions from memory and putting some of the processor's functional units 27 (from the kernel perspective) and ask the processor to use (or "enter") that 35 units: *governors* responsible for selecting idle states to ask the processor 45 select an idle state to ask the processor to enter in order to save some energy. 86 processor holding the given CPU can be asked to enter). 113 Called to select an idle state for the processor holding the (logical) 125 the scheduler tick before asking the processor to enter the selected 128 processor will be asked to enter the selected idle state without [all …]
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