IP Library Granted Patent US 9,874,926
Granted Patent B2
US 9,874,926 · App. 14/498,319 · Granted Jan 23, 2018

Distribution of tasks among asymmetric processing elements

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Quick Facts
Patent No.
US 9,874,926
App. No.
14/498,319
Granted
Jan 23, 2018
Kind
B2
Abstract

Techniques to control power and processing among a plurality of asymmetric cores. In one embodiment, one or more asymmetric cores are power managed to migrate processes or threads among a plurality of cores according to the performance and power needs of the system.

Claims (30)

1. A system comprising:

a graphics processor;

a system memory;

a digital signal processor;

an audio I/O unit;

a video I/O unit;

a multi-core processor coupled to the graphics processor, the memory, the digital signal processor, the audio I/O unit, and the video I/O unit, the multi-core processor including a first processing core and a second processing core; and

a thread scheduler circuit to receive a power consumption metric from each of the first processing core and the second processing core, the power consumption metric to reflect an activity level, a power consumption level, a current level, and a temperature;

wherein the first processing core is capable of operating at a higher processing throughput than that of the second processing core; and

wherein the thread scheduler circuit is further to:

when the power consumption metric received from the first processing core is lower than a first threshold, transfer a task processed on the first processing core to the second processing core after saving a core state of the first processing core and providing the core state to the second processing core; and wherein the first processing core is to be placed in a lower power state after the second processing core resumes processing the task; and

when the power consumption metric received from the second processing core is above a second threshold, transfer a task processed on the second processing core to the first processing core.

2. The system of claim 1 , wherein the higher processing throughput is based on a first pipeline depth of the first processing core that is greater than a pipeline depth of the second processing core.

3. The system of claim 1 , wherein the higher processing throughput is based on a power consumption of the first processing core that is greater than a power consumption of the second processing core.

4. The system of claim 1 , wherein the thread scheduler circuit is further to transfer a task processed on the first processing core to the second processing core after saving a core state of the first processing core when the system goes from being plugged into an alternating current (A/C) outlet to a battery.

5. A system for managing software configuration at

receiving, by a thread scheduler circuit, a power consumption metric from each of a first processing core and a second processing core, the power consumption metric to reflect an activity level, a power consumption level, a current level, and a temperature, wherein the first processing core is capable of operating at a higher processing throughput than that of the second processing core;

transferring, by the thread scheduler circuit, a task from the first processing core to the second processing core when the power consumption metric received from the first processing core is lower than a first threshold; and

transferring, by the thread scheduler circuit, a task from the second processing core to the first processing core when the power consumption metric received from the second processing core is above a second threshold.

6. The method of claim 5 , wherein the higher processing throughput is based on a first pipeline depth of the first processing core that is greater than a pipeline depth of the second processing core.

7. The method of claim 5 , wherein the higher processing throughput is based on a power consumption of the first processing core that is greater than a power consumption of the second processing core.

8. A system comprising:

a multi-core processor including a first processing core and a second processing core, wherein the first processing core is to operate with at least one of a higher processing throughput, a higher temperature, and a higher current level than that of the second processing core; and

a thread scheduler circuit to receive a power consumption metric from each of the first processing core and the second processing core, the power consumption metric to reflect an activity level, a power consumption level, a current level, and a temperature, the thread scheduler circuit further to:

when the power consumption metric received from the first processing core is lower than a first threshold, transfer a task processed on the first processing core to the second processing core; and

when the power consumption metric received from the second processing core is above a second threshold, transfer a task processed on the second processing core to the first processing core.

9. The system of claim 8 , wherein the thread scheduler circuit is further to transfer a task processed on the first processing core to the second processing core when the system goes from being plugged into an alternating current (A/C) outlet to being battery powered.

10. The system of claim 8 , wherein the thread scheduler circuit is further to transfer a task processed on the second processing core to the first processing core when the system goes from being battery powered to being plugged into an alternating current (A/C) outlet.

11. The system of claim 8 , wherein the thread scheduler circuit is further to be aware of and consider processing capabilities of the first processing core and the second processing core when determining which one to schedule to execute a task.

12. The system of claim 8 , wherein at least one of the power consumption metrics received from the first processing core and the second processing core is to include an analog value.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 15, 2022
From: INTEL CORPORATION
To: TAHOE RESEARCH, LTD.
Reel/Frame 061175/0176 →