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Energy-efficient AI hardware technology via a brain-inspired stashing system?

Date:
May 17, 2022
Source:
The Korea Advanced Institute of Science and Technology (KAIST)
Summary:
研究人员已经提出了一个新颖的系统了by the neuromodulation of the brain, referred to as a 'stashing system,' that requires less energy consumption. Computer scientists have now developed a technology that can efficiently handle mathematical operations for artificial intelligence by imitating the continuous changes in the topology of the neural network according to the situation.
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FULL STORY

研究人员已经提出了一个新颖的系统了by the neuromodulation of the brain, referred to as a 'stashing system,' that requires less energy consumption. The research group led by Professor Kyung Min Kim from the Department of Materials Science and Engineering has developed a technology that can efficiently handle mathematical operations for artificial intelligence by imitating the continuous changes in the topology of the neural network according to the situation. The human brain changes its neural topology in real time, learning to store or recall memories as needed. The research group presented a new artificial intelligence learning method that directly implements these neural coordination circuit configurations.

Research on artificial intelligence is becoming very active, and the development of artificial intelligence-based electronic devices and product releases are accelerating, especially in the Fourth Industrial Revolution age. To implement artificial intelligence in electronic devices, customized hardware development should also be supported. However most electronic devices for artificial intelligence require high power consumption and highly integrated memory arrays for large-scale tasks. It has been challenging to solve these power consumption and integration limitations, and efforts have been made to find out how the human brain solves problems.

To prove the efficiency of the developed technology, the research group created artificial neural network hardware equipped with a self-rectifying synaptic array and algorithm called a 'stashing system' that was developed to conduct artificial intelligence learning. As a result, it was able to reduce energy by 37% within the stashing system without any accuracy degradation. This result proves that emulating the neuromodulation in humans is possible.

Professor Kim said, "In this study, we implemented the learning method of the human brain with only a simple circuit composition and through this we were able to reduce the energy needed by nearly 40 percent."

This neuromodulation-inspired stashing system that mimics the brain's neural activity is compatible with existing electronic devices and commercialized semiconductor hardware. It is expected to be used in the design of next-generation semiconductor chips for artificial intelligence.

This study was published inAdvanced Functional Materialsin March 2022 and supported by KAIST, the National Research Foundation of Korea, the National NanoFab Center, and SK Hynix.

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Story Source:

Materialsprovided byThe Korea Advanced Institute of Science and Technology (KAIST).注意:内容可能被编辑风格d length.


Journal Reference:

  1. Woon Hyung Cheong, Jae Bum Jeon, Jae Hyun In, Geunyoung Kim, Hanchan Song, Janho An, Juseong Park, Young Seok Kim, Cheol Seong Hwang, Kyung Min Kim.Demonstration of Neuromodulation‐inspired Stashing System for Energy‐efficient Learning of Spiking Neural Network using a Self‐Rectifying Memristor Array.Advanced Functional Materials, 2022; 2200337 DOI:10.1002 / adfm.202200337

Cite This Page:

The Korea Advanced Institute of Science and Technology (KAIST). "Energy-efficient AI hardware technology via a brain-inspired stashing system?." ScienceDaily. ScienceDaily, 17 May 2022. .
The Korea Advanced Institute of Science and Technology (KAIST). (2022, May 17). Energy-efficient AI hardware technology via a brain-inspired stashing system?.ScienceDaily. Retrieved July 31, 2023 from www.koonmotors.com/releases/2022/05/220517210435.htm
The Korea Advanced Institute of Science and Technology (KAIST). "Energy-efficient AI hardware technology via a brain-inspired stashing system?." ScienceDaily. www.koonmotors.com/releases/2022/05/220517210435.htm (accessed July 31, 2023).

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