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Nvidia shows new research on using AI to improve chip designs

Published 03/27/2023, 08:23 PM
Updated 03/27/2023, 08:26 PM
© Reuters. FILE PHOTO: A smartphone with a displayed NVIDIA logo is placed on a computer motherboard in this illustration taken March 6, 2023. REUTERS/Dado Ruvic/Illustration

By Stephen Nellis

(Reuters) - Nvidia (NASDAQ:NVDA) Corp, the world's leading designer of computer chips used in creating artificial intelligence, on Monday showed new research that explains how AI can be used to improve chip design.

The process of designing a chip involves deciding where to place tens of billions of tiny on-off switches called transistors on a piece of silicon to create working chips. The exact placement of those transistors has a big impact on the chip's cost, speed and power consumption.

Chip design engineers use complex design software from firms like Synopsys (NASDAQ:SNPS) Inc and Cadence Design (NASDAQ:CDNS) Systems Inc to help them optimize the placement of those transistors.

On Monday, Nvidia released a paper showing that it could use a combination of artificial intelligence techniques to find better ways to place big groups of transistors. The paper aimed to improve on a 2021 paper by Alphabet (NASDAQ:GOOGL) Inc's Google, whose findings later became the subject of controversy.

The Nvidia research took an existing effort developed by University of Texas researchers using what is called reinforcement learning and added a second layer of artificial intelligence on top of it to get even better results.

Nvidia chief scientist Bill Dally said the work is important because chip manufacturing improvements are slowing with per-transistor costs in new generations of chip manufacturing technology now higher than previous generations.

That goes against the famous prediction by Intel Corp (NASDAQ:INTC) co-founder Gordon Moore that chips would always get cheaper and faster.

"You're no longer actually getting an economy from that scaling," Dally said. "To continue to move forward and to deliver more value to customers, we can't get it from cheaper transistors. We have to get it by being more clever on the design."

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Latest comments

Its time to push Nvda shares up again
AI is a very broad concept build on all level of hardware and software infrastructure. Most of the semiconductor used in industry AI automation does not need NVDA chips. The primary area of AI using NVDA chips is the OpenAI type of applications. Even in this area, the key is absolutely in the AI algorithm and complementation of data. NVDA chips is just to improve computation power. A good algorithm may take a few steps to come out the right answer, and a bad algorithm could takes thousands of steps and still come out with a wrong answer. One can easily see the difference between Tictok and Meta. Meta spend hundreds times more money to build its hardware infrastructure than Tictok which does not use much high end NVDA chips, but Meta result is far worse.
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