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China’s top AI is still trained on Nvidia chips. What is delaying a switch to local tech?

China's top AI developers remain reliant on Nvidia chips for training large language models, despite Beijing's push for self-sufficiency, due to high transition costs and the dominance of Nvidia's CUDA software platform. Huawei Technologies' alternative CANN platform requires extensive code rewriting, with one researcher estimating migration to Ascend chips could add at least 50% in time and costs.

read1 min views1 publishedAug 10, 2026
China’s top AI is still trained on Nvidia chips. What is delaying a switch to local tech?
Image: Scmp (auto-discovered)

High transition costs are keeping AI developers in China reliant on Nvidia chips

[Beijing’s push for self-sufficiency](https://www.scmp.com/tech/big-tech/article/3348168/chinas-tech-self-sufficiency-drive-reaches-new-milestone-powerful-risc-v-chips?module=inline&pgtype=article).

While domestic hardware continues to advance, changing chip architecture presents a steep engineering bottleneck.

“Training LLMs on Nvidia chips for now remains the norm among Chinese AI developers,” said a person familiar with the industry.

One of the core hurdles lies in the software ecosystem. Nvidia’s Compute Unified Device Architecture (CUDA) platform has long been the industry standard for AI development.

By contrast, Huawei Technologies’ alternative – Compute Architecture for Neural Networks (CANN) – requires developers to rewrite and optimise large amounts of code, according to an AI researcher involved in model development.

“Our existing training pipelines are reliant on CUDA,” said James Wang, who develops AI models at a research institute affiliated with a Shanghai-based university. “CUDA code cannot run directly on Ascend and requires extensive rewriting.”

Wang estimated that migrating existing workflows to Huawei’s Ascend chips could add at least 50 per cent in time and costs for his team.

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