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HyperCLOVA 204B

Training compute
2×10²³ FLOP
Parameters
204B
Published
Sep 10, 2021

HyperCLOVA 204B is an AI model developed by NAVER (South Korea), first published in September 2021. It works in the language domain, on tasks such as language modeling/generation. It counts among the frontier models: the systems trained with the most compute of their moment.

Training it took an estimated 2×10²³ FLOP of compute. The model has 204,000,000,000 parameters. It was trained on roughly 560B datapoints. Training ran on NVIDIA A100. The compute alone is estimated at $442K in 2023 dollars.

Access: Hosted access (no API). Its weights are not openly released. The reference paper has 92 citations. Epoch AI rates the confidence of this record as speculative.

Full record
Organization
NAVER
Country of organization
South Korea
Domain
Language
Task
Language modeling/generation
Training compute
2×10²³ FLOP
Parameters
204,000,000,000
Dataset size
560B
Training hardware
NVIDIA A100
Training cost (2023 USD)
$442K
Model accessibility
Hosted access (no API)
Open weights
No
Citations
92
Epoch confidence
Speculative
More from NAVER
SourceEpoch AI, 'AI Models'. Published online at epoch.ai. Retrieved 2026-07-29 from https://epoch.ai/data/ai-models. Licensed under CC BY 4.0.
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