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Tether Launches Mobile On-Device Medical AI: $1.7B Small Model Outperforms 16x Larger Model, Completely Eliminating Cloud Reliance
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2026-05-07 12:02

According to CoinBeat Monitoring, Tether's USDT issuer, the AI research team, announced today the launch of the QVAC MedPsy series of medical language models, designed for localized medical AI on low-power terminals such as smartphones and wearables. It can run without relying on a cloud server, achieving performance far beyond model size through efficient architecture: the 1.7B parameter version averages a score of 62.62 on seven closed medical benchmarks, surpassing Google's MedGemma-4B by 11.42 points, and outperforming the MedGemma-27B with nearly 16 times the parameter size in real clinical scenarios such as HealthBench Hard; the 4B parameter version scores even higher at 70.54, surpassing larger models comprehensively while significantly reducing inference token consumption (up to 3.2 times) and released in quantized GGUF format (1.7B around 1.2GB), suitable for mobile and edge deployment.

This release challenges the traditional assumption of "larger model = better performance," focusing on efficiency through phased medical post-training (supervised, clinical inference data + reinforcement learning) to achieve true local privacy protection and low-latency inference. Tether CEO Paolo Ardoino stated that this allows medical AI to process sensitive data directly on-site at hospitals and device ends without the need to transmit to the cloud, reducing costs, latency, and privacy risks, potentially reshaping the infrastructure of medical AI and promoting local deployment globally, especially in underdeveloped regions.

출처:BlockBeats

면책 조항: 현재 콘텐츠는 제3자 관점에서 제공되거나 제3자 관점에서 AI가 직접 번역한 것입니다. CoinEx는 콘텐츠의 진위성, 정확성, 독창성을 보장하지 않으며 CoinEx의 투자 조언으로 간주하지 않습니다. 암호화폐 가격은 변동성이 크므로 잠재적인 위험에 유의하시기 바랍니다.

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