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Awọn oniwadi ṣafihan awoṣe ipilẹ iwapọ fun sisẹ awọn iwe aṣẹ HTML Czech

Awọn oniwadi ti ṣafihan awoṣe ipilẹ iwapọ kan ti a pe ni HTML-LM, ti a ṣe lati ṣe ilana awọn iwe HTML Czech. Awoṣe naa ni awọn paramita miliọnu 154 ati pe o gba ikẹkọ lori awọn iwe wẹẹbu 100 million ni lilo awọn ibi-afẹde pupọ.

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Source-page capture accompanying Researchers introduce compact foundation model for Czech HTML documents processing
Iwe aṣẹ orisun akọkọOrisun ti o gbasilẹ
Olutẹwe
arxiv.org
Orisun ọna asopọ
arxiv.orghttps://arxiv.org/abs/2609.18494
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Kini o ṣẹlẹ

Researchers have developed a compact called HTML-LM, which is designed to process Czech HTML documents. The model has 154 million parameters and was trained on 100 million web documents using multiple objectives. It sets a new state-of-the-art for and regression applications in the Czech Internet domain.

The model has 154 million parameters and was trained on 100 million web documents using multiple objectives.

It sets a new state-of-the-art for and regression applications in the Czech Internet domain.

Awọn alaye orisun: arxiv.org ↗

Kini idi ti o ṣe pataki

The development of HTML-LM is significant because it addresses the limitations of existing approaches to processing web documents. It is a compact model that is both performant and economic, making it suitable for high-traffic industrial environments.

The model is trained on a large of web documents, which allows it to learn structural information inherent in HTML.

It uses a ModernBERT-based architecture, which enables it to process real-world web pages effectively.

The model is deployed in production, processing thousands of web documents per second, making it a practical solution for industrial environments.

It is released to the community under the CC BY-NC 4.0 license, making it available for use by others.

The model sets a new state-of-the-art for and regression applications in the Czech Internet domain, surpassing both larger encoders and small-sized LLMs.

Interactive Mechanism

Ibaraẹnisọrọ Mechanism: Bii O Ṣe Nṣiṣẹ Lootọ

Ṣawari imọ-ẹrọ abẹlẹ lẹhin idagbasoke yii ni ibaraenisọrọ.

Thinking Budget (Test-Time Tokens):1,024 tokens
Complex Accuracy79%Math & Code Logic
Latency3.2sTime to first full output
Inference Cost$0.0092Per query estimated
Reasoning StyleStep VerificationInternal chain depth
Active Thinking Trace:
1Deconstruct user problem into formal constraints
2Propose candidate hypotheses & step-by-step calculation
3Self-correction: Backtrack and refute subtle edge cases
4Exhaustive consistency check & final output synthesis
Core takeaway: Test-time compute fundamentally changes AI economics. Instead of only scaling during pre-training, giving reasoning models more tokens at inference time allows them to systematically solve PhD-level STEM problems.
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Kini lati wo tókàn

The development of HTML-LM is a significant step towards creating universal, high-quality representations of web documents in high-traffic industrial environments.

The model's performance and economic viability make it a promising solution for industrial environments.

The model's ability to process real-world web pages effectively makes it a practical solution for a wide range of applications.

The model's release to the community under the CC BY-NC 4.0 license makes it available for use by others.

The model's deployment in production demonstrates its ability to process thousands of web documents per second.

The model's performance in the Czech Internet domain sets a new state-of-the-art, surpassing both larger encoders and small-sized LLMs.

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