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Learn To (Do) Deepseek Like Knowledgeable

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Bonita 작성일25-02-01 11:56

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DeepSeek-AI (2024b) DeepSeek-AI. Deepseek LLM: scaling open-source language models with longtermism. Then, the latent half is what DeepSeek launched for the DeepSeek V2 paper, where the model saves on memory utilization of the KV cache by using a low rank projection of the eye heads (on the potential value of modeling performance). The cost of decentralization: An vital caveat to all of this is none of this comes without cost - training fashions in a distributed means comes with hits to the efficiency with which you mild up each GPU throughout training. 이렇게 ‘준수한’ 성능을 보여주기는 했지만, 다른 모델들과 마찬가지로 ‘연산의 효율성 (Computational Efficiency)’이라든가’ 확장성 (Scalability)’라는 측면에서는 여전히 문제가 있었죠. DeepSeek-Coder-V2 모델은 수학과 코딩 작업에서 대부분의 모델을 능가하는 성능을 보여주는데, Qwen이나 Moonshot 같은 중국계 모델들도 크게 앞섭니다. 이런 두 가지의 기법을 기반으로, DeepSeekMoE는 모델의 효율성을 한층 개선, 특히 대규모의 데이터셋을 처리할 때 다른 MoE 모델보다도 더 좋은 성능을 달성할 수 있습니다. Gao et al. (2020) L. Gao, S. Biderman, S. Black, L. Golding, T. Hoppe, C. Foster, J. Phang, H. He, A. Thite, N. Nabeshima, et al. 32) B. He, L. Noci, D. Paliotta, I. Schlag, and T. Hofmann. Gema et al. (2024) A. P. Gema, J. O. J. Leang, G. Hong, A. Devoto, A. C. M. Mancino, R. Saxena, X. He, Y. Zhao, X. Du, M. R. G. Madani, C. Barale, R. McHardy, J. Harris, J. Kaddour, E. van Krieken, and P. Minervini.


Fishman et al. (2024) M. Fishman, B. Chmiel, R. Banner, and D. Soudry. Guo et al. (2024) D. Guo, Q. Zhu, D. Yang, Z. Xie, K. Dong, W. Zhang, G. Chen, X. Bi, Y. Wu, Y. K. Li, F. Luo, Y. Xiong, and W. Liang. Bai et al. (2022) Y. Bai, S. Kadavath, S. Kundu, A. Askell, J. Kernion, A. Jones, A. Chen, A. Goldie, A. Mirhoseini, C. McKinnon, et al. Dettmers et al. (2022) T. Dettmers, M. Lewis, Y. Belkada, and L. Zettlemoyer. Frantar et al. (2022) E. Frantar, S. Ashkboos, T. Hoefler, and D. Alistarh. Hendrycks et al. (2020) D. Hendrycks, C. Burns, S. Basart, A. Zou, M. Mazeika, D. Song, and J. Steinhardt. Bisk et al. (2020) Y. Bisk, R. Zellers, R. L. Bras, J. Gao, and Y. Choi. Dai et al. (2024) D. Dai, C. Deng, C. Zhao, R. X. Xu, H. Gao, D. Chen, J. Li, W. Zeng, X. Yu, Y. Wu, Z. Xie, Y. K. Li, P. Huang, F. Luo, C. Ruan, Z. Sui, and W. Liang. Cobbe et al. (2021) K. Cobbe, V. Kosaraju, M. Bavarian, M. Chen, H. Jun, L. Kaiser, M. Plappert, J. Tworek, J. Hilton, R. Nakano, et al. Chen et al. (2021) M. Chen, J. Tworek, H. Jun, Q. Yuan, H. P. de Oliveira Pinto, J. Kaplan, H. Edwards, Y. Burda, N. Joseph, G. Brockman, A. Ray, R. Puri, G. Krueger, M. Petrov, H. Khlaaf, G. Sastry, P. Mishkin, B. Chan, S. Gray, N. Ryder, M. Pavlov, A. Power, L. Kaiser, M. Bavarian, C. Winter, P. Tillet, F. P. Such, D. Cummings, M. Plappert, F. Chantzis, E. Barnes, A. Herbert-Voss, W. H. Guss, A. Nichol, A. Paino, N. Tezak, J. Tang, I. Babuschkin, S. Balaji, S. Jain, W. Saunders, C. Hesse, A. N. Carr, J. Leike, J. Achiam, V. Misra, E. Morikawa, A. Radford, M. Knight, M. Brundage, M. Murati, K. Mayer, P. Welinder, inated and understood expertise: Papers like this show how language models are a class of AI system that is very nicely understood at this point - there are now numerous teams in international locations all over the world who have shown themselves in a position to do finish-to-finish improvement of a non-trivial system, from dataset gathering through to architecture design and subsequent human calibration. In this half, the analysis outcomes we report are based on the interior, non-open-source hai-llm evaluation framework. Chinese simpleqa: A chinese language factuality evaluation for giant language models. • We'll explore more complete and multi-dimensional model evaluation methods to forestall the tendency in direction of optimizing a set set of benchmarks during analysis, which can create a deceptive impression of the model capabilities and affect our foundational evaluation. • We are going to consistently discover and iterate on the deep considering capabilities of our fashions, aiming to reinforce their intelligence and drawback-fixing skills by expanding their reasoning size and depth.

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