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1
zadetkov: 7
1.
  • Networks of Networks: Complexity Class Principles Applied to Compound AI Systems Design
    Davis, Jared Quincy; Hanin, Boris; Chen, Lingjiao ... arXiv.org, 07/2024
    Paper, Journal Article
    Odprti dostop

    As practitioners seek to surpass the current reliability and quality frontier of monolithic models, Compound AI Systems consisting of many language model inference calls are increasingly employed. In ...
Celotno besedilo
Dostopno za: NUK, UL, UM, UPUK
2.
  • Are More LLM Calls All You Need? Towards Scaling Laws of Compound Inference Systems
    Chen, Lingjiao; Davis, Jared Quincy; Hanin, Boris ... arXiv (Cornell University), 06/2024
    Paper, Journal Article
    Odprti dostop

    Many recent state-of-the-art results in language tasks were achieved using compound systems that perform multiple Language Model (LM) calls and aggregate their responses. However, there is little ...
Celotno besedilo
Dostopno za: NUK, UL, UM, UPUK
3.
  • Decentralized Training of Foundation Models in Heterogeneous Environments
    Yuan, Binhang; He, Yongjun; Davis, Jared Quincy ... arXiv (Cornell University), 06/2023
    Paper, Journal Article
    Odprti dostop

    Training foundation models, such as GPT-3 and PaLM, can be extremely expensive, often involving tens of thousands of GPUs running continuously for months. These models are typically trained in ...
Celotno besedilo
Dostopno za: NUK, UL, UM, UPUK
4.
  • An Ode to an ODE
    Choromanski, Krzysztof; Davis, Jared Quincy; Likhosherstov, Valerii ... arXiv (Cornell University), 06/2020
    Paper, Journal Article
    Odprti dostop

    We present a new paradigm for Neural ODE algorithms, called ODEtoODE, where time-dependent parameters of the main flow evolve according to a matrix flow on the orthogonal group O(d). This nested ...
Celotno besedilo
Dostopno za: NUK, UL, UM, UPUK
5.
  • Time Dependence in Non-Autonomous Neural ODEs
    Davis, Jared Quincy; Choromanski, Krzysztof; Varley, Jake ... arXiv (Cornell University), 05/2020
    Paper, Journal Article
    Odprti dostop

    Neural Ordinary Differential Equations (ODEs) are elegant reinterpretations of deep networks where continuous time can replace the discrete notion of depth, ODE solvers perform forward propagation, ...
Celotno besedilo
Dostopno za: NUK, UL, UM, UPUK
6.
  • Controlling Commercial Cooling Systems Using Reinforcement Learning
    Luo, Jerry; Paduraru, Cosmin; Voicu, Octavian ... arXiv (Cornell University), 12/2022
    Paper, Journal Article
    Odprti dostop

    This paper is a technical overview of DeepMind and Google's recent work on reinforcement learning for controlling commercial cooling systems. Building on expertise that began with cooling Google's ...
Celotno besedilo
Dostopno za: NUK, UL, UM, UPUK
7.
  • On the Opportunities and Risks of Foundation Models
    Bommasani, Rishi; Hudson, Drew A; Altman, Russ ... arXiv (Cornell University), 08/2021
    Paper, Journal Article
    Odprti dostop

    AI is undergoing a paradigm shift with the rise of models (e.g., BERT, DALL-E, GPT-3) that are trained on broad data at scale and are adaptable to a wide range of downstream tasks. We call these ...
Celotno besedilo
Dostopno za: NUK, UL, UM, UPUK
1
zadetkov: 7

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