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  2. Flow-based generative model - Wikipedia

    en.wikipedia.org/wiki/Flow-based_generative_model

    A flow-based generative model is a generative model used in machine learning that explicitly models a probability distribution by leveraging normalizing flow, [1] [2] [3] which is a statistical method using the change-of-variable law of probabilities to transform a simple distribution into a complex one.

  3. Generative model - Wikipedia

    en.wikipedia.org/wiki/Generative_model

    Generative adversarial network; Flow-based generative model; Energy based model; Diffusion model; If the observed data are truly sampled from the generative model, then fitting the parameters of the generative model to maximize the data likelihood is a common method.

  4. Generative artificial intelligence - Wikipedia

    en.wikipedia.org/wiki/Generative_artificial...

    Generative artificial intelligence (generative AI, GenAI, [1] or GAI) is a subset of artificial intelligence that uses generative models to produce text, images, videos, or other forms of data. [ 2 ] [ 3 ] [ 4 ] These models learn the underlying patterns and structures of their training data and use them to produce new data [ 5 ] [ 6 ] based on ...

  5. Category:Machine learning - Wikipedia

    en.wikipedia.org/wiki/Category:Machine_learning

    Flow-based generative model; Flux (machine-learning framework) Force control; Formal concept analysis; G. Generative artificial intelligence; Generative model;

  6. If I Could Buy Only 1 "Magnificent Seven" Stock in 2025, This ...

    www.aol.com/could-buy-only-1-magnificent...

    AMZN price-to-free-cash-flow data by YCharts.. The company's price-to-free-cash-flow multiple (P/FCF) of 55.7 is about half of its five-year average. I think investors are spooked by Amazon's ...

  7. Generative pre-trained transformer - Wikipedia

    en.wikipedia.org/wiki/Generative_pre-trained...

    Generative pretraining (GP) was a long-established concept in machine learning applications. [16] [17] It was originally used as a form of semi-supervised learning, as the model is trained first on an unlabelled dataset (pretraining step) by learning to generate datapoints in the dataset, and then it is trained to classify a labelled dataset. [18]

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