Transferable clustering of contextual bandits for cloud service resource allocation

    公开(公告)号:US12294529B2

    公开(公告)日:2025-05-06

    申请号:US18342516

    申请日:2023-06-27

    Applicant: ADOBE INC.

    Abstract: Methods for determining optimal cloud service resource include determining a reward function for a set of resource configurations identifying cloud service resource parameters. The cloud service resource parameters include a source parameter and a target parameter of services to provide a client computing device. A source parameter dataset for the source parameter and a target parameter dataset is generated using the reward function and historical source parameter data. The matrices are then subject to SVD and clustering. A target parameter reward dataset is learned from output of the SVD and clustering. The target parameter dataset is used to determine the parameters for the target parameter for providing corresponding cloud service resources.

    ADDING DIVERSITY TO GENERATED IMAGES

    公开(公告)号:US20250131604A1

    公开(公告)日:2025-04-24

    申请号:US18491472

    申请日:2023-10-20

    Applicant: ADOBE INC.

    Abstract: Embodiments include obtaining a prompt and a diversity input indicating a level of adherence to the prompt. The diversity input may be implemented as a graphical user interface (GUI) element, such as a slider or field. Embodiments then generate a guidance embedding based on the prompt and the diversity input. Embodiments update the guidance embedding based on the diversity input. Subsequently, embodiments generate a synthetic image based on the guidance embedding, wherein the synthetic image depicts an element of the prompt based on the level of adherence from the diversity input.

    VECTOR FONT GENERATION BASED ON CASCADED DIFFUSION

    公开(公告)号:US20250124212A1

    公开(公告)日:2025-04-17

    申请号:US18507847

    申请日:2023-11-13

    Applicant: Adobe Inc.

    Abstract: In implementation of techniques for vector font generation based on cascaded diffusion, a computing device implements a glyph generation system to receive a sample glyph in a target font and a target glyph identifier. The glyph generation system generates a rasterized glyph in the target font using a raster diffusion model based on the sample glyph and the target glyph identifier, the rasterized glyph having a first level of resolution. The glyph generation system then generates a vector glyph using a vector diffusion model by vectorizing the rasterized glyph, the vector glyph having a second level of resolution different than the first level of resolution. The glyph generation system then displays the vector glyph in a user interface.

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