LANGUAGE MODEL WITH EXTERNAL KNOWLEDGE BASE
    1.
    发明公开

    公开(公告)号:US20240073159A1

    公开(公告)日:2024-02-29

    申请号:US17897419

    申请日:2022-08-29

    Applicant: ADOBE INC.

    CPC classification number: H04L51/02 G06F40/295 G06N5/022

    Abstract: The technology described herein receives a natural-language sequence of words comprising multiple entities. The technology then identifies a plurality of entities in the natural-language sequence. The technology generates a masked natural-language sequence by masking a first entity in the natural-language sequence. The technology retrieves, from a knowledge base, information related to a second entity in the plurality of entities. The technology then trains a natural-language model to respond to a query. The training uses a first representation of the masked natural-language sequence, a second representation of the information, and the first entity.

    PERFORMANCE OF NEURAL NETWORKS USING LEARNED SPECIALIZED TRANSFORMATION FUNCTIONS

    公开(公告)号:US20210042625A1

    公开(公告)日:2021-02-11

    申请号:US16534856

    申请日:2019-08-07

    Applicant: ADOBE INC.

    Abstract: Methods and systems are provided for facilitating the creation and utilization of a transformation function system capable of providing network agnostic performance improvement. The transformation function system receives a representation from a task neural network. The representation can be input into a composite function neural network of the transformation function system. A learned composite function can be generated using the composite function neural network. The composite function can be specifically constructed for the task neural network based on the input representation. The learned composite function can be applied to a feature embedding of the task neural network to transform the feature embedding. Transforming the feature embedding can optimize the output of the task neural network.

    GENERATING ALTERNATIVE EXAMPLES FOR CONTENT

    公开(公告)号:US20250148192A1

    公开(公告)日:2025-05-08

    申请号:US18501745

    申请日:2023-11-03

    Applicant: Adobe Inc.

    Abstract: Methods, computer systems, computer-storage media, and graphical user interfaces are provided for efficiently generating alternative examples for content. In embodiments, a source example prompt is obtained at a large language model. The source example prompt includes text associated with a source content and an instruction to generate a source example from the text associated with the source content. Using the large language model, the source example that represents an entity and corresponding context from the text is generated. Thereafter, the source example and a set of user segments are provided as input into the large language model to generate alternative examples associated with the source content. Each alternative example corresponds to a user segment of the set of user segments. Based on a particular user segment associated with a user interested in the source content, an alternative example corresponding to the particular user segment is provided for display.

    USING INTRINSIC MULTIMODAL FEATURES OF IMAGE FOR DOMAIN GENERALIZED

    公开(公告)号:US20240153258A1

    公开(公告)日:2024-05-09

    申请号:US17976541

    申请日:2022-10-28

    Applicant: ADOBE INC.

    Abstract: Various embodiments classify one or more portions of an image based on deriving an “intrinsic” modality. Such intrinsic modality acts as a substitute to a “text” modality in a multi-modal network. A text modality in image processing is typically a natural language text that describes one or more portions of an image. However, explicit natural language text may not be available across one or more domains for training a multi-modal network. Accordingly, various embodiments described herein generate an intrinsic modality, which is also a description of one or more portions of an image, except that such description is not an explicit natural language description, but rather a machine learning model representation. Some embodiments additionally leverage a visual modality obtained from a vision-only model or branch, which may learn domain characteristics that are not present in the multi-modal network. Some embodiments additionally fuse or integrate the intrinsic modality with the visual modality for better generalization.

    PROVIDING INSIGHTS AND SUGGESTIONS FOR JOURNEYS

    公开(公告)号:US20210406935A1

    公开(公告)日:2021-12-30

    申请号:US16910357

    申请日:2020-06-24

    Applicant: ADOBE INC.

    Abstract: Methods and systems are provided for generating and providing insights associated with a journey. In embodiments described herein, journey data associated with a journey is obtained. A journey can include journey paths indicating workflows through which audience members can traverse. The journey data can include audience member attributes (e.g., demographics) and labels indicating journey paths traversed by audience members. A set of audience segments are determined that describe a set of audience members traversing a particular journey path. The set of audience segments can be determined using the journey data to train a segmentation model and, thereafter, analyzing the segmentation model to identify patterns that indicate audience segments associated with the particular journey path. An indication of the set of audience segments that describe the set of audience members traversing the particular journey path can be provided for display.

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