Dynamic differential evolution based control for typeface visual accessibility

    公开(公告)号:US12062119B2

    公开(公告)日:2024-08-13

    申请号:US17851929

    申请日:2022-06-28

    Applicant: ADOBE INC.

    CPC classification number: G06T11/203 G06F3/0482 G06F3/04847 G06T2200/24

    Abstract: Embodiments presented in this disclosure provide for dynamic application of user selected visual accessibility transforms onto glyphs of standard fonts so that, for instance, a user device can present textual content to a user in a form personalized by the user to be more readable. In accordance with some aspects, a user selection of a font transformation is received. A set of initial control points of an initial glyph is transposed based on the font transformation to generate a set of modified control points. A modified glyph is constructed using differential evolution based at least on the set of initial control points and the set of modified control points.

    Real time generative audio for brush and canvas interaction in digital drawing

    公开(公告)号:US11886768B2

    公开(公告)日:2024-01-30

    申请号:US17733635

    申请日:2022-04-29

    Applicant: Adobe Inc.

    CPC classification number: G06F3/16 G06F3/04842 G06F3/04883 G06N3/04

    Abstract: Embodiments are disclosed for real time generative audio for brush and canvas interaction in digital drawing. The method may include receiving a user input and a selection of a tool for generating audio for a digital drawing interaction. The method may further include generating intermediary audio data based on the user input and the tool selection, wherein the intermediary audio data includes a pitch and a frequency. The method may further include processing, by a trained audio transformation model and through a series of one or more layers of the trained audio transformation model, the intermediary audio data. The method may further include adjusting the series of one or more layers of the trained audio transformation model to include one or more additional layers to produce an adjusted audio transformation model. The method may further include generating, by the adjusted audio transformation model, an audio sample based on the intermediary audio data.

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