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公开(公告)号:US20250131276A1
公开(公告)日:2025-04-24
申请号:US18492508
申请日:2023-10-23
Applicant: QUALCOMM Incorporated
Inventor: Risheek GARREPALLI , Shubhankar Mangesh BORSE , Jisoo JEONG , Qiqi HOU , Shreya KADAMBI , Munawar HAYAT , Fatih Murat PORIKLI
IPC: G06N3/09
Abstract: A method for training a diffusion model includes randomly selecting, for each iteration of a step distillation training process, a teacher model of a group of teacher models. The method also includes applying, at each iteration, a clipped input space within step distillation of the randomly selected teacher model. The method further includes updating, at each iteration, parameters of the diffusion model based on guidance from the randomly selected teacher model.
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公开(公告)号:US20240412493A1
公开(公告)日:2024-12-12
申请号:US18537404
申请日:2023-12-12
Applicant: QUALCOMM Incorporated
Inventor: Risheek GARREPALLI , Yunxiao SHI , Hong CAI , Yinhao ZHU , Shubhankar Mangesh BORSE , Jisoo JEONG , Debasmit DAS , Manish Kumar SINGH , Rajeev YASARLA , Shizhong Steve HAN , Fatih Murat PORIKLI
IPC: G06V10/776 , G06T7/50 , G06V10/764 , G06V10/82 , G06V20/70
Abstract: Systems and techniques are provided for processing image data. According to some aspects, a computing device can generate a gradient (e.g., a classifier gradient using a trained classifier) associated with a current sample. The computing device can combine the gradient with an iterative model estimated score function or data associated with the current sample to generate a score function estimate. The computing device can predict, using the diffusion machine learning model and based on the score function estimate, a new sample.
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公开(公告)号:US20240404093A1
公开(公告)日:2024-12-05
申请号:US18327380
申请日:2023-06-01
Applicant: QUALCOMM Incorporated
Inventor: Jisoo JEONG , Hong CAI , Risheek GARREPALLI , Fatih Murat PORIKLI , Mathew SAM , Khalid TAHBOUB , Bing HAN
IPC: G06T7/593
Abstract: Systems and techniques are provided for generating disparity information from two or more images. For example, a process can include obtaining first disparity information corresponding to a pair of images, the pair of images including a first image of a scene and a second image of the scene. The process can include obtaining confidence information associated with the first disparity information. The process can include processing, using a machine learning network, the first disparity information and the confidence information to generate second disparity information corresponding to the pair of images. The process can include combining, based on the confidence information, the first disparity information with the second disparity information to generate a refined disparity map corresponding to the pair of images.
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公开(公告)号:US20240161312A1
公开(公告)日:2024-05-16
申请号:US18477493
申请日:2023-09-28
Applicant: QUALCOMM Incorporated
Inventor: Jisoo JEONG , Risheek GARREPALLI , Hong CAI , Fatih Murat PORIKLI
IPC: G06T7/246
CPC classification number: G06T7/248 , G06T2207/10016 , G06T2207/20081 , G06T2207/20084
Abstract: A computer-implemented method includes generating a first augmented frame by combining a first image and a first frame of a first frame pair. The computer-implemented method also includes generating, via an optical flow estimation model, a first flow estimation based on a second frame of the first frame pair and the first augmented frame. The computer-implemented method further includes updating one or both of parameters or weights of the optical flow estimation model based on a first loss between the first flow estimation and a training target.
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