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公开(公告)号:US20210397894A1
公开(公告)日:2021-12-23
申请号:US17467170
申请日:2021-09-03
Applicant: eBay Inc.
Inventor: Arnon Dagan , Ido Guy , Alexander Nus , Raphael Bryl , Noa Shimoni Barzilai , Avinoam Omer , Yan Radovilsky , Einav Itamar , Gadi Mikles
Abstract: Disclosed are systems, methods, and non-transitory computer-readable media for automatic image selection for online product catalogs. An image selection system gathers feature data for images of an item included in listings posted to an online marketplace. The image selection system uses the feature data as input in a machine learning model to determine probability scores indicating an estimated probability that each image is suitable to represent the item. The machine learning model is trained based on a set of training images of the item that have been labeled to indicate whether they are suitable to represent the image. The image selection system compares the probability scores and selects an image to represent the item as a stock image based on the comparison.
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公开(公告)号:US11699101B2
公开(公告)日:2023-07-11
申请号:US17467170
申请日:2021-09-03
Applicant: eBay Inc.
Inventor: Arnon Dagan , Ido Guy , Alexander Nus , Raphael Bryl , Noa Shimoni Barzilai , Avinoam Omer , Yan Radovilsky , Einav Itamar , Gadi Mikles
IPC: G06N20/00 , G06N3/08 , G06F18/214 , G06F18/21 , G06F18/2321 , G06V10/764 , G06V10/778 , G06V20/70 , G06V20/00
CPC classification number: G06N20/00 , G06F18/2148 , G06F18/2178 , G06F18/2321 , G06N3/08 , G06V10/764 , G06V10/7784 , G06V20/35 , G06V20/70
Abstract: Disclosed are systems, methods, and non-transitory computer-readable media for automatic image selection for online product catalogs. An image selection system gathers feature data for images of an item included in listings posted to an online marketplace. The image selection system uses the feature data as input in a machine learning model to determine probability scores indicating an estimated probability that each image is suitable to represent the item. The machine learning model is trained based on a set of training images of the item that have been labeled to indicate whether they are suitable to represent the image. The image selection system compares the probability scores and selects an image to represent the item as a stock image based on the comparison.
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公开(公告)号:US11113575B2
公开(公告)日:2021-09-07
申请号:US16566121
申请日:2019-09-10
Applicant: eBay Inc.
Inventor: Arnon Dagan , Ido Guy , Alexander Nus , Raphael Bryl , Noa Shimoni Barzilai , Avinoam Omer , Yan Radovilsky , Einav Itamar , Gadi Mikles
Abstract: Disclosed are systems, methods, and non-transitory computer-readable media for automatic image selection for online product catalogs. An image selection system gathers feature data for images of an item included in listings posted to an online marketplace. The image selection system uses the feature data as input in a machine learning model to determine probability scores indicating an estimated probability that each image is suitable to represent the item. The machine learning model is trained based on a set of training images of the item that have been labeled to indicate whether they are suitable to represent the image. The image selection system compares the probability scores and selects an image to represent the item as a stock image based on the comparison.
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公开(公告)号:US20210073583A1
公开(公告)日:2021-03-11
申请号:US16566121
申请日:2019-09-10
Applicant: eBay Inc.
Inventor: Arnon Dagan , Ido Guy , Alexander Nus , Raphael Bryl , Noa Shimoni Barzilai , Avinoam Omer , Yan Radovilsky , Einav Itamar , Gadi Mikles
Abstract: Disclosed are systems, methods, and non-transitory computer-readable media for automatic image selection for online product catalogs. An image selection system gathers feature data for images of an item included in listings posted to an online marketplace. The image selection system uses the feature data as input in a machine learning model to determine probability scores indicating an estimated probability that each image is suitable to represent the item. The machine learning model is trained based on a set of training images of the item that have been labeled to indicate whether they are suitable to represent the image. The image selection system compares the probability scores and selects an image to represent the item as a stock image based on the comparison.
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