- 专利标题: LEARNING METHOD AND LEARNING DEVICE FOR LEARNING AUTOMATIC LABELING DEVICE CAPABLE OF AUTO-LABELING IMAGE OF BASE VEHICLE USING IMAGES OF NEARBY VEHICLES, AND TESTING METHOD AND TESTING DEVICE USING THE SAME
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申请号: EP20153297.5申请日: 2020-01-23
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公开(公告)号: EP3690797A2公开(公告)日: 2020-08-05
- 发明人: KIM, Kye-Hyeon , KIM, Yongjoong , KIM, Hak-Kyoung , NAM, Woonhyun , BOO, SukHoon , SUNG, Myungchul , SHIN, Dongsoo , YEO, Donghun , RYU, Wooju , LEE, Myeong-Chun , LEE, Hyungsoo , JANG, Taewoong , JEONG, Kyungjoong , JE, Hongmo , CHO, Hojin
- 申请人: Stradvision, Inc.
- 申请人地址: Suite 304-308, 5th Venture-dong 394, Jigok-ro Nam-gu Pohang-si, Gyeongsangbuk-do 37668 KR
- 专利权人: Stradvision, Inc.
- 当前专利权人: Stradvision, Inc.
- 当前专利权人地址: Suite 304-308, 5th Venture-dong 394, Jigok-ro Nam-gu Pohang-si, Gyeongsangbuk-do 37668 KR
- 代理机构: Vossius & Partner Patentanwälte Rechtsanwälte mbB
- 优先权: US201962799484P 20190131; US202016739201 20200110
- 主分类号: G06T1/00
- IPC分类号: G06T1/00 ; G06K9/00 ; G06K9/46 ; G06K9/62 ; G06T7/174 ; G06T7/33
摘要:
A method for learning an automatic labeling device for auto-labeling a base image of a base vehicle using sub-images of nearby vehicles is provided. The method includes steps of: a learning device inputting the base image and the sub-images into previous trained dense correspondence networks to generate dense correspondences; and into encoders to output convolution feature maps, inputting the convolution feature maps into decoders to output deconvolution feature maps; with an integer k from 1 to n, generating a k-th adjusted deconvolution feature map by translating coordinates of a (k+1)-th deconvolution feature map using a k-th dense correspondence; generating a concatenated feature map by concatenating the 1-st deconvolution feature map and the adjusted deconvolution feature maps; and inputting the concatenated feature map into a masking layer to output a semantic segmentation image and instructing a 1-st loss layer to calculate 1-st losses and updating decoder weights and encoder weights.
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