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检索条件"任意字段=2009 IEEE Conference on Computer Vision and Pattern Recognition, CVPR 2009"
20950 条 记 录,以下是501-510 订阅
排序:
Visual Programming: Compositional visual reasoning without training
Visual Programming: Compositional visual reasoning without t...
收藏 引用
ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Gupta, Tanmay Kembhavi, Aniruddha PRIOR Allen Inst AI Seattle WA 98103 USA
We present VISPROG, a neuro-symbolic approach to solving complex and compositional visual tasks given natural language instructions. VISPROG avoids the need for any task-specific training. Instead, it uses the in-cont... 详细信息
来源: 评论
YOLOv7: Trainable bag-of-freebies sets new state-of-the-art for real-time object detectors
YOLOv7: Trainable bag-of-freebies sets new state-of-the-art ...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Wang, Chien-Yao Bochkovskiy, Alexey Liao, Hong-Yuan Mark Acad Sinica Inst Informat Sci Taipei Taiwan
Real-time object detection is one of the most important research topics in computer vision. As new approaches regarding architecture optimization and training optimization are continually being developed, we have foun... 详细信息
来源: 评论
Towards Explainable Visual Vessel recognition Using Fine-Grained Classification and Image Retrieval
Towards Explainable Visual Vessel Recognition Using Fine-Gra...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Karus, Heiko Schwenker, Friedhelm Munz, Michael Teutsch, Michael Hensoldt Optron GmbH Oberkochen Germany Ulm Univ Ulm Germany Ulm Univ Appl Sci Ulm Germany
The precise recognition of vessel types is critical for applications in maritime surveillance, but manual visual inspection is slow and error-prone. Automated fine-grained object recognition helps to quickly and accur... 详细信息
来源: 评论
Frequency Decoupling for Motion Magnification via Multi-Level Isomorphic Architecture
Frequency Decoupling for Motion Magnification via Multi-Leve...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Wang, Fei Guo, Dan Li, Kun Zhong, Zhun Wang, Meng Hefei Univ Technol Sch Comp Sci & Informat Engn Hefei Peoples R China Hefei Comprehens Natl Sci Ctr Inst Artificial Intelligence Hefei Peoples R China Univ Nottingham Sch Comp Sci Nottingham NG8 1BB England
Video Motion Magnification (VMM) aims to reveal subtle and imperceptible motion information of objects in the macroscopic world. Prior methods directly model the motion field from the Eulerian perspective by Represent... 详细信息
来源: 评论
Large-Scale Bidirectional Training for Zero-Shot Image Captioning
Large-Scale Bidirectional Training for Zero-Shot Image Capti...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Kim, Taehoon Marsden, Mark Ahn, Pyunghwan Kim, Sangyun Lee, Sihaeng Sala, Alessandra Kim, Seung Hwan LG AI Res Seoul South Korea Shutterstock New York NY USA
When trained on large-scale datasets, image captioning models can understand the content of images from a general domain but often fail to generate accurate, detailed captions. To improve performance, pretraining-and-... 详细信息
来源: 评论
Low Latency Point Cloud Rendering with Learned Splatting
Low Latency Point Cloud Rendering with Learned Splatting
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Hu, Yueyu Gong, Ran Sun, Qi Wang, Yao NYU Tandon Sch Engn Brooklyn NY 11201 USA Tsinghua Univ Beijing Peoples R China
Point cloud is a critical 3D representation with many emerging applications. Because of the point sparsity and irregularity, high-quality rendering of point clouds is challenging and often requires complex computation... 详细信息
来源: 评论
PartDistill: 3D Shape Part Segmentation by vision-Language Model Distillation
PartDistill: 3D Shape Part Segmentation by Vision-Language M...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Umam, Ardian Yang, Cheng-Kun Chen, Min-Hung Chuang, Jen-Hui Lin, Yen-Yu Natl Yang Ming Chiao Tung Univ Hsinchu Taiwan MediaTek Hsinchu Taiwan NVIDIA Taipei Taiwan
This paper proposes a cross-modal distillation framework, PartDistill, which transfers 2D knowledge from vision-language models (VLMs) to facilitate 3D shape part segmentation. PartDistill addresses three major challe... 详细信息
来源: 评论
Generalizable Whole Slide Image Classification with Fine-Grained Visual-Semantic Interaction
Generalizable Whole Slide Image Classification with Fine-Gra...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Li, Hao Chen, Ying Chen, Yifei Yu, Rongshan Yang, Wenxian Wang, Liansheng Ding, Bowen Han, Yuchen Xiamen Univ Sch Informat Xiamen Peoples R China Huawei Xiamen Peoples R China Aginome Sci Xiamen Peoples R China Shanghai Jiao Tong Univ Shanghai Chest Hosp Dept Pathol Sch Med Shanghai Peoples R China
Whole Slide Image (WSI) classification is often formulated as a Multiple Instance Learning (MIL) problem. Recently, vision-Language Models (VLMs) have demonstrated remarkable performance in WSI classification. However... 详细信息
来源: 评论
What Do You See in Vehicle? Comprehensive vision Solution for In-Vehicle Gaze Estimation
What Do You See in Vehicle? Comprehensive Vision Solution fo...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Cheng, Yihua Zhu, Yaning Wang, Zongji Hao, Hongquan Liu, Yongwei Cheng, Shiqing Wang, Xi Chang, Hyung Jin Univ Birmingham Birmingham W Midlands England Huazhong Univ Sci & Technol Wuhan Hubei Peoples R China Chinese Acad Sci NIST Beijing Peoples R China CalmCar Suzhou Jiangsu Peoples R China
Driver's eye gaze holds a wealth of cognitive and intentional cues crucial for intelligent vehicles. Despite its significance, research on in-vehicle gaze estimation remains limited due to the scarcity of comprehe... 详细信息
来源: 评论
Scaling Language-Image Pre-training via Masking
Scaling Language-Image Pre-training via Masking
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Li, Yanghao Fan, Haoqi Hu, Ronghang Feichtenhofert, Christoph He, Kaiming Meta AI FAIR New York NY 10023 USA
We present Fast Language-Image Pre-training (FLIP), a simple and more efficient method for training CLIP [52]. Our method randomly masks out and removes a large portion of image patches during training. Masking allows... 详细信息
来源: 评论