Collaborative Research: Toward Category-Level Object Recognition
协作研究:面向类别级对象识别
基本信息
- 批准号:0535166
- 负责人:
- 金额:$ 25.5万
- 依托单位:
- 依托单位国家:美国
- 项目类别:Continuing Grant
- 财政年份:2005
- 资助国家:美国
- 起止时间:2005-12-01 至 2009-11-30
- 项目状态:已结题
- 来源:
- 关键词:
项目摘要
This project addresses the problem of category-level object recognition in images: Its aim is to develop effective methodologies for representing object classes; learning the corresponding object models from cluttered sample images in a semi-supervised manner; and efficiently and robustly recognizing instances of these models in novel images despite clutter, occlusion, viewpoint and illumination changes, and individual variations within each class. Intellectual Merit. The scientific objective of this project is to develop a representation of the salient parts of an object and their relationships that can effectively be learned fromheavily cluttered data in a weakly supervised way, correctly captures within-class variability and appearance changes due to variations in viewpoint and illumination, and effectively supports inference over object models and the automated construction of efficient classification machines.Broader Impacts. This project will investigate applications of category-level object recognition to image retrieval, video annotation, human-computer interaction; surveillance and security; and robotics via international academic and industrial collaborations. Contributions to education and outreach will include training PhD students and post-doctoral researchers, and involving underrepresented groups in graduate research and undergraduate data collection and empirical evaluation projects.
该项目解决了图像中类别级对象识别的问题:其目的是开发用于表示对象类别的有效方法;以半监督的方式从杂乱的样本图像中学习相应的对象模型;并且在新的图像中,尽管有杂乱、遮挡、视点和光照的变化,以及每个类别内的个体变化,有效地、健壮地识别这些模型的实例。知识价值。该项目的科学目标是开发一个对象的突出部分及其关系的表示,该表示可以以弱监督的方式从严重混乱的数据中有效地学习,正确捕获由于视点和光照的变化而导致的类内可变性和外观变化,并有效地支持对象模型的推理和高效分类机器的自动构建。更广泛的影响。本项目将研究类别级对象识别在图像检索、视频标注、人机交互等方面的应用;监视和安全;通过国际学术和工业合作开发机器人技术。对教育和外联的贡献将包括培养博士生和博士后研究人员,以及让未被充分代表的群体参与研究生研究和本科生数据收集和实证评估项目。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Yann LeCun其他文献
Learning processes in an asymmetric threshold network
- DOI:
- 发表时间:
1986 - 期刊:
- 影响因子:0
- 作者:
Yann LeCun - 通讯作者:
Yann LeCun
Energy-based Models in Document Recognition and Computer Vision. 1. Two Challenges in Machine Learning
文档识别和计算机视觉中基于能量的模型。
- DOI:
- 发表时间:
- 期刊:
- 影响因子:0
- 作者:
Yann LeCun;S. Chopra;Aurelio Marc;Fu;Huang - 通讯作者:
Huang
Source separation with scattering Non-Negative Matrix Factorization
使用散射非负矩阵分解进行源分离
- DOI:
- 发表时间:
2015 - 期刊:
- 影响因子:0
- 作者:
Joan Bruna;P. Sprechmann;Yann LeCun - 通讯作者:
Yann LeCun
Machine Learning and the Spatial Structure of House Prices and Housing Returns
机器学习与房价和住房回报的空间结构
- DOI:
10.2139/ssrn.1316046 - 发表时间:
2008 - 期刊:
- 影响因子:0
- 作者:
Andrew Caplin;S. Chopra;John Leahy;Yann LeCun;Trivikraman Thampy - 通讯作者:
Trivikraman Thampy
Active Self-Supervised Learning: A Few Low-Cost Relationships Are All You Need
主动自我监督学习:你只需要一些低成本的关系
- DOI:
- 发表时间:
2023 - 期刊:
- 影响因子:0
- 作者:
Vivien A. Cabannes;L. Bottou;Yann LeCun;Randall Balestriero - 通讯作者:
Randall Balestriero
Yann LeCun的其他文献
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{{ truncateString('Yann LeCun', 18)}}的其他基金
RI: Small: Indoor Visual Navigation and Recognition for the Blind Using a Motion Sensing Input Device
RI:小型:使用运动感应输入设备为盲人提供室内视觉导航和识别
- 批准号:
1116923 - 财政年份:2011
- 资助金额:
$ 25.5万 - 项目类别:
Continuing Grant
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Cell Research
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