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A General Framework for Object Detection

Published: 04 January 1998 Publication History

Abstract

This paper presents a general trainable framework for object detection in static images of cluttered scenes. The detection technique we develop is based on a wavelet representation of an object class derived from a statistical analysis of the class instances. By learning an object class in terms of a subset of an overcomplete dictionary of wavelet basis functions, we derive a compact representation of an object class which is used as an input to a support vector machine classifier. This representation overcomes both the problem of in-class variability and provides a low false detection rate in unconstrained environments.We demonstr ate the capabilities of the technique in two domains whose inherent information content differs significantly. The first system is face detection and the second is the domain of people which, in contrast to faces, vary greatly in color, texture, and patterns. Unlike previous approaches, this system learns from examples and does not rely on any a priori (hand-crafted) models or motion-based segmentation. The paper also presents a motion-based extension to enhance the performance of the detection algorithm over video sequences. The results presented here suggest that this architecture may well be quite general.

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      cover image Guide Proceedings
      ICCV '98: Proceedings of the Sixth International Conference on Computer Vision
      January 1998
      ISBN:8173192219

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      IEEE Computer Society

      United States

      Publication History

      Published: 04 January 1998

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      • (2021)Your Eyes Show What Your Eyes See (Y-EYES)Proceedings of the 1st Workshop on Security and Privacy for Mobile AI10.1145/3469261.3469408(25-30)Online publication date: 24-Jun-2021
      • (2021)Enhancing airplane boarding procedure using vision based passenger classification2016 IEEE 19th International Conference on Intelligent Transportation Systems (ITSC)10.1109/ITSC.2016.7795642(772-777)Online publication date: 10-Mar-2021
      • (2019)Person-following by autonomous robotsInternational Journal of Robotics Research10.1177/027836491988168338:14(1581-1618)Online publication date: 1-Dec-2019
      • (2019)The Ground Target Detection and Tracking Method in Surveillance VideoProceedings of the 2019 5th International Conference on Computing and Data Engineering10.1145/3330530.3330537(70-76)Online publication date: 4-May-2019
      • (2019)Constant-Time Calculation of Zernike Moments for Detection with Rotational InvarianceIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2018.280382841:3(537-551)Online publication date: 1-Mar-2019
      • (2018)Research on Facial Expression Recognition Technology Based on Convolutional-Neural-Network StructureInternational Journal of Software Innovation10.4018/IJSI.20181001086:4(103-116)Online publication date: 1-Oct-2018
      • (2018)Foreground Object Detection Combining Gaussian Mixture Model and Inter-Frame Difference in the Application of Classroom recording ApparatusProceedings of the 2018 10th International Conference on Computer and Automation Engineering10.1145/3192975.3193020(111-115)Online publication date: 24-Feb-2018
      • (2018)Using machine learning to detect and localize concealed objects in passive millimeter-wave imagesEngineering Applications of Artificial Intelligence10.1016/j.engappai.2017.09.00567:C(81-90)Online publication date: 1-Jan-2018
      • (2018)Enhancing lifetime of visual sensor networks with a preprocessing-based multi-face detection methodWireless Networks10.1007/s11276-017-1451-z24:6(1939-1951)Online publication date: 1-Aug-2018
      • (2018)Fast 2D/3D object representation with growing neural gasNeural Computing and Applications10.1007/s00521-016-2579-y29:10(903-919)Online publication date: 1-May-2018
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