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Most Influential CVPR 2000 Paper · 2026-03 edition

A Statistical Method For 3D Object Detection Applied To Faces And Cars

H. Schneiderman and T. Kanade

Venue
IEEE Conference on Computer Vision and Pattern Recognition (CVPR) 2000
Recognition
Most Influential CVPR 2000 Paper (Rank No. 3)
Edition
2026-03
Impact factor
9
Certificate ID
6bd669c0dfed636a

Abstract

In this paper, we describe a statistical method for 3D object detection. We represent the statistics of both object appearance and "non-object" appearance using a product of histograms. Each histogram represents the joint statistics of a subset of wavelet coefficients and their position on the object. Our approach is to use many such histograms representing a wide variety of visual attributes. Using this method, we have developed the first algorithm that can reliably detect human faces with out-of-plane rotation and the first algorithm that can reliably detect passenger cars over a wide range of viewpoints.

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