Method for Implementing a High-Level Image Representation for Image Analysis

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United States of America Patent

SERIAL NO

15289037

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Abstract

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Robust low-level image features have been proven to be effective representations for a variety of visual recognition tasks such as object recognition and scene classification; but pixels, or even local image patches, carry little semantic meanings. For high-level visual tasks, such low-level image representations are potentially not enough. The present invention provides a high-level image representation where an image is represented as a scale-invariant response map of a large number of pre-trained generic object detectors, blind to the testing dataset or visual task. Leveraging on this representation, superior performances on high-level visual recognition tasks are achieved with relatively classifiers such as logistic regression and linear SVM classifiers.

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Patent OwnerAddress
THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITYBUILDING 170 THIRD FLOOR MAIN QUAD P O BOX 2 STANFORD CALIFORNIA 94305-2038 UNITED STATES OF AMERICA

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Inventor(s)

Inventor Name Address # of filed Patents Total Citations
LI, FEI-FEI STANFORD, US 9 35
LI, JIA STANFORD, US 387 5221
SU, HAO STANFORD, US 55 280

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