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Environment Recognition based on Images using Bag-of-Words

  • Kaunas University of Technology
  • Częstochowa University of Technology

Wyniki badań: Rozdział w książce/raport/materiał konferencyjnyWkład w konferencjęrecenzja

Abstrakt

Object and scene recognition solutions have a wide application field from entertainment apps, and medical tools to security systems. In this paper, scene recognition methods and applications are analysed, and the Bag of Words (BoW), a local image feature based scene classification model is implemented. In the BoW model every picture is encoded by a bag of visual features, which shows the quantities of different visual features of an image, but disregards any spatial information. Five different feature detectors and two feature descriptors were analyzed and two best approaches were experimentally chosen as being most effective classifying images into eight outdoor categories: forced feature detection with a grid and description using SIFT descriptor, and feature detection with SURF and description with U-SURF. Support vector machines were used for classification. We also have found that for the task of scene recognition not just the distinct features which are found by common feature detectors are important, but also the features that are uninteresting for them. Indoor scenes were experimentally classified into five categories and worse results were achieved. This shows that indoor scene classification is a much harder task and a model which does not take into account any mid-level scene information like objects of the scene is not sufficient for the task. A computer application was written in order to demonstrate the algorithm, which allows training new classifiers with different parameters and using the trained classifiers to predict the classes of new images.

Język oryginałuangielski
Tytuł publikacji goszczącejProceedings of the 9th International Joint Conference on Computational Intelligence, IJCCI 2017
RedaktorzyChristophe Sabourin, Juan Julian Merelo, Una-May O'Reilly, Kurosh Madani, Kevin Warwick
WydawcaScience and Technology Publications, Lda
Strony166-176
Liczba stron11
ISBN (drukowany)9789897582745
Identyfikatory DOI
Status publikacjiOpublikowano - 2017
Wydarzenie9th International Joint Conference on Computational Intelligence, IJCCI 2017 - Funchal, Portugalia
Czas trwania: 1 lis 20173 lis 2017

Seria publikacji

NazwaInternational Joint Conference on Computational Intelligence
Tom1
ISSN (elektroniczny)2184-3236

Konferencja

Konferencja9th International Joint Conference on Computational Intelligence, IJCCI 2017
Kraj/TerytoriumPortugalia
MiejscowośćFunchal
Okres1/11/173/11/17

Obszary tematyczne ASJC Scopus

  • Sztuczna inteligencja
  • Teoria i matematyka obliczeń

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