DocumentCode :
3673904
Title :
MuseumVisitors: A dataset for pedestrian and group detection, gaze estimation and behavior understanding
Author :
Federico Bartoli;Giuseppe Lisanti;Lorenzo Seidenari;Svebor Karaman;Alberto Del Bimbo
Author_Institution :
University of Florence, 50121 Firenze, Italy
fYear :
2015
fDate :
6/1/2015 12:00:00 AM
Firstpage :
19
Lastpage :
27
Abstract :
In this paper we describe a new dataset, under construction, acquired inside the National Museum of Bargello in Florence. It was recorded with three IP cameras at a resolution of 1280 × 800 pixels and an average framerate of five frames per second. Sequences were recorded following two scenarios. The first scenario consists of visitors watching different artworks (individuals), while the second one consists of groups of visitors watching the same artworks (groups). This dataset is specifically designed to support research on group detection, occlusion handling, tracking, re-identification and behavior analysis. In order to ease the annotation process we designed a user friendly web interface that allows to annotate: bounding boxes, occlusion area, body orientation and head gaze, group belonging, and artwork under observation. We provide a comparison with other existing datasets that have group and occlusion annotations. In order to assess the difficulties of this dataset we have also performed some tests exploiting seven representative state-of-the-art pedestrian detectors.
Keywords :
"Cameras","Detectors","Videos","Calibration","Feature extraction","Head","Computer vision"
Publisher :
ieee
Conference_Titel :
Computer Vision and Pattern Recognition Workshops (CVPRW), 2015 IEEE Conference on
Electronic_ISBN :
2160-7516
Type :
conf
DOI :
10.1109/CVPRW.2015.7301279
Filename :
7301279
Link To Document :
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