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Joint multi-object detection and segmentation from an untrimmed video

  • Xi'an Jiaotong University
  • HERE Global B.V.
  • Wormpex AI Research

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

1 Scopus citations

Abstract

In this paper, we present a novel method for jointly detecting and segmenting multiple objects from an untrimmed video. Unlike most existing video object segmentation methods that can only handle a trimmed video in which all video frames contain the target objects, we address a more practical and difficult problem, i.e., joint multi-object detection and segmentation from an untrimmed video where the target objects do not always appear per frame. In particular, our method consists of two modules, i.e., object decision module and object segmentation module. The object decision module is used to detect the objects and decide which target objects need to be separated out from video. As there are usually two or more target objects and they do not always appear in the whole video, we introduce the data association into object decision module to identify their correspondences among frames. The object segmentation module aims to separate the target objects identified by object decision module. In order to extensively evaluate the proposed method, we introduce a new dataset named UNVOSeg dataset, in which 7.2% of the video frames do not contain objects. Experimental results on four datasets demonstrate that our method outperforms most of the state-of-the-art approaches.

Original languageEnglish
Title of host publicationArtificial Intelligence Applications and Innovations - 16th IFIP WG 12.5 International Conference, AIAI 2020, Proceedings
EditorsIlias Maglogiannis, Lazaros Iliadis, Elias Pimenidis
PublisherSpringer
Pages317-329
Number of pages13
ISBN (Print)9783030491604
DOIs
StatePublished - 2020
Event16th IFIP WG 12.5 International Conference on Artificial Intelligence Applications and Innovations, AIAI 2020 - Neos Marmaras, Greece
Duration: 5 Jun 20207 Jun 2020

Publication series

NameIFIP Advances in Information and Communication Technology
Volume583 IFIP
ISSN (Print)1868-4238
ISSN (Electronic)1868-422X

Conference

Conference16th IFIP WG 12.5 International Conference on Artificial Intelligence Applications and Innovations, AIAI 2020
Country/TerritoryGreece
CityNeos Marmaras
Period5/06/207/06/20

Keywords

  • Data association
  • Object detection
  • Video object segmentation

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