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  <doi_batch_id>aspg-3-561-1791416912</doi_batch_id>
  <timestamp>20261007234832</timestamp>
  <depositor>
   <depositor_name>American Scientific Publishing Group</depositor_name>
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  <journal>
   <journal_metadata language="en">
    <full_title>Fusion: Practice and Applications</full_title>
    <abbrev_title>FPA</abbrev_title>
    <issn media_type="print">2770-0070</issn>
    <issn media_type="electronic">2692-4048</issn>
   </journal_metadata>
   <journal_issue>
    <publication_date media_type="online">
     <year>2020</year>
    </publication_date>
    <journal_volume>
     <volume>2</volume>
    </journal_volume>
    <issue>2</issue>
   </journal_issue>
   <journal_article publication_type="full_text">
    <titles>
     <title>Egocentric Performance Capture: A Review</title>
    </titles>
    <contributors>
     <person_name sequence="first" contributor_role="author">
      <given_name>Shivam</given_name>
      <surname>Grover</surname>
      <affiliations>
       <institution>
        <institution_name>Bharati Vidyapeeth's College of Engineering,INDIA</institution_name>
       </institution>
      </affiliations>
     </person_name>
     <person_name sequence="additional" contributor_role="author">
      <given_name>Kshitij</given_name>
      <surname>Sidana</surname>
      <affiliations>
       <institution>
        <institution_name>Bharati Vidyapeeth's College of Engineering, INDIA</institution_name>
       </institution>
      </affiliations>
     </person_name>
     <person_name sequence="additional" contributor_role="author">
      <given_name>Vanita</given_name>
      <surname>Jain</surname>
      <affiliations>
       <institution>
        <institution_name>3Bharati Vidyapeeth's College of Engineering, INDIA</institution_name>
       </institution>
      </affiliations>
     </person_name>
    </contributors>
    <jats:abstract>
     <jats:p>Performance capture of human beings has been used to animate 3D characters for movies and games for several decades now. Traditional performance capture methods require a costly dedicated setup which usually consists of more than one sensor placed at a distance from the subject, hence requiring a large amount of budget and space to accommodate. This lowers its feasibility and portability by a huge amount. Egocentric (first-person/wearable) cameras, however, are attached to the body and hence are mobile. With the rise of acceptance of wearable technology by the general public, wearable cameras have gotten cheaper too. We can make use of their excessive portability in the performance capture domain. However, working with egocentric images is a mammoth task as the views are severely distorted due to the first-person perspective, and the body parts farther from the camera are highly prone to be occluded. In this paper, we review the existing state-of-the-art methods of performance capture using egocentric-based views.</jats:p>
    </jats:abstract>
    <publication_date media_type="online">
     <year>2020</year>
    </publication_date>
    <pages>
     <first_page>64</first_page>
     <last_page>73</last_page>
    </pages>
    <publisher_item>
     <item_number item_number_type="article-number">561</item_number>
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     <ai:license_ref applies_to="vor">https://creativecommons.org/licenses/by/4.0/</ai:license_ref>
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     <doi>10.54216/FPA.020204</doi>
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