Envisaging a global infrastructure to exploit the potential of digitised collections

Tens of millions of images from biological collections have become available online over the last two decades. In parallel, there has been a dramatic increase in the capabilities of image analysis technologies, especially those involving machine learning and computer vision. While image analysis has...

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Veröffentlicht in:BDJ open 2023-11, Vol.11 (e109439), p.e109439-e109439
Hauptverfasser: Groom, Quentin, Dillen, Mathias, Addink, Wouter, Ariño, Arturo H H, Bölling, Christian, Bonnet, Pierre, Cecchi, Lorenzo, Ellwood, Elizabeth R, Figueira, Rui, Gagnier, Pierre-Yves, Grace, Olwen M, Güntsch, Anton, Hardy, Helen, Huybrechts, Pieter, Hyam, Roger, Joly, Alexis A J, Kommineni, Vamsi Krishna, Larridon, Isabel, Livermore, Laurence, Lopes, Ricardo Jorge, Meeus, Sofie, Miller, Jeremy A, Milleville, Kenzo, Panda, Renato, Pignal, Marc, Poelen, Jorrit, Ristevski, Blagoj, Robertson, Tim, Rufino, Ana C, Santos, Joaquim, Schermer, Maarten, Scott, Ben, Seltmann, Katja Chantre, Teixeira, Heliana, Trekels, Maarten, Gaikwad, Jitendra
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Sprache:eng
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Zusammenfassung:Tens of millions of images from biological collections have become available online over the last two decades. In parallel, there has been a dramatic increase in the capabilities of image analysis technologies, especially those involving machine learning and computer vision. While image analysis has become mainstream in consumer applications, it is still used only on an artisanal basis in the biological collections community, largely because the image corpora are dispersed. Yet, there is massive untapped potential for novel applications and research if images of collection objects could be made accessible in a single corpus. In this paper, we make the case for infrastructure that could support image analysis of collection objects. We show that such infrastructure is entirely feasible and well worth investing in.
ISSN:1314-2828
1314-2836
2056-807X
1314-2828
2056-807X
DOI:10.3897/BDJ.11.e109439