4.6 Article

WhiskEras: A New Algorithm for Accurate Whisker Tracking

期刊

FRONTIERS IN CELLULAR NEUROSCIENCE
卷 14, 期 -, 页码 -

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fncel.2020.588445

关键词

sensorimotor integration; whiskers; object tracking; algorithm; cerebellum; Purkinje cell; mouse; machine learning

资金

  1. European Union [687628, 754337]
  2. Dutch Organization for Medical Sciences (ZonMw), Life Sciences (ALW-ENW-Klein)
  3. European Research Council (ERC-adv)
  4. European Research Council (ERC-PoC)
  5. NWO-Groot (CUBE)
  6. EU-LISTEN ITN Program
  7. Medical Neuro-Delta
  8. LSHNWO (Crossover, INTENSE)
  9. Albinism Vriendenfonds NIN
  10. van Raamsdonk fonds
  11. Trustfonds Rotterdam

向作者/读者索取更多资源

Rodents engage in active touch using their facial whiskers: they explore their environment by making rapid back-and-forth movements. The fast nature of whisker movements, during which whiskers often cross each other, makes it notoriously difficult to track individual whiskers of the intact whisker field. We present here a novel algorithm, WhiskEras, for tracking of whisker movements in high-speed videos of untrimmed mice, without requiring labeled data. WhiskEras consists of a pipeline of image-processing steps: first, the points that form the whisker centerlines are detected with sub-pixel accuracy. Then, these points are clustered in order to distinguish individual whiskers. Subsequently, the whiskers are parameterized so that a single whisker can be described by four parameters. The last step consists of tracking individual whiskers over time. We describe that WhiskEras performs better than other whisker-tracking algorithms on several metrics. On our four video segments, WhiskEras detected more whiskers per frame than the Biotact Whisker Tracking Tool. The signal-to-noise ratio of the output of WhiskEras was higher than that of Janelia Whisk. As a result, the correlation between reflexive whisker movements and cerebellar Purkinje cell activity appeared to be stronger than previously found using other tracking algorithms. We conclude that WhiskEras facilitates the study of sensorimotor integration by markedly improving the accuracy of whisker tracking in untrimmed mice.

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