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Sci Rep ; 13(1): 8213, 2023 05 22.
Article in English | MEDLINE | ID: mdl-37217558

ABSTRACT

Counting cells is a cornerstone of tracking disease progression in neuroscience. A common approach for this process is having trained researchers individually select and count cells within an image, which is not only difficult to standardize but also very time-consuming. While tools exist to automatically count cells in images, the accuracy and accessibility of such tools can be improved. Thus, we introduce a novel tool ACCT: Automatic Cell Counting with Trainable Weka Segmentation which allows for flexible automatic cell counting via object segmentation after user-driven training. ACCT is demonstrated with a comparative analysis of publicly available images of neurons and an in-house dataset of immunofluorescence-stained microglia cells. For comparison, both datasets were manually counted to demonstrate the applicability of ACCT as an accessible means to automatically quantify cells in a precise manner without the need for computing clusters or advanced data preparation.


Subject(s)
Image Processing, Computer-Assisted , Tool Use Behavior , Image Processing, Computer-Assisted/methods , Machine Learning , Cell Count/methods , Neurons
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