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September 10, 2025Journal of Microscopy2 citationsOpen Access

From cells to pixels: A decision tree for designing bioimage analysis pipelines

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EFElnaz FazeliRHRobert HaaseMDMichael Doube

Key Points

  • Meaningful information extraction from bioimage datasets remains a challenge, especially for biologists without computational skills.
  • The proposed decision tree categorizes image structures and suggests relevant analysis methods, enhancing clarity in defining objectives.
  • This approach includes a visual flowchart and examples to aid researchers in selecting the appropriate bioimage analysis techniques.
  • The framework not only streamlines the analysis process but also fosters improved communication and understanding among researchers and analysts.

Abstract

Abstract Bioimaging has transformed our understanding of biological processes, yet extracting meaningful information from complex datasets remains a challenge, particularly for biologists without computational expertise. This paper proposes a simple general approach, to help identify which image analysis methods could be relevant for a given image dataset. We first categorise structures commonly observed in bioimage data into different types related to image analysis domains. Based on these types, we provide a list of methods adapted to the quantification of images from each category. Our approach includes illustrative examples and a visual flowchart, to help researchers define analysis objectives clearly. By understanding the diversity of bioimage structures and linking them with appropriate analysis approaches, the framework empowers researchers to navigate bioimage datasets more efficiently. It also aims to foster a common language between researchers and analysts, thereby enhancing mutual understanding and facilitating effective communication.

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Cite This Study

Fazeli et al. (2025) studied this question.

synapsesocial.com/papers/68c1d7ee54b1d3bfb60f9d93https://doi.org/10.1111/jmi.70021
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