linus: Conveniently explore, share, and present large-scale biological trajectory data in a web browser

Johannes Waschke, Mario Hlawitschka, Kerim Anlaş, Vikas Trivedi, Ingo Roeder, Jan Huisken, Nico Scherf · PLoS Computational Biology · 2021

In biology, we are often confronted with information-rich, large-scale trajectory data, but exploring and communicating patterns in such data can be a cumbersome task. Ideally, the data should be wrapped with an interactive visualisation in one concise packet that makes it straightforward to create and test hypotheses collaboratively. To address these challenges, we have developed a tool, linus, which makes the process of exploring and sharing 3D trajectories as easy as browsing a website. We provide a python script that reads trajectory data, enriches them with additional features such as edge bundling or custom axes, and generates an interactive web-based visualisation that can be shared online. linus facilitates the collaborative discovery of patterns in complex trajectory data.

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