Abstract
Biological data visualization is challenged by the growing complexity of datasets. Traditional single-data plots or simple juxtapositions often fail to fully capture dataset intricacies and interrelations. To address this, we introduce “cross-layout,” a novel visualization paradigm that integrates multiple plot types in a cross-like structure, with a central main plot surrounded by secondary plots for enhanced contextualization and interrelation insights. We also introduce “Marsilea,” a Python-based implementation of cross-layout visualizations, available in both programmatic and web-based interfaces to support users of all experience levels. This paradigm and its implementation offer a customizable, intuitive approach to advance biological data visualization.
Cite
CITATION STYLE
Zheng, Y., Zheng, Z., Rendeiro, A. F., & Cheung, E. (2025). Marsilea: an intuitive generalized paradigm for composable visualizations. Genome Biology, 26(1). https://doi.org/10.1186/s13059-024-03469-3
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