{"total":1,"items":[{"citing_arxiv_id":"2507.05599","ref_index":12,"ref_count":1,"confidence":0.88,"is_internal_anchor":false,"paper_title":"How Easy Is It to Learn Motion Models from Widefield Fluorescence Single Particle Tracks?","primary_cat":"physics.bio-ph","submitted_at":"2025-07-08T02:24:09+00:00","verdict":"REJECT","verdict_confidence":"HIGH","novelty_score":5.0,"formal_verification":"none","one_line_summary":"A likelihood decomposition suggests the camera and optics explain about 99% of the signal in widefield single-particle tracking, implying post-processed trajectories carry little motion-model information.","context_count":1,"top_context_role":"background","top_context_polarity":"background","context_text":"Fluorescence Lifetime Tracking and Imaging of Single Moving Particles Assisted by a Low-Photon-Count Analysis Algorithm. Biomedical Optics Express 14, 1718. https://opg.optica.org/boe/abstract.cfm? URI=boe-14-4-1718 (2023). 12. Manley, S. et al. High-Density Mapping of Single-Molecule Trajectories with Photoactivated Localization Microscopy. Nature Methods 5, 155. https://doi.org/10.1038/nmeth.1176 (2008). 13. Balzarotti, F. et al. Nanometer Resolution Imaging and Tracking of Fluorescent Molecules with Minimal Photon Fluxes. Science 355, 606 (2017). 14. Cole, F. et al. Super-Resolved FRET and Co-Tracking in pMINFLUX. Nature Photonics 18, 478 (2024). 15 15. Liu, H.-Y., Wang, Z.-G., Liu, S.-L. & Pang, D.-W. Single-Virus Tracking with Quantum Dots in Live Cells."}],"limit":50,"offset":0}