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« Previous AbstractAn Automated Cell Tracking Approach With Multi-Bernoulli Filtering and Ant Colony Labor Division    Next AbstractDetermination of the key parameters of VOCs emitted from multi-layer leather furniture using a region traversal approach »

IEEE J Biomed Health Inform


Title:A Joint Tracking Approach via Ant Colony Evolution for Quantitative Cell Cycle Analysis
Author(s):Xu B; Lu M; Shi J; Cong J; Nener B;
Address:
Journal Title:IEEE J Biomed Health Inform
Year:2021
Volume:20210603
Issue:6
Page Number:2338 - 2349
DOI: 10.1109/JBHI.2020.3032592
ISSN/ISBN:2168-2208 (Electronic) 2168-2194 (Linking)
Abstract:"In this paper, we use an ant colony heuristic method to tackle the integration of data association and state estimation in the presence of cell mitosis, morphological change and uncertainty of measurement. Our approach first models the scouting behavior of an unlabeled ant colony as a chaotic process to generate a set of cell candidates in the current frame, then a labeled ant colony foraging process is modeled to construct an interframe matching between previously estimated cell states and current cell candidates through minimizing the optimal sub-pattern assignment metric for track (OSPA-T). The states of cells in the current frame are finally estimated using labeled ant colonies via a multi-Bernoulli parameter set approximated by individual food pheromone fields and heuristic information within the same region of support, the resulting trail pheromone fields over frames constitutes the cell lineage trees of the tracks. A four-stage track recovery strategy is proposed to monitor the history of all established tracks to reconstruct broken tracks in a computationally economic way. The labeling method used in this work is an improvement on previous techniques. The method has been evaluated on publicly available, challenging cell image sequences, and a satisfied performance improvement is achieved in contrast to the state-of-the-art methods"
Keywords:*Algorithms Cell Cycle *Pheromones;
Notes:"MedlineXu, Benlian Lu, Mingli Shi, Jian Cong, Jinliang Nener, Brett eng Research Support, Non-U.S. Gov't 2020/10/21 IEEE J Biomed Health Inform. 2021 Jun; 25(6):2338-2349. doi: 10.1109/JBHI.2020.3032592. Epub 2021 Jun 3"

 
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