2021
DOI: 10.1051/e3sconf/202130401007
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Improving the quality of identification and filtering of micro-object images based on neural networks

Abstract: Constructive approaches, principles, and models for optimizing the identification of micro-objects have been developed based on the use of combined statistical, dynamic models and neural networks with mechanisms for filtering noise and foreign particles of images of medical objects and pollen grains. Algorithms for learning neural networks under conditions of a priori insufficiency, uncertainty of parameters, and low accuracy of data processing are investigated. The mechanisms of contour selection, segmentatio… Show more

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