Machine learning radically reduces workload of cell counting for disease diagnosis

The use of machine learning to perform blood cell counts for diagnosis of disease instead of expensive and often less accurate cell analyzer machines has nevertheless been very labor-intensive as it takes an enormous amount of manual annotation work by humans in the training of the machine learning model. However, researchers at Benihang University have developed a new training method that automates much of this activity.

from News on Artificial Intelligence and Machine Learning https://ift.tt/tlAIKmY
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