Author: Shu, Xin Sansare Sameera Jin Di Zeng Xiangxiang Kai-Yu Tong Pandey Rishikesh Zhou Renjie
Title: Artificialâ€Intelligenceâ€Enabled Reagentâ€Free Imaging Hematology Analyzer Cord-id: 30qxu1qu Document date: 2021_1_1
ID: 30qxu1qu
Snippet: Leukocyte differential test is a widely carried out clinical procedure for screening infectious diseases. Existing hematology analyzers require laborâ€intensive work and a panel of expensive reagents. Herein, an artificialâ€intelligenceâ€enabled reagentâ€free imaging hematology analyzer (AIRFIHA) modality is reported that can accurately classify subpopulations of leukocytes with minimal sample preparation. AIRFIHA is realized through training a twoâ€step residual neural network using labelâ
Document: Leukocyte differential test is a widely carried out clinical procedure for screening infectious diseases. Existing hematology analyzers require laborâ€intensive work and a panel of expensive reagents. Herein, an artificialâ€intelligenceâ€enabled reagentâ€free imaging hematology analyzer (AIRFIHA) modality is reported that can accurately classify subpopulations of leukocytes with minimal sample preparation. AIRFIHA is realized through training a twoâ€step residual neural network using labelâ€free images of isolated leukocytes acquired from a customâ€built quantitative phase microscope. By leveraging the rich information contained in quantitative phase images, not only high accuracy is achieved in differentiating B and T lymphocytes, but also CD4 and CD8 T cells are classified, therefore outperforming the classification accuracy of most current hematology analyzers. The performance of AIRFIHA in a randomly selected test set is validated and is crossâ€validated across all blood donors. Due to its easy operation, low cost, and accurate discerning capability of complex leukocyte subpopulations, AIRFIHA is clinically translatable and can also be deployed in resourceâ€limited settings, e.g., during pandemic situations for the rapid screening of infectious diseases.
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