S119: PRELIMINARY RESULTS OF A PHASE 1 STUDY IN HEALTHY SUBJECTS ADMINISTERED INCLACUMAB, A FULLY HUMAN IGG4 ANTI-P-SELECTIN MONOCLONAL ANTIBODY IN DEVELOPMENT FOR TREATMENT OF SICKLE CELL DISEASE

S119:一项针对健康受试者的 1 期研究的初步结果,该研究使用了全人源 IgG4 抗 P-选择素单克隆抗体 INCLACUMAB,该抗体正在开发用于治疗镰状细胞病。

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Abstract

In this work we present an automated approach to allergy recognition based on neural networks. Allergic reaction classification is an important task in modern medicine. Currently it is done by humans, which has obvious drawbacks, such as subjectivity in the process. We propose an automated method to classify prick allergic reactions using correlated visible-spectrum and thermal images of a patient's forearm. We test our model on a real-life dataset of 100 patients (1584 separate allergen injections). Our solution yields good results-0.98 ROC AUC; 0.97 AP; 93.6% accuracy. Additionally, we present a method to segment separate allergen injection areas from the image of the patient's forearm (multiple injections per forearm). The proposed approach can possibly reduce the time of an examination, while taking into consideration more information than possible by human staff.

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