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dc.contributor.authorDjamilla, Attia-
dc.date.accessioned2021-12-02T11:00:40Z-
dc.date.available2021-12-02T11:00:40Z-
dc.date.issued2021-
dc.identifier.urihttp//localhost:8080/jspui/handle/123456789/824-
dc.description.abstractDeterminingcanceranditstypeisaverydifficulttaskthatrequireshighmedicalexpertiseandskills. With the development of image classification techniques, deep learning strategies haveoccupied the first positions in many medical image classification systems as part of computeraidedecision (CAD). Theaimofthisstudyistoaccuratelyclassifylymphomasubtypesusingdeeplearning.Adeeplearning framework has been proposed to classify three types of lymphomas as follicularlymphoma (FL), chronic lymphocytic lymphoma (CLL) and Mantle Cell Lymphoma (MCL) byfollowing pretrained CNN models (Transfer learning) such as Resnet and VGG and based onthe available dataset from the National Institute on Aging (NIA). The data Patching wasimplemented for the first step of data processing, where the achieved results show that theproposedmodels wereable toachievebetterresults comparedto CNNbuilt fromscratch.en_US
dc.description.sponsorshipDr.Bendib Issamen_US
dc.language.isoenen_US
dc.publisherUniversite laarbi tebessi tebessaen_US
dc.subjectCancer,lymphoma,CLL,FL,MCL,CAD,DeepLearning,Transferlearning,CNN,VGG ,Resnet,Patching,NIAen_US
dc.subjectCancer , lymphome , LLC , LF , LCM, DAO ,en_US
dc.subjectمرض السرطان، أنظمة دعم القرار ، التعلم العميق، نماذج الشبكة العصبية الالتفافية المدربة مسبقا ، تقسيم البيانات ،VGG ، Resnet ، NIA،LLC ، LF ،. LCMen_US
dc.titleTOWARDS AN INTELLIGENT APPROACH FOR THE DETECTION AND CLASSIFICATION OF CANCER OF THE LYMPHATIC SYSTEMen_US
dc.typeThesisen_US
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