Mobil teknolojilerin kullanılmasıyla akıllı bir egzersiz planlama ve fiziksel aktivite tanıma sistemi

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2017

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Software Engineering
(2005)
Department of Software Engineering was founded in 2005 as the first department in Ankara in Software Engineering. The recent developments in current technologies such as Artificial Intelligence, Machine Learning, Big Data, and Blockchains, have placed Software Engineering among the top professions of today, and the future. The academic and research activities in the department are pursued with qualified faculty at Undergraduate, Graduate and Doctorate Degree levels. Our University is one of the two universities offering a Doctorate-level program in this field. In addition to focusing on the basic phases of software (analysis, design, development, testing) and relevant methodologies in detail, our department offers education in various areas of expertise, such as Object-oriented Analysis and Design, Human-Computer Interaction, Software Quality Assurance, Software Requirement Engineering, Software Design and Architecture, Software Project Management, Software Testing and Model-Driven Software Development. The curriculum of our Department is catered to graduate individuals who are prepared to take part in any phase of software development of large-scale software in line with the requirements of the software sector. Department of Software Engineering is accredited by MÜDEK (Association for Evaluation and Accreditation of Engineering Programs) until September 30th, 2021, and has been granted the EUR-ACE label that is valid in Europe. This label provides our graduates with a vital head-start to be admitted to graduate-level programs, and into working environments in European Union countries. The Big Data and Cloud Computing Laboratory, as well as MobiLab where mobile applications are developed, SimLAB, the simulation laboratory for Medical Computing, and software education laboratories of the department are equipped with various software tools and hardware to enable our students to use state-of-the-art software technologies. Our graduates are employed in software and R&D companies (Technoparks), national/international institutions developing or utilizing software technologies (such as banks, healthcare institutions, the Information Technologies departments of private and public institutions, telecommunication companies, TÜİK, SPK, BDDK, EPDK, RK, or universities), and research institutions such TÜBİTAK.

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Mobil teknolojilerin kullanılmasıyla sağlık alanında akıllı rehberlik, kullanıcıların amaçları, demografik bilgileri ve sağlık durumlarına göre özel olarak tasarlanmış olan bireysel egzersiz planlarından fayda sağlamaları açısından önemli bir gelişmedir. Ayrıca, sistemin sürekli olarak fiziksel aktivitelerini izlemesiyle, kullanıcılar motive olurlar ve belirlenen günlük egzersizlerini tamamlamaya yönlendirilirler. Geliştirilen sistem, vaka tabanlı çıkarım ile kullanıcı için uygun olan kişiye özgü egzersiz programını belirler. Cep telefonunun ivmeölçer ve jiroskop özelliklerinin yardımıyla, kullanıcıların fiziksel aktiviteleri KNN (K-En Yakın Komşu) algoritması kullanılarak algılanır ve sınıflandırılır. Egzersizlerin kalan kısımları, kullanıcılar için belirlenen bireysel egzersiz rutinleri ve gerçekleştirilen aktivitelere dayanarak hesaplanır ve kullanıcıyı yönlendirmek ve teşvik etmek için mesaj olarak sunulur. Değerlendirme için, sistem kullanıcılar tarafından test edilmiş ve anket uygulanmıştır. Sonuçlar, tüm katılımcıların sistemin faydalı ve etkin olduğunu düşündüğünü göstermektedir. Anahtar Kelimeler: Mobil teknoloji, sağlık hizmeti, sınıflandırma, aktivite tanıma, akıllı sistem, vaka tabanlı çıkarım, Çok Sınıflı SVM (Destek Vektör Makineleri), KNN (K-En Yakın Komşu), LDA (Doğrusal Diskriminant Analizi)
Intelligent guidance in the healthcare domain using mobile technologies is an important development since users can benefit from the individual exercise plans that are specifically designed for their purpose, demographic information and health background. Furthermore, with the system continuously tracking their activities, the users are motivated and guided to complete their daily specified exercises. The developed system determines the specific exercise program suitable to the user with case-based reasoning. With the help of the accelerometer and gyroscope facilities of a mobile phone, users' activities are recognized and classified using KNN (K-Nearest Neighbors) algorithm. Based on their individual exercise routine and the performed activities in the current day, the rest of the exercises are calculated and presented to the user as a message to guide and encourage them. For the evaluation, the system is tested by users, and a questionnaire is conducted. The results show that the system is found to be beneficial and effective by all the participants. Keywords: Mobile technology, healthcare, classification, activity recognition, intelligent system, case-based reasoning, Multiclass SVM (Support Vector Machines), KNN (K-Nearest Neighbors), LDA (Linear Discriminant Analysis)

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Bilgisayar Mühendisliği Bilimleri-Bilgisayar ve Kontrol, Computer Engineering and Computer Science and Control, Bilim ve Teknoloji, Science and Technology

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108