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6篇 您的检索式:作者名="Bukht"
    题名 作者 年代 出处 被引量
1Risk factors of diabetic retinopathy in Bangladeshi type 2diabetic patients显示文摘Ahmed K R Karim M N Bukht M S 2011Diabetes&Metabolic Syndrome:Clinical Research&Reviews2011,5,4:1
2Pattern and predic- tors of dyslipidemia in patients with type 2 diabetes meUitus显示文摘Karim M N Ahmed K R Bukht M S et 81 2013Diabetes & Metabolic Syndrome: Clinical Research & Reviews2013,7,2:1
3Pattern and predictors of dyslipidemia in patients with type 2 diabetes mellitus显示文摘Md N. Karim Kazi R. Ahmed Mohammad S. Bukht Jesmin Akter Hasina A. Chowdhury Sharmin Hossain Nazneen Anwar Shajada Selim Shahabul H. Chowdhury Fawzia Hossain Liaquat Ali 2013Diabetes & Metabolic Syndrome: Clinical Research & Reviews2013,,2:1
4Risk factors of diabetic retinopathy in Bangladeshi type 2diabetic patients显示文摘Ahmed K R Karim M N Bukht M S 2011Diabetes&Metabolic Syndrome:Clinical Research&Reviews2011,5,4:1
5Risk factors of diabetic retinopathy in Bangladeshi type 2 diabetic patients显示文摘Kazi R. Ahmed Md N. Karim Mohammad S. Bukht Bishwajit Bhowmik Amitava Acharyya Liaquat Ali Akhtar Hussain 2012Diabetes & Metabolic Syndrome: Clinical Research & Reviews2012,,4:1
6A Novel Human Interaction Framework Using Quadratic Discriminant Analysis with HMM显示文摘Human-human interaction recognition is crucial in computer vision fields like surveillance,human-computer interaction,and social robotics.It enhances systems’ability to interpret and respond to human behavior precisely.This research focuses on recognizing human interaction behaviors using a static image,which is challenging due to the complexity of diverse actions.The overall purpose of this study is to develop a robust and accurate system for human interaction recognition.This research presents a novel image-based human interaction recognition method using a Hidden Markov Model(HMM).The technique employs hue,saturation,and intensity(HSI)color transformation to enhance colors in video frames,making them more vibrant and visually appealing,especially in low-contrast or washed-out scenes.Gaussian filters reduce noise and smooth imperfections followed by silhouette extraction using a statistical method.Feature extraction uses the features from Accelerated Segment Test(FAST),Oriented FAST,and Rotated BRIEF(ORB)techniques.The application of Quadratic Discriminant Analysis(QDA)for feature fusion and discrimination enables high-dimensional data to be effectively analyzed,thus further enhancing the classification process.It ensures that the final features loaded into the HMM classifier accurately represent the relevant human activities.The impressive accuracy rates of 93%and 94.6%achieved in the BIT-Interaction and UT-Interaction datasets respectively,highlight the success and reliability of the proposed technique.The proposed approach addresses challenges in various domains by focusing on frame improvement,silhouette and feature extraction,feature fusion,and HMM classification.This enhances data quality,accuracy,adaptability,reliability,and reduction of errors.Tanvir Fatima Naik Bukht Naif Al Mudawi Saud S.Alotaibi Abdulwahab Alazeb Mohammed Alonazi Aisha Ahmed AlArfaj Ahmad Jalal Jaekwang Kim 2023Computers, Materials & Continua2023,77,11:0
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