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    • Department of Computational and Data Sciences (CDS)
    • Browsing Department of Computational and Data Sciences (CDS) by Subject
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    Browsing Department of Computational and Data Sciences (CDS) by Subject "Deep Learning"

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    Now showing items 1-13 of 13

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      • Advances in High Dynamic Range Imaging Using Deep Learning 

        Ram Prabhakar, Kathirvel
        Natural scenes have a wide range of brightness, from dark starry nights to bright sunlit beaches. Our human eyes can perceive such a vast range of illumination through various adaptation techniques, thus allowing us to ...
      • Data-efficient Deep Learning Algorithms for Computer Vision Applications 

        Nayak, Gaurav Kumar
        The performance of any deep learning model depends heavily on the quantity and quality of the available training data. The generalization of the trained deep models improves with the availability of a large number of ...
      • Deep Learning for Hand-drawn Sketches: Analysis, Synthesis and Cognitive Process Models 

        Sarvadevabhatla, Ravi Kiran
        Deep Learning-based object category understanding is an important and active area of research in Computer Vision. Most work in this area has predominantly focused on the portion of depiction spectrum consisting of ...
      • Deep Learning in Computer Vision: Studies in Neuro-image Segmentation and Satellite Image Super-resolution 

        Roy, Shreya
        Single image super-resolution (SR) has been a topic of great interest in the computer vision and deep learning community and has found applications in many areas including quality enhancement of satellite images. As the ...
      • Development of Novel Deep Learning Models with Improved Generalizability for Medical Image Analysis 

        Naveen, P
        Medical imaging is a process of visualization of disease/tissue in a non-invasive manner. Several imaging techniques like computed tomography (CT), magnetic resonance imaging (MRI), optical coherence tomography (OCT), and ...
      • Efficient and Effective Algorithms for Improving the Robustness of Deep Neural Networks 

        Addepalli, Sravanti
        Deep Neural Networks achieve near-human performance on several benchmark datasets, yet they are not as robust as humans. Their success relies on the proximity of test samples to the distribution of training data, resulting ...
      • Landmark Estimation and Image Synthesis Guidance using Self-Supervised Networks 

        Karmali, Tejan
        The exponential rise in the availability of data over the past decade has fuelled research in deep learning. While supervised deep learning models achieve near-human performance using annotated data, it comes with an ...
      • Learning Across Domains: Applications to Text-based Person Search and Multi-Source Domain Adaptation 

        Aggarwal, Surbhi
        With rapid development in technology and ubiquitous presence of diverse types of sensors, a large amount of data from different modalities (e.g., text, audio, images etc.) describing the same person/ object/event has ...
      • Learning to Perceive Humans From Appearance and Pose 

        Seth, Siddharth
        Analyzing humans and their activities takes a central role in computer vision. This requires machine learning models to encapsulate both the diverse poses and appearances exhibited by humans. Estimating the 3D poses of ...
      • Lesion Synthesis using Physics-Based Noise Models for Low-Data Medical Imaging Regime applications 

        Narayanan, Ramanujam
        Lesion segmentation and their progression prediction in medical imaging relies critically on the availability of manually annotated, heterogeneous large pathological datasets. Acquiring such diverse large datasets is also ...
      • Novel Deep Learning Methods for Improving Low-Dose Computed Tomography Perfusion Imaging of Brain 

        Dutta, Arindam
        Computed Tomography (CT) Perfusion imaging is a non-invasive medical imaging modality that has also established itself as a fast and economical imaging modality for diagnosing cerebrovascular diseases such as acute ischemia, ...
      • Self-Supervised Domain Adaptation Frameworks for Computer Vision Tasks 

        Kundu, Jogendra Nath
        There is a strong incentive to build intelligent machines that can understand and adapt to changes in the visual world without human supervision. While humans and animals learn to perceive the world on their own, almost ...
      • A study on Deep Learning Approaches, Architectures and Training Methods for Crowd Analysis 

        Sam, Deepak Babu
        Analyzing large crowds quickly is one of the highly sought-after capabilities nowadays. Especially in terms of public security and planning, this assumes prime importance. But automated reasoning of crowd images or videos ...

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