IEEE ICASSP 2020 Virtual Conference May 2020

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  • Quantized Tensor Robust Principal Component Analysis

    00:13:53
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    High-dimensional data structures, known as tensors, are fundamental in many applications, including multispectral imaging and color video processing. Compression of such huge amount of multidimensional data collected over time is of paramount importance,
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  • Rev-Ae: A Learned Frame Set For Image Reconstruction

    00:13:07
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    Reversible residual network naturally extends the linear lifting scheme with no theoretic guarantee. In this paper, we propose a reversible autoencoder (Rev-AE) with this extended non-linear lifting scheme to improve image reconstruction. Nonlinear predic
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  • Multi-Task Learning For Voice Trigger Detection

    00:12:40
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    We describe the design of a voice trigger detection system for smart speakers. We address two major challenges. The first is that the detectors are deployed in complex acoustic environments with external noise and loud playback by the device itself. Secon
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  • Learning Graph Influence From Social Interactions

    00:14:37
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    In social learning, agents form their opinions or beliefs about certain hypotheses by exchanging local information. This work considers the recent paradigm of weak graphs, where the network is partitioned into sending and receiving components, with the fo
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  • Motion Feedback Design For Video Frame Interpolation

    00:13:30
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    This paper introduces a feedback-based approach to interpolate video frames involving small and fast-moving objects. Unlike the existing feedforward-based methods that estimate optical flow and synthesize in-between frames sequentially, we introduce a mot
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  • Multi-Task Learning Via Sa-Fpn And Ej-Head

    00:13:37
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    As a concise framework, Mask R-CNN achieves promising performance in object detection and instance segmentation. However, there is room for improvement in two aspects. One is that performing multi-task prediction needs more credible feature extraction and
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  • Upscaling Vector Approximate Message Passing

    00:10:30
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    In this paper we consider the problem of recovering a signal x of size N from noisy and compressed measurements y = A x + w of size M, where the measurement matrix A is right-orthogonally invariant (ROI). Vector Approximate Message Passing (VAMP) demonstr
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  • Mental Fatigue Prediction From Multi-Channel Ecog Signal

    00:13:28
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    Early detection of mental fatigue and changes in vigilance could be used to initiate neurostimulation to treat patients suffering from brain injury and mental disorders. In this study, we analyzed electrocorticography (ECoG) signals chronically recorded f
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  • High Dynamic Range Imaging Using Deep Image Priors

    00:15:34
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    Traditionally, dynamic range enhancement for images has involved a combination of contrast improvement (via gamma correction or histogram equalization) and a denoising operation to reduce the effects of photon noise. More recently, modulo-imaging methods
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