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Pavan K. Turaga

6 accepted papers

2023

Robust Time Series Recovery and Classification Using Test-Time Noise Simulator Networks

ICASSP 2023accepted

Time-series are commonly susceptible to various types of corruption due to sensor-level changes and defects which can result in missing samples, sensor and quantization noise, unknown calibration, unknown phase shifts etc. These corruptions cannot be easily corrected as the noise model may be unknow…

Cited by 0SourceScholar
2023

Single-Shot Domain Adaptation via Target-Aware Generative Augmentations

ICASSP 2023accepted

The problem of adapting models from a source domain using data from any target domain of interest has gained prominence, thanks to the brittle generalization in deep neural networks. While several test-time adaptation techniques have emerged, they typically rely on synthetic data augmentations in ca…

Cited by 0SourceScholar
2023

Target-Aware Generative Augmentations for Single-Shot Adaptation

ICML 2023poster

In this paper, we address the problem of adapting models from a source domain to a target domain, a task that has become increasingly important due to the brittle generalization of deep neural networks. While several test-time adaptation techniques have emerged, they typically rely on synthetic tool…

2019

Multiple Subspace Alignment Improves Domain Adaptation

ICASSP 2019accepted

We present a novel unsupervised domain adaptation (DA) method for cross-domain visual recognition. Though subspace methods have found success in DA, their performance is often limited due to the assumption of approximating an entire dataset using a single low-dimensional subspace. Instead, we develo…

Cited by 0SourceScholar
2016

Consensus inference on mobile phone sensors for activity recognition

ICASSP 2016accepted

The pervasive use of wearable sensors in activity and health monitoring presents a huge potential for building novel data analysis and prediction frameworks. In particular, approaches that can harness data from a diverse set of low-cost sensors for recognition are needed. Many of the existing approa…

Cited by 0SourceScholar