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Tomoya Nishida

4 accepted papers

2025

Domain-Independent Automatic Generation of Descriptive Texts for Time-Series Data

ICASSP 2025accepted

Due to scarcity of time-series data annotated with descriptive texts, training a model to generate descriptive texts for time-series data is challenging. In this study, we propose a method to systematically generate domain-independent descriptive texts from time-series data. We identify two distinct…

Cited by 0SourceScholar
2023

Zero-Shot Domain Adaptation of Anomalous Samples for Semi-Supervised Anomaly Detection

ICASSP 2023accepted

Semi-supervised anomaly detection (SSAD) is a task where normal data and a limited number of anomalous data are available for training. In practical situations, SSAD methods suffer adapting to domain shifts, since anomalous data are unlikely to be available for the target domain in the training phas…

Cited by 0SourceScholar
2020

Anomalous Sound Detection Based on Interpolation Deep Neural Network

ICASSP 2020accepted

As the labor force decreases, the demand for labor-saving automatic anomalous sound detection technology that conducts maintenance of industrial equipment has grown. Conventional approaches detect anomalies based on the reconstruction errors of an autoencoder. However, when the target machine sound…

Cited by 0SourceScholar
2020

Mutual-Information-Based Sensor Placement for Spatial Sound Field Recording

ICASSP 2020accepted

A sensor (microphone) placement method based on mutual information for spatial sound field recording is proposed. The sound field recording methods using distributed sensors enable the estimation of the sound field inside a target region of arbitrary shape; however, it is a difficult task to find th…

Cited by 0SourceScholar