An Intensity and Phase Stacked Analysis of Phase-OTDR System using Deep Transfer Learning and Recurrent Neural Networks
Ceyhun Efe Kayan, Kivilcim Yuksel Aldogan, Abdurrahman Gumus

TL;DR
This paper presents a novel deep transfer learning approach combining CNNs and LSTMs to classify vibrations in Phase-OTDR signals, achieving high accuracy for distributed acoustic sensing applications.
Contribution
It introduces a multi-input, two-stage feature extraction method using pre-trained CNNs and LSTMs for event recognition in DAS, demonstrating superior performance with VGG-16.
Findings
VGG-16 achieved 100% classification accuracy.
Pre-trained CNNs combined with LSTM are effective for DAS signal analysis.
The proposed method outperforms traditional approaches in event recognition.
Abstract
Distributed acoustic sensors (DAS) are effective apparatus which are widely used in many application areas for recording signals of various events with very high spatial resolution along the optical fiber. To detect and recognize the recorded events properly, advanced signal processing algorithms with high computational demands are crucial. Convolutional neural networks are highly capable tools for extracting spatial information and very suitable for event recognition applications in DAS. Long-short term memory (LSTM) is an effective instrument for processing sequential data. In this study, we proposed a multi-input multi-output, two stage feature extraction methodology that combines the capabilities of these neural network architectures with transfer learning to classify vibrations applied to an optical fiber by a piezo transducer. First, we extracted the differential amplitude and…
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Taxonomy
TopicsAdvanced Chemical Sensor Technologies · Advanced Fiber Optic Sensors · Music and Audio Processing
MethodsTanh Activation · Sigmoid Activation · Long Short-Term Memory
