Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T14:30:39.460624Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 44 of 44 outbound references and 0 inbound Pith citation observations for arXiv:2505.18754.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T14:30:39.460624Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
44 of 44 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation a84695c6-4cb1-44d5-adbc-4f1b4fc20741 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Language Models are Few-Shot Learners
Reference 1
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Observation e8433daf-b24d-423b-b945-347bbb7be68d · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Atlas: Few-shot Learning with Retrieval Augmented Language Models
Reference 2
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Observation 1ca47749-8e81-47d7-bf8b-26abbca03c57 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Few-shot Learning with Multilingual Generative Language Models
Reference 3
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Observation 1f27357e-5815-4d2e-bd8d-ceea460e3ce5 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Concept Learners for Few-Shot Learning
Reference 4
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Observation 5c6db74f-b6c2-4e98-bb38-c9c83d211d33 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Bi-Level Meta-Learning for Few-Shot Domain Generalization
Reference 5
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Observation 07eeeb90-0e34-4245-b65c-b4a946e694c8 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Making Pre-trained Language Models Better Few-shot Learners
Reference 6
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Observation 675037b9-7906-4661-9049-449e5f23e3c0 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Quantifying Language Models’ Sensitivity to Spurious Features in Prompt Design or: How I learned to start worrying about prompt formatting
Reference 7
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Observation cf763589-cb92-4362-8d97-1f2602bafa34 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Designing Informative Metrics for Few-Shot Example Selection
Reference 8
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Observation cf9c5ce2-d63c-45d1-b760-b036384bfb7c · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Active Instance Selection for Few-Shot Classification
Reference 9
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Observation 4d95f233-a4c2-4743-b899-d75e3a43158f · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Few-Shot Learning-Based Human Activity Recognition
Reference 10
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Observation 4ecf442b-4c61-4f37-8dbe-6b0818e64d62 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Leveraging Large Language Models to Enhance Understanding of Accelerometer Data on Physical Fatigue Detection Question Answering
Reference 11
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Observation ec6a3213-5a0d-4506-bc28-0726828c40e2 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection CTYUN-AI at SemEval-2024 Task 7: Boosting Numerical Understanding with Limited Data Through Effective Data Alignment
Reference 12
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Observation 13652d76-5769-412f-8ee7-ee127a6f833f · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection The first step is the hardest: Pitfalls of Representing and Tokenizing Temporal Data for Large Language Models
Reference 13
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Observation 00abda54-4528-4dd6-8c4f-fa0a11d3e630 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Evaluating Large Language Models as Virtual Annotators for Time-series Physical Sensing Data
Reference 14
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Observation 1b95267f-a190-4a6b-a9da-cf81f6b44549 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection SensorLLM: Aligning Large Language Models with Motion Sensors for Human Activity Recognition
Reference 15
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Observation 32705585-e2b3-45ae-b6ce-b9d6ba54b07a · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Small Data, Big Challenges: Pitfalls and Strategies for Machine Learning in Fatigue Detection
Reference 16
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Observation 1c03bcd1-f052-4941-b54f-48c7515882c8 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Calibrate Before Use: Improving Few-Shot Performance of Language Models
Reference 17
Source-reported events for the cited work
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Observation d9ea92e4-3d87-431c-84d3-c7e2d01d656d · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Sensorimotor distance: A grounded measure of semantic similarity for 800 million concept pairs
Reference 18
Source-reported events for the cited work
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Observation c0240041-7b3e-418c-b08c-f53e8c0738b0 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Knowledge Prompting for Few-shot Action Recognition
Reference 19
Source-reported events for the cited work
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Observation 53919e88-c164-4634-a6ee-f6a554998cdd · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection A Good Prompt Is Worth Millions of Parameters: Low-resource Prompt-based Learning for Vision-Language Models
Reference 20
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Observation 9b3032fc-7a54-4e7e-a46a-6957dcab947b · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Noisy Channel Language Model Prompting for Few-Shot Text Classification
Reference 21
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Observation a51494d6-ebaf-4f39-af83-c3d392d68253 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Selecting Shots for Demographic Fairness in Few-Shot Learning with Large Language Models
Reference 22
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Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Use Random Selection for Now: Investigation of Few-Shot Selection Strategies in LLM-based Text Augmentation for Classification
Reference 23
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Observation 7cb1a54f-7ddf-4318-a0d4-af93f81011e7 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection True Few-Shot Learning with Language Models
Reference 24
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Observation d66684e5-2eb4-4683-8672-30753b3983b7 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection On Training Instance Selection for Few-Shot Neural Text Generation
Reference 25
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Observation 2107f6a3-ad10-4c3f-b288-7e5a497d7675 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Active Learning Principles for In-Context Learning with Large Language Models
Reference 26
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Observation 2e3166c0-0ad9-4ada-a9c4-7fdcbda0040c · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection More Samples or More Prompts? Exploring Effective In-Context Sampling for LLM Few-Shot Prompt Engineering
Reference 27
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Observation 76947b2b-ca0d-40fc-9ae7-2fc12581b56c · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Automatic Combination of Sample Selection Strategies for Few-Shot Learning
Reference 28
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Observation 99d81ebe-0c2b-4df4-8235-1425b961f9a6 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection In-Context Learning with Iterative Demonstration Selection
Reference 29
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Observation ff87cd2f-efae-4629-b5e7-b2d154fc6e47 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Skill-Based Few-Shot Selection for In-Context Learning
Reference 30
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Observation 5c6a01fd-3deb-4bf0-8c01-3a7524faf027 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Large Language Models are Few-Shot Health Learners
Reference 31
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Observation 9a7cbf75-2063-4397-a5dd-5810079805f6 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection A Few-Shot Learning Based Fault Diagnosis Model Using Sensors Data from Industrial Machineries
Reference 32
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Observation 78595237-6899-459a-ae80-b8557527429d · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Generating Explanations to understand Fatigue in Runners Using Time Series Data from Wearable Sensors
Reference 33
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Observation 4cebfd32-b39a-4ba4-a935-5b71c752d4d1 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Application of Fourier Transform and Butterworth Filter in Signal Denoising
Reference 34
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Observation 1c64b8f5-a188-4afb-99bc-d8f00f18ae79 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection A Study on the Influence of Sensors in Frequency and Time Domains on Context Recognition.Sensors 2023, 23
Reference 35
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Observation bbf3fd8f-9b29-41f4-8bc0-97851b3ae28c · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection A survey on distance and similarity measures for time-series data analysis
Reference 36
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Observation aa309f6f-5917-46ab-a912-c25c207be22f · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Selective review of offline change point detection methods
Reference 37
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Observation dd1e98d4-c00f-4d73-b1b6-e1fa45b576d7 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Rethinking the Role of Demonstrations: What Makes In-Context Learning Work? In Proceedings of the EMNLP 2022, 2022, pp
Reference 38
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Observation 01b28341-1ca6-4b4e-b100-da35d2bbcaa5 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Adaptive weighting and nearest neighbor-based area control for imbalanced data classification
Reference 39
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Observation f7fb3cf7-3d84-4f2c-a349-d9f853fe4b0c · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection A Muscle Fatigue Classification Model Based on LSTM and Improved Wavelet Packet Threshold
Reference 40
Source-reported events for the cited work
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Observation 78284be3-c464-4305-bde0-57271936c336 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Informer: Beyond Efficient Transformer for Long Sequence Time-Series Forecasting
Reference 41
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Observation 0c9db343-c85e-4e5d-bf69-8eee69e097b7 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Meta-Learning in Neural Networks: A Survey.IEEE Transactions on Pattern Analysis and Machine Intelligence 2021
Reference 42
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Observation d8b49371-2e15-4b42-8fb6-7f5546fd5662 · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection The Power of Scale for Parameter-Efficient Prompt Tuning
Reference 43
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Observation 41a02f94-a7ca-4b94-b218-0b39e71d454c · outbound
Few-Shot Optimization for Sensor Data Using Large Language Models: A Case Study on Fatigue Detection Retrieval-Augmented Generation for Knowledge-Intensive NLP Tasks
Reference 44
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
No inbound Pith citation observations are available.