Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T15:15:09.617246Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 76 of 76 outbound references and 2 inbound Pith citation observations for arXiv:2507.16696.
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 2026-08-06T15:15:09.617246Z
One-hop event checks from named stored sources.
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Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-02T21:56:42.758960Z
A source-named dated measurement, never combined with another source.
Source: cited_works
76 of 76 outbound references displayed
External citation measurements
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Observation 91691348-2c47-4f42-96d9-e3580e133101 · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Qwen2.5-Omni Technical Report
Reference 1
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation An image is worth 16x16 words: Trans- formers for image recognition at scale,
Reference 2
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Masked au- toencoders are scalable vision learners,
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Reference 4
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation wav2vec 2.0: A framework for self-supervised learning of speech representations,
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Robust speech recognition via large-scale weak supervi- sion,
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Reference 7
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation BEATs: Audio pre-training with acoustic tokenizers,
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Unsupervised anomaly detection and localization of machine audio: A gan-based approach,
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Anopatch: Towards better consistency in machine anomalous sound detection,
Reference 11
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Self-supervised learning for anomalous sound detec- tion,
Reference 12
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Observation a951cdfe-ed00-4dc7-b5ae-58883cfc05e4 · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Exploring self-supervised audio models for generalized anomalous sound detection,
Reference 13
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Observation b386007d-e16c-4db5-8496-81f015901979 · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Auto-embedding transformer for inter- pretable few-shot fault diagnosis of rolling bearings,
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation A rolling bearing fault diagnosis method based on multimodal knowledge graph,
Reference 15
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Bearllm: A prior knowledge-enhanced bearing health management framework with uni- fied vibration signal representation,
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Cows: Self-supervised representation pre-training for cross-machine fault diagnosis,
Reference 17
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Observation 131b5719-bed2-4ec7-b4fd-057c1e429147 · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Gearbox fault diagnosis using a deep learning model with limited data sample,
Reference 18
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Observation 4559777a-0bf6-42f6-99dc-95038bfb371b · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation A review on deep learning in planetary gearbox health state recognition: methods, applications, and dataset publication,
Reference 19
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Observation f3a9d7cd-a5c1-4725-a972-2f2c165f5578 · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation A comprehensive gear eccentricity dataset with multiple fault severity levels: Description, characteristics analysis, and fault diagnosis applications,
Reference 20
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Observation be3da8f8-671b-44ae-9638-4f901b3bbb9d · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Bearingfm: Towards a foundation model for bearing fault diagnosis by domain knowledge and contrastive learning,
Reference 21
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Rmgpt: A foundation model with generative pre-trained transformer for fault diagnosis and prognosis in rotating machinery,
Reference 22
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Hse: A plug-and- play module for unified fault diagnosis foundation models,
Reference 23
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Scaling up masked audio encoder learning for general audio classification,
Reference 24
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Ced: Consistent ensemble distillation for audio tagging,
Reference 25
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Openbeats: A fully open-source general- purpose audio encoder,
Reference 26
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Observation dfdd5fa9-242f-4042-a0be-ade6705cfc4a · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Qwen2-Audio Technical Report
Reference 27
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Observation d80cd17a-6f6c-4af5-83a0-a462c3edb589 · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Audio flamingo 3: Advancing audio intelligence with fully open large audio language models,
Reference 28
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Observation 8ee8850a-4f4c-4df2-a642-f1078f922c29 · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Midashenglm: Efficient audio understanding with general audio captions,
Reference 29
Source-reported events for the cited work
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Observation 4109c05f-6e83-4cbf-a09c-69e89642dc3c · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Time-moe: Billion-scale time series foundation models with mixture of experts,
Reference 30
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Observation ae4008f3-a8ca-40e2-befb-9fff0dbabe0c · outbound
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Reference 31
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Bearing fault diagnosis based on an enhanced image representation method of vibration signal and conditional super token transformer,
Reference 32
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Parinfogpt: An llm-based two- stage framework for reliability assessment of rotating machine under partial information,
Reference 33
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Reference 34
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Adaptive prototype learning for anomalous sound detection with partially known attributes,
Reference 35
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation ToyAD- MOS: A dataset of miniature-machine operating sounds for anomalous sound detection,
Reference 36
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation MIMII Dataset: Sound dataset for malfunctioning industrial machine investigation and inspection,
Reference 37
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Reference 38
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Reference 41
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Reference 42
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Reference 43
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Reference 44
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Reference 46
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation First-shot anomaly detection for machine condition monitoring: A domain generalization baseline,
Reference 47
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Reference 48
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Reference 49
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Reference 50
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Reference 51
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Reference 52
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Reference 53
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Reference 54
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Reference 55
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Reference 56
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Reference 57
Source-reported events for the cited work
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Reference 58
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Reference 60
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Reference 61
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Reference 62
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Reference 63
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Reference 64
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Reference 65
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Reference 66
Source-reported events for the cited work
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Reference 67
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FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation A unified rotating machinery health management framework leveraging large language models for diverse components, conditions, and tasks,
Reference 68
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Reference 69
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Reference 70
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Reference 71
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Observation 11acab8f-be58-4935-9aae-36348a9049f2 · outbound
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Reference 72
Source-reported events for the cited work
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Observation 44e51d18-a80a-4e3c-b301-79fc46dd7c8b · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Unresolved cited work
Reference 73
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Observation a1c47d8b-5bfb-43af-bc12-ad29049e2870 · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation Thus, only two models are compared
Reference 74
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Observation 0053abee-d9f0-4248-9b38-a4bf17b31dec · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation For LiConvFormer, we utilize the weights trained on CWRU
Reference 75
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Observation 24c0f89c-f5cf-42b4-9b4d-9add1cfff428 · outbound
FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation degree with the Department of Electronic Engi- neering, Tsinghua University, Beijing, China
Reference 2025
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Observation 0856c63e-18f2-4a24-82a4-d1d8ebbec88e · inbound
Mind the Gap: Detecting Cluster Exits for Robust Local Density-Based Score Normalization in Anomalous Sound Detection FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation
Reference 24
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Observation 49065796-d797-43be-a5fd-368bff46985d · inbound
ECHOv2: Two-Level Band-Splitting Representation Learning for Anomalous Sound Detection FISHER: A Foundation Model for Multi-Modal Industrial Signal Comprehensive Representation
Reference 44
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