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Paper Citation Record · LEDGER

SensorLM: Learning the Language of Wearable Sensors

As of 8 August 2026, this Paper Citation Record lists 69 of 69 outbound references and 17 inbound Pith citation observations for arXiv:2506.09108.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2506.09108 v1

Coverage vector

measured 69 of 69 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-07T05:04:06.545949Z

measured 86 of 86 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00

measured 17 of 17 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-08-02T21:02:32.792477Z

measured 1 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: arxiv_reference, observed 2026-08-05T02:28:24.338817Z

Reference resolution

69 of 69 outbound references displayed

  • verified exact0
  • verified fuzzy19
  • unresolved47
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External citation measurements

0
arxiv_reference, observed 2026-08-05T02:28:24.338817Z

Outbound references

Observation f8e5e55d-5999-4f20-8be1-94b4f091d969 · outbound

This paper cites Large-scale training of foundation models for wearable biosignals.

SensorLM: Learning the Language of Wearable Sensors Large-scale training of foundation models for wearable biosignals

Reference 1

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Observation 841cf905-06c4-4265-a54e-a5280fca9136 · outbound

This paper cites Masked siamese networks for label-efficient learning.

SensorLM: Learning the Language of Wearable Sensors Masked siamese networks for label-efficient learning

Reference 2

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Observation 212a12f2-ac58-492b-ba44-f50d301e3f7d · outbound

This paper cites Emerging properties in self-supervised vision transformers.

SensorLM: Learning the Language of Wearable Sensors Emerging properties in self-supervised vision transformers

Reference 3

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Observation 70bf205c-eb92-485b-bdd2-62386b2d55b7 · outbound

This paper cites Bootstrap confidence intervals: when, which, what? a practical guide for medical statisticians.Statistics in medicine, 19(9):1141–1164, 2000.

SensorLM: Learning the Language of Wearable Sensors Bootstrap confidence intervals: when, which, what? a practical guide for medical statisticians.Statistics in medicine, 19(9):1141–1164, 2000

Reference 4

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Observation b6870797-181a-4bd6-a87f-e57c53440874 · outbound

This paper cites A simple framework for contrastive learning of visual representations.

SensorLM: Learning the Language of Wearable Sensors A simple framework for contrastive learning of visual representations

Reference 5

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Observation e8c1bcd4-a48f-4f5e-aeb4-e08dc81d64fc · outbound

This paper cites an unresolved cited work.

SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 6

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Observation c00a6953-028a-4d2f-b11e-4c50044c755a · outbound

This paper cites Towards a Personal Health Large Language Model.

SensorLM: Learning the Language of Wearable Sensors Towards a Personal Health Large Language Model

Reference 7

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Observation 833e4c6b-99e4-4aaa-b43f-53e8dea779b3 · outbound

This paper cites Clap learning audio concepts from natural language supervision.

SensorLM: Learning the Language of Wearable Sensors Clap learning audio concepts from natural language supervision

Reference 8

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Observation f36479a9-99bf-489c-a1d4-145d30dff8cd · outbound

This paper cites A visual– language foundation model for pathology image analysis using medical twitter.Nature medicine, 29(9):2307–2316, 2023.

SensorLM: Learning the Language of Wearable Sensors A visual– language foundation model for pathology image analysis using medical twitter.Nature medicine, 29(9):2307–2316, 2023

Reference 9

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Observation d75d8244-0e55-4d06-9797-15064d4bbdb9 · outbound

This paper cites Llasa: A multimodal llm for human activity analysis through wearable and smartphone sensors.arXiv preprint arXiv:2406.14498, 2024.

SensorLM: Learning the Language of Wearable Sensors Llasa: A multimodal llm for human activity analysis through wearable and smartphone sensors.arXiv preprint arXiv:2406.14498, 2024

Reference 10

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Observation d4f23b30-b58e-4397-a119-a9aacc04f6e0 · outbound

This paper cites Neurolm: A universal multi-task foundation model for bridging the gap between language and eeg signals.

SensorLM: Learning the Language of Wearable Sensors Neurolm: A universal multi-task foundation model for bridging the gap between language and eeg signals

Reference 11

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Observation 1cca1eec-897b-4f4f-9ce9-bb21355ee996 · outbound

This paper cites Scaling Laws for Neural Language Models.

SensorLM: Learning the Language of Wearable Sensors Scaling Laws for Neural Language Models

Reference 12

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Observation 66227ad1-bd47-4750-8ae9-44025463ab82 · outbound

This paper cites Health-LLM: Large Language Models for Health Prediction via Wearable Sensor Data.

SensorLM: Learning the Language of Wearable Sensors Health-LLM: Large Language Models for Health Prediction via Wearable Sensor Data

Reference 13

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Observation 1890c741-c2a9-40da-817c-5eb792a19941 · outbound

This paper cites Blip-2: Bootstrapping language-image pre-training with frozen image encoders and large language models.

SensorLM: Learning the Language of Wearable Sensors Blip-2: Bootstrapping language-image pre-training with frozen image encoders and large language models

Reference 14

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Observation fddef3b8-9f05-46f4-aad8-7bd2c13330ad · outbound

This paper cites an unresolved cited work.

SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 15

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Observation 1e12a4c2-2cb4-40ff-8f9a-7651b4f2d1a5 · outbound

This paper cites Large Language Models are Few-Shot Health Learners.

SensorLM: Learning the Language of Wearable Sensors Large Language Models are Few-Shot Health Learners

Reference 16

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Observation e9a37e22-0cba-491b-8d55-dd79458ea9ca · outbound

This paper cites Guidelines for Augmentation Selection in Contrastive Learning for Time Series Classification.

SensorLM: Learning the Language of Wearable Sensors Guidelines for Augmentation Selection in Contrastive Learning for Time Series Classification

Reference 17

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Observation 257360a2-7a7a-4f23-a650-dc136df5b983 · outbound

This paper cites Decoupled weight decay regularization.

SensorLM: Learning the Language of Wearable Sensors Decoupled weight decay regularization

Reference 18

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Observation ef43d9db-6147-4eb8-8eb4-c2642878ec18 · outbound

This paper cites A visual-language foundation model for computational pathology.Nature Medicine, 30(3):863–874, 2024.

SensorLM: Learning the Language of Wearable Sensors A visual-language foundation model for computational pathology.Nature Medicine, 30(3):863–874, 2024

Reference 19

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

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Observation 62483fdb-c7c3-4703-95c6-f8932b51d0ad · outbound

This paper cites Transforming Wearable Data into Personal Health Insights using Large Language Model Agents.

SensorLM: Learning the Language of Wearable Sensors Transforming Wearable Data into Personal Health Insights using Large Language Model Agents

Reference 20

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Observation 1c9a3902-d555-41d6-b79d-93072e62237e · outbound

This paper cites Merrill, Mingtian Tan, Vinayak Gupta, Thomas Hartvigsen, and Tim Althoff.

SensorLM: Learning the Language of Wearable Sensors Merrill, Mingtian Tan, Vinayak Gupta, Thomas Hartvigsen, and Tim Althoff

Reference 21

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Observation 316694e0-ce39-438b-93e6-22f8c8a282d1 · outbound

This paper cites Imu2clip: language-grounded motion sensor translation with multimodal con- trastive learning.

SensorLM: Learning the Language of Wearable Sensors Imu2clip: language-grounded motion sensor translation with multimodal con- trastive learning

Reference 22

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Observation 1009ff39-6c54-42c7-a1f1-4a21911d4217 · outbound

This paper cites Tailor, Jacob Sunshine, Yun Liu, Tim Althoff, Shrikanth Narayanan, Pushmeet Kohli, Jiening Zhan, Mark Malhotra, Shwetak Patel, Samy Abdel-Ghaffar, and Daniel McDuff.

SensorLM: Learning the Language of Wearable Sensors Tailor, Jacob Sunshine, Yun Liu, Tim Althoff, Shrikanth Narayanan, Pushmeet Kohli, Jiening Zhan, Mark Malhotra, Shwetak Patel, Samy Abdel-Ghaffar, and Daniel McDuff

Reference 23

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Observation dc687f0e-f5f5-46aa-b276-5308b7d26a1b · outbound

This paper cites Learning transferable visual models from natural language supervision.

SensorLM: Learning the Language of Wearable Sensors Learning transferable visual models from natural language supervision

Reference 24

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Observation 26b661ad-89d4-4ada-8f94-fc04a91279e2 · outbound

This paper cites Fitbit-based interventions for healthy lifestyle outcomes: systematic review and meta-analysis.Journal of medical Internet research, 22(10):e23954, 2020.

SensorLM: Learning the Language of Wearable Sensors Fitbit-based interventions for healthy lifestyle outcomes: systematic review and meta-analysis.Journal of medical Internet research, 22(10):e23954, 2020

Reference 25

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Observation 0fbbd9b9-6b72-4947-8381-941505f82cd9 · outbound

This paper cites Data augmentation for learning predictive models on eeg: a systematic comparison.Journal of Neural Engineering, 19(6):066020, 2022.

SensorLM: Learning the Language of Wearable Sensors Data augmentation for learning predictive models on eeg: a systematic comparison.Journal of Neural Engineering, 19(6):066020, 2022

Reference 26

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Source-reported events for the cited work

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Observation 210b99c5-8e4c-40f9-9e74-11bea6c54fb8 · outbound

This paper cites Exploring Contrastive Learning in Human Activity Recognition for Healthcare.

SensorLM: Learning the Language of Wearable Sensors Exploring Contrastive Learning in Human Activity Recognition for Healthcare

Reference 27

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Observation 5975283e-a5de-430b-a0c8-93ad42b058e9 · outbound

This paper cites Gemini: A Family of Highly Capable Multimodal Models.

SensorLM: Learning the Language of Wearable Sensors Gemini: A Family of Highly Capable Multimodal Models

Reference 28

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Observation 58596b3b-c450-4eaa-bfa0-ea648fefcfba · outbound

This paper cites Gemma 3 Technical Report.

SensorLM: Learning the Language of Wearable Sensors Gemma 3 Technical Report

Reference 29

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Observation 983645f6-18d3-42d1-a744-82bccbffaf9b · outbound

This paper cites SleepFM: Multi-modal representation learning for sleep across brain activity, ECG and respiratory signals.

SensorLM: Learning the Language of Wearable Sensors SleepFM: Multi-modal representation learning for sleep across brain activity, ECG and respiratory signals

Reference 30

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Source-reported events for the cited work

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Observation 9958ce9a-cad5-4d49-a379-5206e827f74d · outbound

This paper cites Llama 2: Open Foundation and Fine-Tuned Chat Models.

SensorLM: Learning the Language of Wearable Sensors Llama 2: Open Foundation and Fine-Tuned Chat Models

Reference 31

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Observation 4d3844ff-2c30-4eac-be70-516b14819209 · outbound

This paper cites Image captioners are scalable vision learners too.Advances in Neural Information Processing Systems, 36:46830–46855, 2023.

SensorLM: Learning the Language of Wearable Sensors Image captioners are scalable vision learners too.Advances in Neural Information Processing Systems, 36:46830–46855, 2023

Reference 32

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Observation 37d4ec21-92b9-4400-9990-4009e69ea965 · outbound

This paper cites Visualizing data using t-sne.Journal of machine learning research, 9(11), 2008.

SensorLM: Learning the Language of Wearable Sensors Visualizing data using t-sne.Journal of machine learning research, 9(11), 2008

Reference 33

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Observation 32f16b24-5e42-4983-ad77-b0bbfb6583fc · outbound

This paper cites SimVLM: Simple Visual Language Model Pretraining with Weak Supervision.

SensorLM: Learning the Language of Wearable Sensors SimVLM: Simple Visual Language Model Pretraining with Weak Supervision

Reference 34

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Observation 0f5fd389-71e8-4210-86ae-56438260f9d7 · outbound

This paper cites Deepsqa: Understanding sensor data via question answering.

SensorLM: Learning the Language of Wearable Sensors Deepsqa: Understanding sensor data via question answering

Reference 35

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raw_fallback, observed 2026-08-07T05:04:07.248281Z

Source-reported events for the cited work

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Observation 2fe0f453-ac9c-4e43-ac99-a0f6776a029e · outbound

This paper cites Simper: Simple self-supervised learning of periodic targets.

SensorLM: Learning the Language of Wearable Sensors Simper: Simple self-supervised learning of periodic targets

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Observation 6f4b7ac8-44a5-4c43-a168-7a8101efbcac · outbound

This paper cites Artificial intelligence-enabled detection and assessment of parkinson’s disease using nocturnal breathing signals.Nature Medicine, 28(10):2207–2215, 2022.

SensorLM: Learning the Language of Wearable Sensors Artificial intelligence-enabled detection and assessment of parkinson’s disease using nocturnal breathing signals.Nature Medicine, 28(10):2207–2215, 2022

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Source-reported events for the cited work

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Observation 65d2b6bc-0f91-43a1-a9b2-5acffd1919a4 · outbound

This paper cites CoCa: Contrastive Captioners are Image-Text Foundation Models.

SensorLM: Learning the Language of Wearable Sensors CoCa: Contrastive Captioners are Image-Text Foundation Models

Reference 38

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation 540f3066-51d0-4383-985f-fac80ddfa244 · outbound

This paper cites SensorChat: Answering Qualitative and Quantitative Questions during Long-Term Multimodal Sensor Interactions.

SensorLM: Learning the Language of Wearable Sensors SensorChat: Answering Qualitative and Quantitative Questions during Long-Term Multimodal Sensor Interactions

Reference 39

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation 2f528a76-0fae-48c7-9c0e-9d39ae8eb196 · outbound

This paper cites Self-supervised learning for human activity recognition using 700,000 person-days of wearable data.NPJ digital medicine, 7(1):91, 2024.

SensorLM: Learning the Language of Wearable Sensors Self-supervised learning for human activity recognition using 700,000 person-days of wearable data.NPJ digital medicine, 7(1):91, 2024

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation 64b80bf5-45a5-45ad-ab54-b25b0abadfba · outbound

This paper cites Self-supervised contrastive pre-training for time series via time-frequency consistency.Advances in neural information processing systems, 35:3988–4003, 2022.

SensorLM: Learning the Language of Wearable Sensors Self-supervised contrastive pre-training for time series via time-frequency consistency.Advances in neural information processing systems, 35:3988–4003, 2022

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Source-reported events for the cited work

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Observation e17bfd02-cfd6-4e60-b257-9cf5ddeb4e45 · outbound

This paper cites Unimts: Unified pre-training for motion time series.Advances in Neural Information Processing Systems, 37:107469–107493, 2024.

SensorLM: Learning the Language of Wearable Sensors Unimts: Unified pre-training for motion time series.Advances in Neural Information Processing Systems, 37:107469–107493, 2024

Reference 42

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Observation 616e6eec-a80f-4473-98c8-546afe0cf388 · outbound

This paper cites ECG-Chat: A Large ECG-Language Model for Cardiac Disease Diagnosis.

SensorLM: Learning the Language of Wearable Sensors ECG-Chat: A Large ECG-Language Model for Cardiac Disease Diagnosis

Reference 43

Resolution
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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation 015739ee-3db5-443a-bb3c-3a654a4d55db · outbound

This paper cites Heart rate.

SensorLM: Learning the Language of Wearable Sensors Heart rate

Reference 44

Resolution
verified fuzzy
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Source-reported events for the cited work

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Observation 2d9d619d-2e49-447f-a7aa-e544031645b2 · outbound

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SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 45

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Source-reported events for the cited work

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Observation c9faa8d7-a89a-488d-b622-bd613a967ad4 · outbound

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Reference 46

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Observation b1bd401d-23d2-4288-9286-167699fc650f · outbound

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SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 47

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Source-reported events for the cited work

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Observation 2570d5c2-a934-4a56-9155-d6f7ffdafa71 · outbound

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SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 48

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Observation 525f199e-1e1a-4291-9819-353145113977 · outbound

This paper cites an unresolved cited work.

SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 49

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No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

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Observation 5cb75f77-6d89-4d2f-9fc7-2db97de16ebe · outbound

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SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 51

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Observation 85c61af9-0577-4872-8d21-d41152512446 · outbound

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SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 52

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Observation 37ad6251-b7cd-4482-8912-d006f054043b · outbound

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SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 53

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Observation 00f0c55d-7c75-4f2b-bad9-b9ea82982f9c · outbound

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Reference 54

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Observation 52eb4074-e543-4b2d-8bf9-9893bdf4629e · outbound

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SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 55

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Observation 5c4654f6-459c-4415-bacf-749ea1246806 · outbound

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Reference 56

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Observation 64b517df-c39c-47c0-b1b7-1e6842caca7f · outbound

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SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 57

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Observation 2d701e84-5be9-4ba3-96a8-416340c7e536 · outbound

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SensorLM: Learning the Language of Wearable Sensors Unresolved cited work

Reference 58

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Observation 010663d0-4049-4a75-80bf-6605051ed796 · outbound

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Reference 59

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Reference 60

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Observation c2041e5e-3c79-4e6f-8864-18f3ffb01339 · outbound

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Reference 61

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Observation 67192f63-0889-4a36-8325-dfe2f6379ca3 · outbound

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Reference 62

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Reference 63

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Observation b6152be0-404e-4f7e-9659-a9c1d9713313 · outbound

This paper cites Evaluate the feasibility of using the data provided by wrist-worn wearable devices to develop algorithms and scores to assess metabolic health.

SensorLM: Learning the Language of Wearable Sensors Evaluate the feasibility of using the data provided by wrist-worn wearable devices to develop algorithms and scores to assess metabolic health

Reference 64

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Observation 757b775f-c209-4e45-8f44-8003279c89f2 · outbound

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Reference 65

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Observation ba2cc542-4db4-4ca6-9cd5-8a23ec48d6a5 · outbound

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Reference 66

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Reference 67

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Observation 0a331e88-89d6-456c-8054-499194c2848d · outbound

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Reference 68

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SensorLM: Learning the Language of Wearable Sensors Activity by environmental context

Reference 69

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SensorLM: Learning the Language of Wearable Sensors Anxiety” and “Hypertension

Reference 730

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Pith citing papers

Observation 667a697f-fc0d-4696-8794-836621bd871d · inbound

SleepLM: Natural-Language Intelligence for Human Sleep cites this paper.

SleepLM: Natural-Language Intelligence for Human Sleep SensorLM: Learning the Language of Wearable Sensors

Reference 46

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Source-reported events for the cited work

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OSF: On Pre-training and Scaling of Sleep Foundation Models SensorLM: Learning the Language of Wearable Sensors

Reference 45

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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PulseLM: A Foundation Dataset and Benchmark for PPG-Text Learning SensorLM: Learning the Language of Wearable Sensors

Reference 50

Resolution
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No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

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Observation 4c1a15b9-4a31-4f12-8581-461054788d7a · inbound

HEARTS: Benchmarking LLM Reasoning on Health Time Series cites this paper.

HEARTS: Benchmarking LLM Reasoning on Health Time Series SensorLM: Learning the Language of Wearable Sensors

Reference 89

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unresolved
no resolver link, observed 2026-08-02T21:02:32.792477Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-02T21:02:32.792477Z digest=sha256:fff80e282b2ec6c072f403205eeaf2a6d66637871578b0370b5a3d738ddf38fb

Observation 37b65bcc-4509-4da4-bc39-df39b31e2166 · inbound

Foundation Models Defining A New Era In Sensor-based Human Activity Recognition: A Survey And Outlook cites this paper.

Foundation Models Defining A New Era In Sensor-based Human Activity Recognition: A Survey And Outlook SensorLM: Learning the Language of Wearable Sensors

Reference 174

Resolution
verified exact
arxiv_id, observed 2026-05-13T18:53:08.607818Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-05-13T18:48:40.813486Z digest=sha256:5e095d7dbd34f395d1e284219bd2d7eb973ebbdd57fe01cdffe405cf29f44afb

Observation f8491492-1453-40d4-9ea7-2fd467ae5a5c · inbound

Wearable AI in the Era of Large Sensor Models cites this paper.

Wearable AI in the Era of Large Sensor Models SensorLM: Learning the Language of Wearable Sensors

Reference 41

Resolution
metadata mismatch
arxiv_id, observed 2026-05-11T08:30:58.046285Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-05-10T16:35:36.541995Z digest=sha256:ae0d14c973ec7ba2da8b94c6dd0ed9d920a0565e055ccf3ab5b7e7d25d5fb2a1

Observation 45017c9d-2938-41f0-9dce-1edf8acc32da · inbound

RF-LEGO: Modularized Signal Processing-Deep Learning Co-Design for RF Sensing via Deep Unrolling cites this paper.

RF-LEGO: Modularized Signal Processing-Deep Learning Co-Design for RF Sensing via Deep Unrolling SensorLM: Learning the Language of Wearable Sensors

Reference 73

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verified exact
arxiv_id, observed 2026-05-11T10:01:03.635763Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-05-10T15:41:13.555266Z digest=sha256:fde3586f3414f58209441eb7cc3dda8d3e698b96bbdeee6e54c9e829a1dc5dea

Observation bf99b226-76a6-4a84-ae58-c75d41e01de7 · inbound

Sonata: A Hybrid World Model for Inertial Kinematics under Clinical Data Scarcity cites this paper.

Sonata: A Hybrid World Model for Inertial Kinematics under Clinical Data Scarcity SensorLM: Learning the Language of Wearable Sensors

Reference 29

Resolution
verified exact
arxiv_id, observed 2026-05-10T12:10:23.219826Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-05-10T04:36:51.588539Z digest=sha256:f71317f67064ca915c1beefc28ce4533ef892880c2a640e6ed276f87f80e1975

Observation 49019b28-dd24-4bd0-926e-dc49de74f4c0 · inbound

Seeing Without Eyes: 4D Human-Scene Understanding from Wearable IMUs cites this paper.

Seeing Without Eyes: 4D Human-Scene Understanding from Wearable IMUs SensorLM: Learning the Language of Wearable Sensors

Reference 117

Resolution
metadata mismatch
arxiv_id, observed 2026-05-11T14:21:07.166416Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-05-09T21:59:00.442135Z digest=sha256:3df875352661b518ad6f88e572da0c2ca7ff26b019475e5de2aa2f31434360cd

Observation 4a45e9a4-a41f-4233-a577-a6bcaca8c07a · inbound

OpenWatch: A Multimodal Benchmark for Hand Gesture Recognition on Smartwatches cites this paper.

OpenWatch: A Multimodal Benchmark for Hand Gesture Recognition on Smartwatches SensorLM: Learning the Language of Wearable Sensors

Reference 53

Resolution
verified exact
arxiv_id, observed 2026-05-11T18:11:05.790520Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-05-08T16:29:42.915942Z digest=sha256:ed31769c3e1edda4a0eba0fd32deb61d0941a1a09b60b5b563b511556f4b4ec1

Observation eb6748bd-42a0-41dd-89b1-0ca762604ec1 · inbound

TimeSRL: Generalizable Time-Series Behavioral Modeling via Semantic RL-Tuned LLMs -- A Case Study in Mental Health cites this paper.

TimeSRL: Generalizable Time-Series Behavioral Modeling via Semantic RL-Tuned LLMs -- A Case Study in Mental Health SensorLM: Learning the Language of Wearable Sensors

Reference 79

Resolution
verified exact
arxiv_id, observed 2026-05-21T06:13:59.419231Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-05-21T06:09:44.172188Z digest=sha256:871ad00344b22960562af8ff4867a928055408d6be58adf8f393df5b533a2af4

Observation 507639b7-5d30-468b-a09e-2e4c0e701d23 · inbound

Authority Inversion in LLM-Mediated Ubiquitous Systems: When Models Trust Users Over Sensors cites this paper.

Authority Inversion in LLM-Mediated Ubiquitous Systems: When Models Trust Users Over Sensors SensorLM: Learning the Language of Wearable Sensors

Reference 43

Resolution
verified exact
arxiv_id, observed 2026-07-01T09:25:40.010419Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-07-01T09:20:01.288953Z digest=sha256:b3d51af8c801d3e8cc0c0076632d46bba0fd9bb1285ca741b458da95119860b4

Observation 4522e0e9-3c7b-432f-80f9-bd8424711803 · inbound

MyoSem: Aligning Electromyography to Natural-Language Action Semantics for Hand Action Understanding cites this paper.

MyoSem: Aligning Electromyography to Natural-Language Action Semantics for Hand Action Understanding SensorLM: Learning the Language of Wearable Sensors

Reference 6

Resolution
metadata mismatch
arxiv_id, observed 2026-06-28T22:42:46.346920Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-06-28T22:40:49.525450Z digest=sha256:1b5f6c143c9d3be6358874e57013610046eec2fc983f31803a2a524865fd80d8

Observation f9f4882a-41d8-4d5f-afaf-61b914ab1fc4 · inbound

Gravity-Aware Hierarchical Routing for Lightweight SensorLLM on Human Activity Recognition cites this paper.

Gravity-Aware Hierarchical Routing for Lightweight SensorLLM on Human Activity Recognition SensorLM: Learning the Language of Wearable Sensors

Reference 7

Resolution
verified exact
arxiv_id, observed 2026-07-02T00:16:25.480632Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-06-28T13:27:29.324307Z digest=sha256:6f9e21239d9cf10d596276a51f10397c0473976f545734526aa7ccb6679c14d3

Observation 5166af54-c284-49cc-9b6a-094636e64429 · inbound

A robust PPG foundation model using multimodal physiological supervision cites this paper.

A robust PPG foundation model using multimodal physiological supervision SensorLM: Learning the Language of Wearable Sensors

Reference 19

Resolution
verified exact
arxiv_id, observed 2026-07-02T16:47:10.218057Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-06-27T22:20:51.569973Z digest=sha256:e2f67af346391f5ec472dd26a1bb8233f51e7872c477086cd164d52299b511f8

Observation f1239e73-e14b-4d45-8b79-2ee0eeab6025 · inbound

BCG-FM: A Foundation Model for Ambient Cardiac Health Sensing cites this paper.

BCG-FM: A Foundation Model for Ambient Cardiac Health Sensing SensorLM: Learning the Language of Wearable Sensors

Reference 13

Resolution
verified exact
arxiv_id, observed 2026-07-02T16:27:08.961498Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.

source=pdf_text observed=2026-06-27T22:44:59.267252Z digest=sha256:942f7a0219d772541f4630fd0131e923be38bf6e6ba319abb2c944d9861bb9ac

Observation de018be8-5ed7-4b82-803e-432ee514c240 · inbound

Signal or Noise? Understanding Generative Models for Real-World Sensor Time Series cites this paper.

Signal or Noise? Understanding Generative Models for Real-World Sensor Time Series SensorLM: Learning the Language of Wearable Sensors

Reference 46

Resolution
malformed identifier
no resolver link, observed 2026-07-11T20:41:10.528667Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T20:41:10.528667Z digest=sha256:33d1717b83272c8b1748bf073fa506109a3353d7dc19d638dcf1d3aad2ef3d7e