Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T17:08:50.142178Z
Paper Citation Record · LEDGER
As of 19 August 2026, this Paper Citation Record lists 42 of 42 outbound references and 0 inbound Pith citation observations for arXiv:2412.09289.
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 2026-08-11T17:08:50.142178Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-19T06:32:44.657259+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
42 of 42 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 6c787473-2b06-4077-a430-be8680e3836c · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Tinyml applications and use cases for healthcare,
Reference 1
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Observation 8d7ad47e-0876-4737-b52d-1ca389ab20bb · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Activity monitoring and location sensory system for people with mild cognitive impairments,
Reference 2
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Observation a8383ae6-f743-46aa-8e76-8219736d9fa3 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Survey of indoor location technologies and wayfinding systems for users with cognitive disabilities in emergencies,
Reference 3
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Observation a995dbfd-4b08-4519-8a61-37bd40da9381 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices A tinyml deep learning approach for indoor tracking of assets,
Reference 4
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Observation 3ebecde4-e083-4155-b50a-10f5d65000e7 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Detecting Signatures of Early-stage Dementia with Behavioural Models Derived from Sensor Data
Reference 5
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Observation 11f3bb6e-bc4b-4d93-ba15-beacb8930180 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Vesta: A digital health analytics platform for a smart home in a box,
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Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Tinyml using neural networks for resource-constrained devices,
Reference 7
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Observation 902907cd-bb71-4add-9b95-73cd28c06999 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices A survey of quantiza- tion methods for efficient neural network inference,
Reference 8
Source-reported events for the cited work
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Observation c14611aa-cd3a-4b47-8ea6-03a13a282392 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Distilling the Knowledge in a Neural Network
Reference 9
Source-reported events for the cited work
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Observation 28603afd-fea2-46fb-ab82-5d732c9613b1 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Machine learning techniques for indoor localization on edge devices: Integrating ai with embedded devices for indoor localization purposes,
Reference 10
Source-reported events for the cited work
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Observation 00bcf6e4-54fc-4a65-8a27-19a147db203e · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Multimodal indoor localisation in parkinson’s disease for detecting medication use: Observational pilot study in a free- living setting,
Reference 11
Source-reported events for the cited work
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Observation 4dd30571-b83d-496e-9baa-0ccf9a2db118 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices A review on tinyml: State-of-the-art and prospects,
Reference 12
Source-reported events for the cited work
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Observation 6a211aa6-add2-47e1-8f38-02915db78fdd · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices To prune, or not to prune: exploring the efficacy of pruning for model compression
Reference 13
Source-reported events for the cited work
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Observation 1aaa2039-7b14-4ebf-9b44-5f59b81bdaff · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Low-rank matrix factorization for deep neural network training with high-dimensional output targets,
Reference 14
Source-reported events for the cited work
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Observation d00de16b-0d91-44cb-bb27-e56bba3dc427 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices A compre- hensive survey on tinyml,
Reference 15
Source-reported events for the cited work
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Observation 3ab34dfa-1c39-4fbb-8c9d-642c337c3e29 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Model compression via distillation and quantization
Reference 16
Source-reported events for the cited work
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Observation 8203d970-c3f6-4cc5-b28d-f268c5b2505f · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Channel state information based device free wireless sensing for iot devices employing tinyml,
Reference 17
Source-reported events for the cited work
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Observation dae41c63-294c-4792-a8a2-ad200abd086d · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Design space exploration of a multi-model ai-based indoor localization system,
Reference 18
Source-reported events for the cited work
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Observation 2decde4b-9d35-43dc-9444-47ff1a89644d · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices A tinyml-approach to detect the proximity of people based on bluetooth low energy beacons,
Reference 19
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Observation 55946fee-3510-4adf-9578-7a7a09bf5d3a · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Tiny but mighty: Embedded machine learning for indoor wireless localization,
Reference 20
Source-reported events for the cited work
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Observation 6fccee1a-8684-4f55-8099-3d4577b43aaf · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices A fast indoor positioning using a knowledge-distilled convolutional neural network (kd-cnn),
Reference 21
Source-reported events for the cited work
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Observation 3eda665d-a016-423a-a42b-9cf4aa28a311 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Teacher-assistant knowledge distillation based indoor positioning system,
Reference 22
Source-reported events for the cited work
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Observation 1580851f-992d-4e89-bb6e-cb670c89236a · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Knowledge distillation for a lightweight deep learning-based indoor positioning system on edge environments,
Reference 23
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Observation d01d4a01-1670-41f2-abfc-1478fed2664d · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Knowledge distillation based deep learning model for user equipment positioning in massive mimo systems using flying reconfigurable intelligent surfaces,
Reference 24
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-19T06:32:44.657259+00:00.
Observation 29a1ea09-87e8-411f-b3f6-c3a93b5c48d2 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Attention is all you need,
Reference 25
Source-reported events for the cited work
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Observation ebe0e90d-1180-4f79-bbb4-bf40911c536b · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices A survey of transformers,
Reference 26
Source-reported events for the cited work
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Observation 680f7f04-8b9f-4923-b046-cf8ca6633701 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Mamba: Linear-Time Sequence Modeling with Selective State Spaces
Reference 27
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Observation 7a94254c-d701-4cca-aa8e-e043ad01db83 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices TimeMachine: A Time Series is Worth 4 Mambas for Long-term Forecasting
Reference 28
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Observation d51f0cfd-5576-498b-8abb-39a4490af0c7 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Residential wearable rssi and accelerometer measurements with detailed location annotations,
Reference 29
Source-reported events for the cited work
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Observation b0fbbb0d-8b57-44e7-abba-455733b64817 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Ujiindoorloc: A new multi-building and multi-floor database for wlan fingerprint-based indoor localization problems,
Reference 30
Source-reported events for the cited work
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Observation 8b52df33-f79e-4392-b727-25bb3bdc9c9c · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices A survey on indoor positioning systems for iot-based applications,
Reference 31
Source-reported events for the cited work
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Observation 397a798d-d6c4-4ce1-9ff9-2ddb66a06056 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Gpt3. int8 (): 8-bit matrix multiplication for transformers at scale,
Reference 32
Source-reported events for the cited work
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Observation 44beed90-bb70-46f5-9ae8-5b2610ca008f · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices A survey of techniques for optimizing transformer inference,
Reference 33
Source-reported events for the cited work
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Observation eb8445de-bd06-4813-8cea-7885e005cd5b · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Mamba in Speech: Towards an Alternative to Self-Attention
Reference 34
Source-reported events for the cited work
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Observation 630749e5-1176-41aa-b4ab-eb2b4aeb28b1 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Saturn: Sample-efficient Generative Molecular Design using Memory Manipulation
Reference 35
Source-reported events for the cited work
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Observation 0bda061e-b3d2-4b04-9299-144744bfb2bd · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Accurate post training quantiza- tion with small calibration sets,
Reference 36
Source-reported events for the cited work
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Observation d4350c86-a79e-4a40-b512-7aa5f3ba68c0 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Quantization and training of neural networks for efficient integer-arithmetic-only inference,
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Observation 6ef34e59-f9c8-4edf-aa9a-42d3eae7f1f9 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Up or down? adap- tive rounding for post-training quantization,
Reference 38
Source-reported events for the cited work
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Observation 802659ea-ac25-43b9-83d8-78b0888f91a1 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Less is more: Task-aware layer-wise distillation for language model compression,
Reference 39
Source-reported events for the cited work
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Observation a9dd328b-7232-4c1f-a7ee-a6398c7ab961 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices FitNets: Hints for Thin Deep Nets
Reference 40
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Observation da7629e7-c7c9-4aab-9478-ca644a6d196d · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Darkrank: Accelerating deep metric learning via cross sample similarities transfer,
Reference 41
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-19T06:32:44.657259+00:00.
Observation 667d78de-cd1e-496c-9fbe-98d179653bc6 · outbound
Optimising TinyML with Quantization and Distillation of Transformer and Mamba Models for Indoor Localisation on Edge Devices Categories of response-based, feature-based, and relation- based knowledge distillation,
Reference 42
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-19T06:32:44.657259+00:00.
No inbound Pith citation observations are available.