Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-03T08:50:39.370097Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 60 of 60 outbound references and 0 inbound Pith citation observations for arXiv:2607.29353.
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 2026-08-03T08:50:39.370097Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-09T06:31:02.800959+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
60 of 60 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation d7c89886-c043-452d-9b29-556bc19bad96 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A survey on the convergence of edge computing and ai for uavs: Opportunities and challenges,
Reference 1
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Observation 6026e7fe-a284-400c-a784-557d94ed5779 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning V ocell: A 65-nm speech-triggered wake-up soc for 10- µ w keyword spotting and speaker verification,
Reference 2
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Observation d776d96a-3690-46f0-b3c2-85652afe464f · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A 23-uw keyword spotting ic with ring-oscillator-based time-domain feature extraction,
Reference 3
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Observation 2665fb5d-920e-4501-b15c-4e78d5f99665 · outbound
Reference 4
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Observation 3ed3f82c-b2d2-4738-a025-1797fb15f200 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A 5.6µw 10-keyword end-to-end keyword spotting system using passive-averaging sar adc and sign-exponent-only layer fusion with 92.7% accuracy,
Reference 5
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Observation ffdb84cd-fb40-4052-8e59-1c543bc36ddd · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning An ultra-low power reconfigurable biomedical ai processor with adaptive learning for versatile wearable intelligent health monitoring,
Reference 6
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Observation 31f52ba8-1a15-4cea-b2ba-1948de6ccd46 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A 3.9 mw 25- electrode reconfigured sensor for wearable cardiac monitoring system,
Reference 7
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Observation f4379345-013c-440d-a432-c3cdd41c954c · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A 1.06- µ w smart ecg processor in 65-nm cmos for real-time biometric authentication and personal cardiac monitoring,
Reference 8
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Observation aca944a0-135e-4cb8-b28f-7f7ef74d075a · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A 2.89 µ w dry-electrode enabled clockless wireless ecg soc for wearable applications,
Reference 9
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Observation 68f0f806-48e7-4368-af94-c34f9117eb1d · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning An Ultra- Low Power Reconfigurable Biomedical AI Processor With Adaptive Learning for Versatile Wearable Intelligent Health Monitoring,
Reference 10
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Observation 097132a3-9cd4-453c-8321-4de3ac58dafe · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Reckon: A 28nm sub-mm2 task-agnostic spiking recurrent neural network processor enabling on-chip learning over second-long timescales,
Reference 11
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Observation c8952cc8-3402-413f-a61e-60bd2c400ea8 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Tinyvers: A tiny versatile system-on-chip with state-retentive emram for ml inference at the extreme edge,
Reference 12
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Unavailable: canonical work link unavailable.
Observation 2f32478a-c71e-4414-92a4-f27eac3c7a31 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Embedded deep neural network processing: Algorithmic and processor techniques bring deep learning to iot and edge devices,
Reference 13
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Unavailable: canonical work link unavailable.
Observation 0c5639ce-86cf-454a-937c-7b7a01d19453 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Efficient processing of deep neural networks: A tutorial and survey,
Reference 14
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Observation 989e9aff-647a-411e-871c-123763975110 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A 640m pixel/s 3.65 mw sparse event-driven neuromorphic object recognition processor with on-chip learning,
Reference 15
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Unavailable: canonical work link unavailable.
Observation 62a69148-0bcf-4526-af9a-9cb4fd9f4955 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A 42pj/decision 3.12 tops/w robust in-memory machine learning classifier with on-chip training,
Reference 16
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Unavailable: canonical work link unavailable.
Observation 5bc34053-9955-43fd-9c84-a14b5969342c · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A 55nm time-domain mixed-signal neuromorphic accelerator with stochastic synapses and embedded reinforcement learning for autonomous micro-robots,
Reference 17
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Unavailable: canonical work link unavailable.
Observation 98bd8fe6-c2a5-4786-b351-b6af40f19c1e · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Fsl-hdnn: A 5.7 tops/w end-to- end few-shot learning classifier accelerator with feature extraction and hyperdimensional computing,
Reference 18
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Unavailable: canonical work link unavailable.
Observation c62d43f1-837f-45fe-bb8b-e0a5f281865c · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Clo-hdnn: A 4.66 tflops/w and 3.78 tops/w continual on-device learning accelerator with energy-efficient hyperdimensional computing via progressive search,
Reference 19
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Unavailable: canonical work link unavailable.
Observation edb33532-91f4-4139-b998-62cab852e417 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning One-shot learning with memory- augmented neural networks using a 64-kbit, 118 gops/w rram-based non-volatile associative memory,
Reference 20
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Unavailable: canonical work link unavailable.
Observation 28fc384d-7c3d-4c14-b835-ac1e68e32abe · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning An in-memory computing sram macro for memory-augmented neural network,
Reference 21
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Observation 0a9ea6a2-2606-4c3f-b153-6c20387c3ab6 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A 4096-neuron 1m-synapse 3.8-pj/sop spiking neural network with on-chip stdp learning and sparse weights in 10-nm finfet cmos,
Reference 22
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Unavailable: canonical work link unavailable.
Observation d2bff01e-7451-4a04-9da4-95fa67a58772 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Tess: A scalable temporally and spatially local learning rule for spiking neural networks,
Reference 23
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Unavailable: canonical work link unavailable.
Observation 67ecec7c-62ee-4ac6-924f-8d966d9ef021 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Online spatio-temporal learning in deep neural networks,
Reference 24
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Unavailable: canonical work link unavailable.
Observation 054e3d67-514e-4b0a-9991-34d72d7f0566 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Chameleon: A multiplier-free temporal convolutional network accelerator for end-to-end few-shot and continual learning from sequential data,
Reference 25
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Unavailable: canonical work link unavailable.
Observation b052a892-4762-4c1f-808e-c6da4c183ae5 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Comparison of parametric representations for monosyllabic word recognition in continuously spoken sentences,
Reference 26
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Unavailable: canonical work link unavailable.
Observation bb16e01c-2d16-45ea-8542-11aef4943cf1 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Human-level concept learning through probabilistic program induction,
Reference 27
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Unavailable: canonical work link unavailable.
Observation b5e4ac00-9ab1-4833-ac38-2f024c7265a8 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Prototypical networks for few-shot learning,
Reference 28
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Unavailable: canonical work link unavailable.
Observation 41a7dfba-2b89-404b-9115-c1c6eacaa1f0 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Learning to compare: Relation network for few-shot learning,
Reference 29
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Observation 246026c2-7841-4f21-9e01-e2c5b085c8d3 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Few-Shot Keyword Spotting in Any Language
Reference 30
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Unavailable: canonical work link unavailable.
Observation 6abf80e5-2d50-449a-880c-ac551045c7d0 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Matching networks for one shot learning,
Reference 31
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Unavailable: canonical work link unavailable.
Observation 9a4d93d7-f4d4-4ecd-b79f-7205dc54b888 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Domain-adaptive discriminative one-shot learning of gestures,
Reference 32
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Observation 513a05ab-0c3c-4192-b17f-3e3a2bd09411 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Model-agnostic meta-learning for fast adaptation of deep networks,
Reference 33
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Observation 51723c2b-bb35-497f-bcf0-82db3a97720b · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning One shot learning of simple visual concepts,
Reference 34
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Unavailable: canonical work link unavailable.
Observation 38e0dc74-0918-41fc-bf2f-edbcb1ce65e7 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Siamese neural networks for one-shot image recognition,
Reference 35
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Observation 826252f6-a11a-4710-8e44-8c1ad17a375f · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning One-shot learning of object categories,
Reference 36
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Observation f6a3ac3b-5649-4fa7-89ea-dae6a32e47c9 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Few- shot class-incremental learning,
Reference 37
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Observation 73f9ef02-46c8-4582-aafc-b962d5325011 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning The neurobench framework for benchmarking neuromorphic computing algorithms and systems,
Reference 38
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Unavailable: canonical work link unavailable.
Observation be94ca2e-d410-4739-8ef0-e1dea6c3a4f8 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Overcoming catastrophic forgetting in neural networks,
Reference 39
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Observation 4b7468f2-d62a-4d5a-b116-5cc817c7b728 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Attribute-based classification for zero-shot visual object categorization,
Reference 40
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Observation b258a1ad-f87c-4eb4-a5a5-46e846293cbc · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Trained transformers learn linear models in-context,
Reference 41
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Observation 3c0482b2-bd36-4464-9644-96280eaa4456 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning What can transformers learn in-context? a case study of simple function classes,
Reference 42
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Observation a40cf486-73a7-4784-b14d-aeb146924518 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Language models are few-shot learners,
Reference 43
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Observation 4e11ce52-274b-4e9f-8c36-54df5bec101e · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Attention is all you need,
Reference 44
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Observation 3b43ba4e-1276-4c2a-9087-9b88a4948a54 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning MLPs Learn In-Context on Regression and Classification Tasks
Reference 45
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Observation c5f3c437-970c-41ae-a235-16460a289f6a · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning An Empirical Evaluation of Generic Convolutional and Recurrent Networks for Sequence Modeling
Reference 46
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Observation 8f92447e-0273-4ca3-91e1-7e932248b633 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Hyperdimensional computing: An introduction to comput- ing in distributed representation with high-dimensional random vectors,
Reference 47
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Observation 7316977f-f8ef-4660-bb3d-6922c9fe6b9b · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Very deep convolutional neural networks for raw waveforms,
Reference 48
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Observation f248c76e-2494-4794-a3f7-03a9e0cb401f · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Speech Model Pre-training for End-to-End Spoken Language Understanding
Reference 49
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Observation 546ca876-5cf6-4e60-9290-c4a99b4a3d81 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning A high accuracy and ultra-energy-efficient zero- shot-retraining seizure detection processor,
Reference 50
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Observation ef486c4e-ca27-45d3-a0dc-7a42fe14ada8 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning In-Context Language Learning: Architectures and Algorithms
Reference 51
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Observation 74e6cc55-efb9-43df-84b0-cec8de714b0c · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Efficient Lifelong Learning with A-GEM
Reference 52
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Observation df28430a-33f9-4fce-bd6c-1a380c77a482 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Normalization matters in zero-shot learning,
Reference 53
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Observation 212bbff8-62f3-4088-af40-24d12ebf78e3 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Tf- gczsl: Task-free generalized continual zero-shot learning,
Reference 54
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Observation 3e908950-7b97-4577-8b60-9c2ecd375d41 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Lifelong zero-shot learning.,
Reference 55
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Observation c2c02d54-0503-43a7-819c-851022915b64 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning TinyTrain: Resource-Aware Task-Adaptive Sparse Training of DNNs at the Data-Scarce Edge
Reference 56
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Observation ad432ecf-b8b6-4226-8246-ff23f9128f4b · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Decision transformer: Reinforcement learning via sequence modeling,
Reference 57
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Observation 563ef21f-18d5-49d8-b666-74ecd93d82e1 · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Offline reinforcement learning as one big sequence modeling problem,
Reference 58
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Observation d5c44b6d-9163-4979-aa85-e43b93e1ef3b · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning Learning without feedback: Fixed random learning signals allow for feedforward training of deep neural networks,
Reference 59
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Observation d24b62a8-aa0e-4035-870c-de597c0a4ead · outbound
Versatile On-device Adaptation at the Edge by Unifying Few-shot, Zero-shot, Continual, and In-context Learning The Forward-Forward Algorithm: Some Preliminary Investigations
Reference 60
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No inbound Pith citation observations are available.