Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T11:15:55.725638Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 68 of 68 outbound references and 0 inbound Pith citation observations for arXiv:2507.23033.
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 2026-08-06T11:15:55.725638Z
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
A source-named dated measurement, never combined with another source.
Source: cited_works
68 of 68 outbound references displayed
External citation measurements
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Observation 8100a02f-8fe8-4d1e-aa58-ee99ee3d5fe3 · outbound
Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Mip-nerf: A multiscale representation for anti-aliasingneuralradiancefields,in:ProceedingsoftheIEEE/CVF international conference on computer vision, pp
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields How far can we compress instant-ngp-based nerf?, in: Proceedings of the IEEE/CVF ConferenceonComputerVisionandPatternRecognition,pp.20321– 20330
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Candeepneuralnetworksbeconverted to ultra low-latency spiking neural networks?, in: 2022 Design, Au- tomation & Test in Europe Conference & Exhibition (DATE), IEEE
Reference 8
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Auditory perception architecturewithspikingneuralnetworkandimplementationonfpga
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Observation 79cda663-bdfe-4b56-8900-f1be1343eab1 · outbound
Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Temporal Efficient Training of Spiking Neural Network via Gradient Re-weighting
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Spikingjelly: An open-source machinelearninginfrastructureplatformforspike-basedintelligence
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Plenoxels: Radiance fields without neural networks,in:ProceedingsoftheIEEE/CVFConferenceonComputer Vision and Pattern Recognition, pp
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Sharpening Your Density Fields: Spiking Neuron Aided Fast Geometry Learning
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Spike-nerf: Neural radiance field based on spike camera, in: 2024 IEEE International Conference on Multimedia and Expo (ICME), IEEE
Reference 18
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields G-NeLF: Memory- and Data-Efficient Hybrid Neural Light Field for Novel View Synthesis
Reference 20
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Spikingneuralnetworksonfpga:A survey of methodologies and recent advancements
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Reference 22
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Unleashing the potential of spiking neural networks with dynamic confidence, in: Proceedings of the IEEE/CVF International Conference on Computer Vision, pp
Reference 23
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Reference 24
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Input-aware dynamic timestep spiking neural networks for efficient in-memory computing, in: 2023 60th ACM/IEEE Design Automation Conference (DAC), IEEE
Reference 25
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Spiking-nerf: Spiking neural network for energy-efficient neural rendering
Reference 26
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Im-lif: Improved neuronal dynamics with attention mechanism for direct training deep spiking neural network
Reference 27
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Spiking nerf: Repre- senting the real-world geometry by a discontinuous representation, in: Proceedings of the AAAI Conference on Artificial Intelligence, pp
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Teas: Exploiting spiking activity for temporal-wise adaptive spiking neural networks, in: 2024 29th Asia and South Pacific Design Automation Conference (ASP-DAC), IEEE
Reference 29
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Content-aware radi- ance fields: Aligning model complexity with scene intricacy through learnedbitwidthquantization,in:EuropeanConferenceonComputer Vision, Springer
Reference 30
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Spalen: Sp arsity a ware l oad balancing inference e ngine for neural network
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Observation 21c337cb-def2-4a70-b16c-7cf2e22eda19 · outbound
Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Local light field fusion: Practicalviewsynthesiswithprescriptivesamplingguidelines
Reference 32
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Nerf: Representing scenes as neural radiance fields for view synthesis
Reference 33
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Instant neural graphics primitives with a multiresolution hash encoding
Reference 34
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Surrogate gradient learn- inginspikingneuralnetworks:Bringingthepowerofgradient-based optimization to spiking neural networks
Reference 35
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Self-architecturalknowledgedistillationfor spikingneuralnetworks
Reference 36
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Observation 22d98be2-ce6f-4b7a-949b-5cfc3198313d · outbound
Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Exploring neuromorphic computing based on spiking neural networks: Algorithms to hardware
Reference 37
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Observation c571021d-ab16-4d68-9904-bb43e1b915d1 · outbound
Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Binary opacity grids:Capturingfinegeometricdetailformesh-basedviewsynthesis
Reference 38
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Spikingresformer:bridgingresnetand vision transformer in spiking neural networks, in: Proceedings of the IEEE/CVFConferenceonComputerVisionandPatternRecognition, pp
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Reference 40
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Reference 41
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Torch-ngp: a pytorch implementation of instant-ngp
Reference 44
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Reference 45
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Reference 46
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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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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Towards efficient and accurate spiking neural networks via adaptive bit allocation
Reference 53
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Glif: A unified gated leaky integrate-and-fire neuron for spiking neural networks
Reference 54
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields IEEE Transactions on Visualization and Computer Graphics 29, 5124–5136
Reference 55
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Efficient Logit-based Knowledge Distillation of Deep Spiking Neural Networks for Full-Range Timestep Deployment
Reference 56
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Reference 57
Source-reported events for the cited work
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Tc-lif: A two-compartment spiking neuron model for long-term sequential modelling, in: Proceedings of the AAAI conference on artificial intelligence, pp
Reference 58
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Accurate and efficient time-domain classification with adaptive spiking recurrent neural networks
Reference 59
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Reference 60
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Reference 61
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Gradient aware adaptive quantization: Locally uniform quantization with learnable clipping thresholds for globally non-uniform weights
Reference 62
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Reference 63
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Adaptive Time-step Training for Enhancing Spike-Based Neural Radiance Fields Self-Distillation Learning Based on Temporal-Spatial Consistency for Spiking Neural Networks
Reference 64
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Reference 67
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Reference 2021
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Reference 2022
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Reference 2023
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No inbound Pith citation observations are available.