Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T17:02:28.603266Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 64 of 64 outbound references and 2 inbound Pith citation observations for arXiv:2507.12011.
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 2026-08-06T17:02:28.603266Z
One-hop event checks from named stored sources.
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Pith citing papers itemized under the disclosed page cap.
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A source-named dated measurement, never combined with another source.
Source: pith, observed 2026-08-05T12:53:05.813136Z
64 of 64 outbound references displayed
External citation measurements
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Observation 566b08f1-f867-4117-a5fe-8426fece6d1b · outbound
DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Towards automated 3d evaluation of water leakage on a tunnel face via improved gan and self-attention dl model,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Feature map distillation of thin nets for low-resolution object recognition,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Fine-grained learning behavior-oriented knowledge distillation for graph neural net- works,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Type of modulation identification using wavelet transform and neural network,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Wavelet transform based modula- tion classification for 5g and uav communication in multipath fading channel,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Phasma: An automatic modulation classification system based on random forest,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Cyclic spectral analysis of ofdm/oqam signals,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Automatic mod- ulation classification based on high order cumulants and hierarchical polynomial classifiers,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Minimizing long- term energy consumption in ris-assisted aav-enabled mec network,
Reference 9
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Over-the-air deep learning based radio signal classification,
Reference 10
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Observation 577e794b-35fb-4fa6-afec-d0b4a88dff3b · outbound
DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Convolutional radio mod- ulation recognition networks,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning An improved neural network pruning technology for automatic modulation classification in edge devices,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Signet: A novel deep learning framework for radio signal classification,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Contour stella image and deep learning for signal recognition in the physical layer,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Complex-valued networks for automatic modulation classification,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Adversarial attacks in modulation recognition with convolutional neural networks,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Lightweight automatic modulation classification via progres- sive differentiable architecture search,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Multi-view discriminant framework for automatic modulation open set recognition,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning MCLRL: A Multi-Domain Contrastive Learning with Reinforcement Learning Framework for Few-Shot Modulation Recognition
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning FCOS: A Two-Stage Recoverable Model Pruning Framework for Automatic Modulation Recognition
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning A generic layer pruning method for signal modulation recognition deep learning models,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Very Deep Convolutional Networks for Large-Scale Image Recognition
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Amc-net: An effective network for automatic modulation classification,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Wisig: A large-scale wifi signal dataset for receiver and channel agnostic rf fingerprinting,
Reference 24
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Trust in 5g open rans through machine learning: Rf fingerprinting on the powder pawr platform,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning A simple data augmentation method for automatic modulation recognition via mixing signals,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning An efficient data augmentation method for automatic modulation recognition from low- data imbalanced-class regime,
Reference 27
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Data augmentation with conditional gan for automatic modulation classification,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Spectrum interference- based two-level data augmentation method in deep learning for auto- matic modulation classification,
Reference 29
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Data augmentation aided automatic modulation recognition using diffusion model,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Diffusion model empowered data augmentation for automatic modulation recognition,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Radio machine learning dataset generation with gnu radio,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Smaller coresets for k-median and k- means clustering,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning A unified framework for approximating and clustering data,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Rk-core: An established methodology for exploring the hierarchical structure within datasets,
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DUSE: A Data Expansion Framework for Low-resource Automatic Modulation Recognition based on Active Learning Learning from human educational wisdom: A student-centered knowledge distillation method,
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