Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-07-14T04:15:55.752679Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 45 of 45 outbound references and 1 inbound Pith citation observation for arXiv:2607.11630.
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 2026-07-14T04:15:55.752679Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-06T06:34:29.942622+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-07-14T04:15:55.752679Z
A source-named dated measurement, never combined with another source.
Source: cited_works
45 of 45 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 0afe5fdd-1714-4a9f-96a4-809daecddcbc · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Interactive Audiovisual Digital Twins of Performance Venues
Reference 1
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Observation a741e0e3-71d4-4356-8a6a-8ed0288d2b0a · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation
Reference 2
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Observation 82298051-0556-4be9-9cc8-c6234c878a44 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Full fine-tuning With full fine-tuning all parameters of the pretrained SE model are updated during SVS training
Reference 3
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Observation 9beebe45-b5a8-4da2-9d9a-ea8188f0c59e · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Pretraining and adaptation All models in this work operate at a sampling rate of48 kHzand are initialized from pretrained checkpoints
Reference 4
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Observation 104ef5cf-f3c8-458a-8cce-bf3fe5be53fe · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation The SGM, which utilizes a noise-conditional score network (NCSN++) [22] as its backbone, was pretrained for SE on the EARS-WHAM dataset [23] (approx.87 h)
Reference 5
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Observation 1942b4a6-2258-4d32-b214-d2717e6b1963 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation from scratch
Reference 6
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Observation ecec330c-f292-4116-8417-c74c1ef3dcac · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation While full fine-tuning achieves the best SVS performance, our results show that LoRA enables domain adaptation while preserving the original model capabilities
Reference 7
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Observation 4c5e8c2e-6bba-49ea-8f5d-15befad2f5d9 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation INTERSPEECH 2021 deep noise suppression challenge,
Reference 8
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Observation da0f9293-1f63-4442-aed1-af5aa45a6746 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation ICASSP 2022 deep noise suppression challenge,
Reference 9
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Observation 4474c44a-4327-4cd3-997d-a0a02280ef59 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation ICASSP 2023 deep noise suppression challenge,
Reference 10
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Observation fceb123f-e7bc-4d9f-93d7-c5668c71c019 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation URGENT challenge: Universality, robustness, and generalizability for speech en- hancement,
Reference 11
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Observation e1d4e112-15d8-4046-a1df-3c1d429a2f80 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Speech enhancement and dereverberation with diffusion-based gen- erative models,
Reference 12
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Observation d9138df4-2fdc-4057-b71e-9295cf4294f8 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation StoRM: A diffusion-based stochastic regeneration model for speech enhance- ment and dereverberation,
Reference 13
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Observation 88d486f0-c140-447f-bf1e-29577ee82c4e · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Universal score- based speech enhancement with high content preservation,
Reference 14
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Observation c4c21d0e-358c-4aec-8269-d60d1afd6bfb · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Diffusion-based signal refiner for speech enhancement and separa- tion,
Reference 15
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Observation a87fc1f7-b28b-4d0d-b4c4-3c5b5e758271 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation The MUSDB18 corpus for music separation,
Reference 16
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Observation 548d57f5-8fe9-4b38-8004-1e818303ffa4 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation MoisesDB: A dataset for source separation beyond 4-stems,
Reference 17
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Observation bf0cdf9a-fdae-4920-832b-abc098e6d83a · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation High fidelity speech enhancement with band-split RNN,
Reference 18
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Observation 97d50998-865e-4df1-ae34-7b320b314446 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Music source separation with band-split RNN,
Reference 19
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Observation ff03bd4b-ae43-494e-936f-ef8369f5e8be · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Towards reliable objective evaluation metrics for generative singing voice sepa- ration models,
Reference 20
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Observation 58601b24-6f13-455b-a5b4-057e57401fa6 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Diff-VS: Efficient audio-aware diffusion u-net for vocals separation,
Reference 21
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Observation edd4ceb4-9a5f-4677-a528-40c97128c7f5 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Music source restora- tion,
Reference 22
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Unavailable: canonical work link unavailable.
Observation 1ad52ee8-51ac-46af-b26c-1731d0918f26 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Overcoming catastrophic forgetting in neural networks,
Reference 23
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Unavailable: canonical work link unavailable.
Observation 23a09c2e-f0ea-4667-a604-86100de87990 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation SERIL: Noise adaptive speech enhancement using regularization-based incre- mental learning,
Reference 24
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Observation 43b71d03-d34b-432f-87ab-d57eb2d330dc · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation LoRA: Low-rank adaptation of large language models,
Reference 25
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Observation 56b44a23-97ec-4b6e-9e0a-29ffcc1ab5b9 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Parameter- efficient transfer learning of audio spectrogram transformers,
Reference 26
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Unavailable: canonical work link unavailable.
Observation 45a48e11-c050-4a55-96f1-5681d73f10ef · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Improving anomalous sound detection via low-rank adaptation fine- tuning of pre-trained audio models,
Reference 27
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Unavailable: canonical work link unavailable.
Observation f3d3ecfc-cade-482f-a8b1-6f73da1ecd2f · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Mel-band-roformer-vocal-model,
Reference 28
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Unavailable: canonical work link unavailable.
Observation 3e8cb96f-ce30-4d58-a659-f7db688a16de · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Score-based generative modeling through stochastic differential equations,
Reference 29
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Observation 9ddf2be8-32f4-4714-8b88-68c1c5320f2c · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation EARS: An anechoic fullband speech dataset benchmarked for speech enhancement and dereverberation,
Reference 30
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Unavailable: canonical work link unavailable.
Observation a714549f-4d88-4be3-8464-d672434e240a · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation MSRBench: A benchmarking dataset for music source restoration,
Reference 31
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Unavailable: canonical work link unavailable.
Observation 1861a3bb-29df-4a8a-b9f0-e3569fcaab11 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation EBU R 128: Loudness normalisation and permitted maximum level of audio signals,
Reference 32
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Unavailable: canonical work link unavailable.
Observation 25baf78e-ef1a-412d-91c3-e786aa233765 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Generative modeling by estimating gradients of the data distribution,
Reference 33
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Unavailable: canonical work link unavailable.
Observation 5929d63f-5b52-4de8-8487-2f741987b688 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation PEFT: State-of-the-art parameter-efficient fine- tuning methods,
Reference 34
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Observation 0ef97e39-e7b1-43b5-bd39-1cae8cfee359 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Delving deep into rectifiers: Sur- passing human-level performance on imagenet classification,
Reference 35
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Observation e7c35e37-7596-4aa7-bcba-a248c1f3f6d0 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Performance measurement in blind audio source separation,
Reference 36
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Observation 52c31c02-a711-4654-936f-6fed72920180 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation TorchMetrics - measuring reproducibility in PyTorch,
Reference 37
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Observation 066213b2-69f4-4506-a21c-5dccd42b0bfc · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation MERT: Acous- tic music understanding model with large-scale self-supervised train- ing,
Reference 38
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Observation c8f71c21-3886-42a8-be90-d73134c7e33f · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation auraloss: Audio focused loss functions in PyTorch,
Reference 39
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Observation 21056434-f1a2-4b4c-ab62-0f090cbbf0a8 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Embedding-based intrusive evaluation metrics for musical source separation using MERT representations,
Reference 40
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Unavailable: canonical work link unavailable.
Observation 50953a67-6f17-486c-b51b-075baa9ceddd · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation SDR – Half- baked or well done?
Reference 41
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Observation 74dd1257-64b8-4722-a0f2-288ba9dcec46 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Perceptual evaluation of speech quality (pesq)-a new method for speech quality assessment of telephone networks and codecs,
Reference 42
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Unavailable: canonical work link unavailable.
Observation d48a0466-8710-46ed-b4b2-622f6bf62a2c · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Distillation and pruning for scalable self- supervised representation-based speech quality assessment,
Reference 43
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Observation 5e9475b8-0c10-456f-971e-ca7acfb6f5e3 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Mel-RoFormer for vocal separa- tion and vocal melody transcription,
Reference 44
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Observation 659ba9bf-fb80-4388-9367-80345d891cb7 · outbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation ptflops: A flops counting tool for neural networks in pytorch framework,
Reference 45
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Observation a741e0e3-71d4-4356-8a6a-8ed0288d2b0a · inbound
Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation Teaching Speech Enhancement Models to Sing: Domain Adaptation from Speech Enhancement to Singing Voice Separation
Reference 2
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