Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T04:38:09.530568Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 100 of 127 outbound references and 0 inbound Pith citation observations for arXiv:2506.10142.
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 2026-08-07T04:38:09.530568Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+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
100 of 127 outbound references displayed
External citation measurements
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Observation 304f034f-919f-40b7-b7a3-910005448904 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Exciting new advances in neuro-oncology: the avenue to a cure for malignant glioma,
Reference 1
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Observation 657804df-0733-46cd-9dd4-58bca1c0adee · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective The multimodal brain tumor image segmentation benchmark (brats),
Reference 2
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Observation 42d79106-1f26-47d5-9a70-b6b364bf3ec2 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Brain tumor seg- mentation using convolutional neural networks in mri images,
Reference 3
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Observation fa890df0-aed6-42eb-a198-4768d939dd1a · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Evidence and context of use for contrast enhancement as a surrogate of disease burden and treatment response in malignant glioma,
Reference 4
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Observation b32592e3-75cb-4ba4-bfc1-b00d37707857 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Patterns of tumor contrast enhancement predict the prognosis of anaplastic gliomas with idh1 mutation,
Reference 5
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Unavailable: canonical work link unavailable.
Observation 58a098d5-16b9-4e0e-9e4d-3727f589da59 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Mri features predict p53 status in lower-grade gliomas via a machine-learning approach,
Reference 6
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Unavailable: canonical work link unavailable.
Observation ef18dd40-a41b-4548-a4d5-12ce8546fafe · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Texture analysis in brain tumor mr imaging,
Reference 7
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Observation 4b2aacfe-c8c1-4ea6-a83a-29b61dbbe352 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Texture analysis: a review of neuro- logic mr imaging applications,
Reference 8
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Observation 73109bde-a97a-40bb-94ef-57bab7b1c090 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Classification of brain tumor type and grade using mri texture and shape in a machine learning scheme,
Reference 9
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Unavailable: canonical work link unavailable.
Observation 2a904df8-7de4-43bc-b16f-1b3cd3db460b · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Differentiating high- grade gliomas from brain metastases at magnetic resonance: the role of texture analysis of the peritumoral zone,
Reference 10
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Unavailable: canonical work link unavailable.
Observation 0198061d-87a3-4da2-afe7-1d7b354575d8 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Quantitative metric for mr brain tumour grade classification using sample space density measure of analytic intrinsic mode function representation,
Reference 11
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Observation 5023e32e-e3dc-4b6a-b0b2-4103b5159a9a · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Classification and segmentation of brain tumor using texture analysis,
Reference 12
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Observation 67e43ac4-16f0-411c-bb75-ce06111a1cce · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Assessment of tumor heterogeneity: an emerging imaging tool for clinical practice?
Reference 13
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Unavailable: canonical work link unavailable.
Observation 33f272c5-72a6-4c2a-879d-f37e7e921a61 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Texture analysis in cerebral gliomas: a review of the literature,
Reference 14
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Unavailable: canonical work link unavailable.
Observation 8b5240b4-a6ca-4255-90de-4b5dd197cb73 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Assessment of multiphasic contrast-enhanced mr textures in differentiating small renal mass subtypes,
Reference 15
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Unavailable: canonical work link unavailable.
Observation 1c5045ae-a979-438d-87e1-7a2e0d33735e · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Diagnostic performance of texture analysis on mri in grading cerebral gliomas,
Reference 16
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Unavailable: canonical work link unavailable.
Observation f883ef69-efdb-4475-b593-52c1111e2d79 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Characterizing brain tumor regions using texture analysis in magnetic resonance imaging,
Reference 17
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Observation 1d6f3c68-2cb9-4f00-9930-a326b8aa1e11 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective A survey on deep learning in medical image analysis,
Reference 18
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Unavailable: canonical work link unavailable.
Observation 54d27548-1362-46da-8ad2-e9fa99b84745 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Fda: Fourier domain adaptation for semantic segmentation,
Reference 19
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Unavailable: canonical work link unavailable.
Observation 74dffa3a-b3ca-42d4-9f9a-82a62341c56a · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Deep learning based brain tumor segmentation: a survey,
Reference 20
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 1f2c3305-ba6d-4835-87f5-64fa9a52ab99 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Brain tumor target volume determination for radiation treatment planning through automated mri segmentation,
Reference 21
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Observation d35ab58c-b556-483a-a774-00e48520ca5e · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Baseline pretreatment contrast enhancing tumor volume including cen- tral necrosis is a prognostic factor in recurrent glioblastoma: evidence from single and multicenter trials,
Reference 22
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Unavailable: canonical work link unavailable.
Observation f3c32911-f29d-4711-9172-51e6fcb982b8 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Com- parison of wavelet transformations to enhance convolutional neural network performance in brain tumor segmentation,
Reference 23
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Observation b9dc4a09-2419-46fb-bc94-50a54725ed3f · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Medical image segmentation based on frequency domain decomposition svd linear attention,
Reference 24
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Unavailable: canonical work link unavailable.
Observation a0883a8b-498c-4574-8895-e5e04ab780cb · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Prior wavelet knowledge for multi-modal medical image segmentation using a lightweight neural network with attention guided features,
Reference 25
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Unavailable: canonical work link unavailable.
Observation cfc408c1-9280-4b60-9d53-20bf24fc4438 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Spectral U-Net: Enhancing Medical Image Segmentation via Spectral Decomposition
Reference 26
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation f428d09d-5566-4167-9167-7c549b234a21 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Dual-tree complex wavelet pooling and attention-based modified u-net architecture for automated breast thermogram segmentation and classification,
Reference 27
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Unavailable: canonical work link unavailable.
Observation 2cc98b12-2e83-4d9a-b982-31e23483a32b · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Optimal deep learning architecture for automated segmentation of cysts in oct images using x-let transforms,
Reference 28
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Unavailable: canonical work link unavailable.
Observation 446d9ca8-987e-49cb-b9eb-94218941b428 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Wavelet u-net++ for accurate lung nodule segmentation in ct scans: Improving early detection and diagnosis of lung cancer,
Reference 29
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Unavailable: canonical work link unavailable.
Observation 543679ab-85bb-4d81-82a0-7921a5845b45 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Wranet: wavelet integrated residual attention u-net network for medical image segmentation,
Reference 30
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Unavailable: canonical work link unavailable.
Observation 93eb6486-c680-4ca6-a2d0-9baeac72f735 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective A dual-tree complex wavelet transform based convolutional neural network for hu- man thyroid medical image segmentation,
Reference 31
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Unavailable: canonical work link unavailable.
Observation 4f8a1052-685c-42b0-9c57-596eb9d2abfb · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Medical im- age fusion based on convolutional neural networks and non-subsampled contourlet transform,
Reference 32
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Unavailable: canonical work link unavailable.
Observation cb55a300-e76e-45cf-b674-d7d787576867 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective A deep transfer learning based architecture for brain tumor classification using mr images,
Reference 33
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Unavailable: canonical work link unavailable.
Observation 694511e5-b196-4c6e-8121-85767cfa5175 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Brain tumor classification using meta-heuristic optimized convolutional neural networks,
Reference 34
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Unavailable: canonical work link unavailable.
Observation 5bdd4c34-4ee1-4b4a-baa8-ae7e7e091871 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Multimodal brain tumor detection and classification using deep saliency map and improved dragonfly optimization algorithm,
Reference 35
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Observation 8dd89ba0-31cd-4bc4-8874-e139768c8f18 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective An efficient approach for the detection of brain tumor using fuzzy logic and u-net cnn classification,
Reference 36
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Unavailable: canonical work link unavailable.
Observation 13432fe8-b2d8-460f-9ec6-08f00502e170 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Glioma/glioblastoma detection in brain mri using pre-trained deep-learning scheme,
Reference 37
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Unavailable: canonical work link unavailable.
Observation 2128fdee-65bc-41c8-9c26-517cd59af642 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Dsleepnet: Disentanglement learning for personal attribute-agnostic three-stage sleep classification using wearable sensing data,
Reference 38
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Unavailable: canonical work link unavailable.
Observation 2a3b8458-b823-400c-8142-a1871528e5da · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Sid-nerf: Few-shot nerf based on scene information distribution,
Reference 39
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Unavailable: canonical work link unavailable.
Observation 379d6823-8ffd-471a-bfb6-7b1d25e1a68a · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Depth-aware endo- scopic video inpainting,
Reference 40
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Unavailable: canonical work link unavailable.
Observation d74d71fb-d290-45f9-8404-21370061ba27 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Rules for expectation: Learning to generate rules via social environment modeling,
Reference 41
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Unavailable: canonical work link unavailable.
Observation 3161d9a1-a420-432c-929a-c9efb5cf7751 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Sentinel- guided zero-shot learning: A collaborative paradigm without real data exposure,
Reference 42
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Unavailable: canonical work link unavailable.
Observation 96eb1c3e-3e7d-4377-9532-94286c82d06e · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Rethinking Score Distilling Sampling for 3D Editing and Generation
Reference 43
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Unavailable: canonical work link unavailable.
Observation 15d014f3-9cb6-4942-8d8a-6488737d39c1 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Laser: Efficient language-guided segmentation in neural radiance fields,
Reference 44
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Unavailable: canonical work link unavailable.
Observation 14552371-5c71-46ae-a9d0-ef9ecc1e6767 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Dynamic unary convolution in transformers,
Reference 45
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Unavailable: canonical work link unavailable.
Observation 2cf57fe5-3830-4276-8166-19806318a545 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Parameter efficient fine-tuning for multi-modal generative vision models with m¨obius-inspired transformation,
Reference 46
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Unavailable: canonical work link unavailable.
Observation e9c3155b-48e8-4ba2-a8ee-640d1efb8fd7 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Unified spatial-temporal edge-enhanced graph networks for pedestrian trajec- tory prediction,
Reference 47
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Unavailable: canonical work link unavailable.
Observation b62619e4-29e3-4334-8e99-004018b8995e · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Bp-sgcn: Be- havioral pseudo-label informed sparse graph convolution network for pedestrian and heterogeneous trajectory prediction,
Reference 48
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Unavailable: canonical work link unavailable.
Observation 1e0de972-0b51-484d-ab9d-ef9a6b8bbbb4 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective On the Design Fundamentals of Diffusion Models: A Survey
Reference 49
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Unavailable: canonical work link unavailable.
Observation 08dd154c-a0d4-4712-9096-e1ecfa873280 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Hint: High- quality inpainting transformer with mask-aware encoding and enhanced attention,
Reference 50
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Unavailable: canonical work link unavailable.
Observation 471a7f66-ffe2-4bad-9236-961e7ae2cf7c · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective 3d u-net: learning dense volumetric segmentation from sparse annotation,
Reference 51
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 12e37b74-f0cb-48b1-a14c-17e576e7cca0 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective nnu-net: a self-configuring method for deep learning-based biomedical image segmentation,
Reference 52
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Unavailable: canonical work link unavailable.
Observation 10622fbf-4b88-4ede-a9fe-9757d9967366 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Unetr: Transformers for 3d medical image segmentation,
Reference 53
Source-reported events for the cited work
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Observation 05e9662b-c3a8-40a2-a70c-86024261da84 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Attention U-Net: Learning Where to Look for the Pancreas
Reference 54
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Observation 65e8d082-e5f4-40d1-a734-653c573baef3 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Road extraction by deep residual u-net,
Reference 55
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Observation 0f295dc9-05db-4a78-a96d-5b5b60b006f2 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Unetr++: delving into efficient and accurate 3d medical image segmentation,
Reference 56
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Observation a17cbbc8-6a06-4a93-8669-e0d21db5fbe7 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Two-stage cascaded u-net: 1st place solution to brats challenge 2019 segmentation task,
Reference 57
Source-reported events for the cited work
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Observation c0b852b5-2140-48f1-89bd-0e1e2304af4b · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Sgeresu- net for brain tumor segmentation,
Reference 58
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 34853e17-1ca3-4cfc-a1a7-f0d5190c0050 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Modality-adaptive feature interaction for brain tumor segmentation with missing modalities,
Reference 59
Source-reported events for the cited work
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Observation 3f203293-4dc0-4b68-b8ab-c6e588a55f1e · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective TransUNet: Transformers Make Strong Encoders for Medical Image Segmentation
Reference 60
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Observation 25c19f64-d482-44cf-83c0-4bbc06c2a857 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective An Image is Worth 16x16 Words: Transformers for Image Recognition at Scale
Reference 61
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Unavailable: canonical work link unavailable.
Observation 93d82cbe-21a7-431b-8938-20fa96c55339 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Hnf-netv2 for brain tumor segmentation using multi-modal mr imaging,
Reference 62
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Observation 118d2909-c6a2-4cc6-a75e-f676d5697ac4 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Sa-lut-nets: learning sample-adaptive intensity lookup tables for brain tumor segmentation,
Reference 63
Source-reported events for the cited work
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Observation 5f8d69e3-f0b8-472e-8d31-7f8982c68eb9 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Medical im- age segmentation via single-source domain generalization with random amplitude spectrum synthesis,
Reference 64
Source-reported events for the cited work
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Observation 5d03e33a-97b5-44b6-a2f4-0f5976ab7799 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective A review on brain tumor segmentation based on deep learning methods with federated learning techniques,
Reference 65
Source-reported events for the cited work
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Observation ab121a0d-7bc7-45ba-8d4f-33831ea23a99 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Innovative multi-class segmenta- tion for brain tumor mri using noise diffusion probability models and enhancing tumor boundary recognition,
Reference 66
Source-reported events for the cited work
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Observation e011c64d-6fd9-4404-80de-a3873b37752b · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Learning in the frequency domain,
Reference 67
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Observation 85301623-ebb1-4925-98b1-721c6109991a · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Discrete cosin trans- former: Image modeling from frequency domain,
Reference 68
Source-reported events for the cited work
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Observation a19db576-cd9e-4a68-9075-b91c19b33c0a · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Improving Model Generalization by On-manifold Adversarial Augmentation in the Frequency Domain
Reference 69
Source-reported events for the cited work
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Observation edfc23b5-104a-4868-a158-1227fd91294c · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Wavelet-Based Image Tokenizer for Vision Transformers
Reference 70
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Observation 45fb8f97-67e1-4572-806f-0bbcdf9f82b5 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Focal frequency loss for image reconstruction and synthesis,
Reference 71
Source-reported events for the cited work
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Observation 991563e6-d17b-497a-8e14-cd9f8b8f839c · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Wavelet diffusion models are fast and scalable image generators,
Reference 72
Source-reported events for the cited work
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Observation 90a3565b-912c-4b0f-a1ee-5775ef8f379b · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Fourier space losses for efficient perceptual image super-resolution,
Reference 73
Source-reported events for the cited work
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Observation 910f2eee-9dfe-4da2-a61c-30479d69a63a · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Spectral bayesian uncertainty for image super-resolution,
Reference 74
Source-reported events for the cited work
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Observation ac7f681c-7a64-4e03-a5fd-a494cb58a7b3 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Sea ice change de- tection in sar images based on convolutional-wavelet neural networks,
Reference 75
Source-reported events for the cited work
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Observation 468bacfe-9d18-445b-b207-55d4738a9dec · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Xnet: Wavelet- based low and high frequency fusion networks for fully-and semi- supervised semantic segmentation of biomedical images,
Reference 76
Source-reported events for the cited work
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Observation da7b5738-d1ba-4f2c-8079-b216d8713ca0 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Aerial lanenet: Lane-marking semantic segmentation in aerial imagery using wavelet- enhanced cost-sensitive symmetric fully convolutional neural net- works,
Reference 77
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation e36b5573-7951-4ffb-9ede-97d31dc40171 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Structural and statistical texture knowledge distillation and learning for segmentation,
Reference 78
Source-reported events for the cited work
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Observation e32eb825-f0c6-4db4-9bbc-0f6235f5d9aa · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective A new contourlet transform with sharp frequency localization,
Reference 79
Source-reported events for the cited work
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Observation 40941e56-3444-4378-aee3-343a7c44d8fd · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective The nonsubsampled con- tourlet transform: theory, design, and applications,
Reference 80
Source-reported events for the cited work
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Observation ffd6bf26-a40c-404d-8c4e-d6a57b549901 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Auto- matic multi-organ segmentation of prostate magnetic resonance images using watershed and nonsubsampled contourlet transform,
Reference 81
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 0a34249e-aa45-41ab-b305-a1c54a126b00 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Scheme for unsupervised colour–texture image segmentation using neutrosophic set and non- subsampled contourlet transform,
Reference 82
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation d3074fa8-e586-4cde-a96b-dddd9c33d61b · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Brain mr image segmentation by modified active contours and contourlet transform
Reference 83
Source-reported events for the cited work
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Observation 2ff2f37e-429d-4301-90ca-f4af52e0bffd · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Edge detection methods and filters used on digital image processing,
Reference 84
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Observation cecf4169-0a5a-4f17-a4ba-be2441e50087 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective A comprehensive survey of continual learning: Theory, method and application,
Reference 85
Source-reported events for the cited work
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Observation b8319b73-5f5b-4373-b702-2372675a6e6e · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Prior attention network for multi-lesion segmentation in medical images,
Reference 86
Source-reported events for the cited work
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Observation 1c1c56f3-e19b-4e51-9de7-1825830d8ea9 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Non-separable bidimensional wavelet bases,
Reference 87
Source-reported events for the cited work
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Observation eec245a3-24e6-471f-b1af-df72fd42d5df · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective V-net: Fully convolutional neural networks for volumetric medical image segmentation,
Reference 88
Source-reported events for the cited work
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Observation 9f9f32e6-8455-415d-b3da-3e1b120ceaf9 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective The ASNR-MICCAI Brain Tumor Segmentation (BraTS) Challenge 2023: Intracranial Meningioma
Reference 89
Source-reported events for the cited work
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Observation 1dc5a5bf-2495-4ca0-9bd8-47d884b56561 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective The medical segmentation decathlon,
Reference 90
Source-reported events for the cited work
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Observation 476dd9f6-8c1d-4262-aa35-c4ef54c64c1a · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Advancing the cancer genome atlas glioma mri collections with expert segmentation labels and radiomic features,
Reference 91
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Observation d62a963b-491d-4a11-a93b-43c6cb8ff5ff · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Identifying the Best Machine Learning Algorithms for Brain Tumor Segmentation, Progression Assessment, and Overall Survival Prediction in the BRATS Challenge
Reference 92
Source-reported events for the cited work
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Observation 4999f7ea-9360-4529-8e68-5473c93d712d · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Delving deep into rectifiers: Surpassing human-level performance on imagenet classification,
Reference 93
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Observation ba16d7a8-fb40-4449-a122-84a1f54cee92 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Inter-slice context residual learning for 3d medical image segmentation,
Reference 94
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Observation a20097ad-3a13-4ff1-bea7-597d3a97ae00 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Transbts: multimodal brain tumor segmentation using transformer, medical image computing and computer assisted intervention-miccai 2021,
Reference 95
Source-reported events for the cited work
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Observation 12e785fb-9b4c-4964-b189-8bde66767e60 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective A robust volumetric transformer for accurate 3d tumor segmentation,
Reference 96
Source-reported events for the cited work
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Observation 5c579db0-3d0b-4e71-8fa8-23ce611a5884 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Shape-scale co- awareness network for 3d brain tumor segmentation,
Reference 97
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 3cbef443-aa0f-4518-b3fb-e79e38aea52e · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Rethinking semantic segmentation from a sequence-to-sequence perspective with transformers,
Reference 98
Source-reported events for the cited work
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Observation f9825aad-23e8-4f6b-9356-d8596b25aaaa · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective Cotr: Efficiently bridging cnn and transformer for 3d medical image segmentation,
Reference 99
Source-reported events for the cited work
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Observation 1d1158a5-e66c-4fbf-8b57-ffbb8cb06ae8 · outbound
Rethinking Brain Tumor Segmentation from the Frequency Domain Perspective nnFormer: Interleaved Transformer for Volumetric Segmentation
Reference 100
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No inbound Pith citation observations are available.