Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-12T11:50:04.111922Z
Paper Citation Record · LEDGER
As of 13 August 2026, this Paper Citation Record lists 36 of 36 outbound references and 0 inbound Pith citation observations for arXiv:2411.17870.
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 2026-08-12T11:50:04.111922Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-13T06:32:02.005865+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
36 of 36 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation f3a15367-d0f5-4738-bb27-1cf0d3714712 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Breast cancer detection and classification using deep learning xception algorithm
Reference 1
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Observation 6966bd65-9585-4532-8638-d62d4aac28a6 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model A fully integrated computer-aided diagnosis system for digital x-ray mammograms via deep learning detection, segmentation, and classification
Reference 2
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Observation 9d19a6e7-1343-49a8-b0e2-d37a6c789d11 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Analyzing histological images using hybrid techniques for early detection of multi-class breast cancer based on fusion features of cnn and hand- crafted
Reference 3
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Breast Tumor Classification Using EfficientNet Deep Learning Model Computer-aided diagnosis for breast cancer classification using deep neural networks and transfer learning
Reference 4
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Observation 94e4bcd5-dca0-49f5-96cb-489a97dd0115 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Going deeper: magnification-invariant approach for breast can- cer classification using histopathological images
Reference 5
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Observation 727a580e-42fb-4419-8c25-d6650a78a12f · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Fabnet: A features agglomeration-based convolutional neural network for multiscale breast cancer histopathology images classi- fication
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Breast Tumor Classification Using EfficientNet Deep Learning Model An svm approach towards breast cancer classifica- tion from h&e-stained histopathology images based on integrated features
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Breast Tumor Classification Using EfficientNet Deep Learning Model Deep learning-based assessment of tumor-associated stroma for diagnosing breast cancer in histopathology images
Reference 8
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Observation c072f6fb-1aa0-4814-a7a9-2c77b42cce25 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Drda- net: Dense residual dual-shuffle attention network for breast cancer classification using histopathological images
Reference 9
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Observation 9ea403b4-02b3-41a2-b9b0-d464ffec7ec0 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Pcct: Progressive class-center triplet loss for imbalanced medical image classification
Reference 10
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Observation 477fb3bb-01b4-47c7-9864-22c0156297d9 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Personalized retrogress-resilient federated learning toward imbalanced medical data
Reference 11
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Observation 2a997a17-b32e-491b-a258-dc2ba599e715 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Metacost: A general method for making classifiers cost-sensitive
Reference 12
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Observation bac4eee0-77e4-418b-8e7f-5ecb278a67c8 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Multiclass classification of breast cancer histopathology images using multilevel features of deep convolutional neural network
Reference 13
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Observation cab54083-0d24-4f87-a234-421731b205d1 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Breast cancer multi-classification from histopathological images with structured deep learning model
Reference 14
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Observation 72fa3a70-15a5-4c07-a23c-6889635ca56d · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Deep and machine learning techniques for medical imaging-based breast cancer: A comprehensive review
Reference 15
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Observation cac50994-7531-4ae0-b043-32b4cc9099a2 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Modality specific cbam-vggnet model for the classification of breast histopathology images via transfer learning
Reference 16
Source-reported events for the cited work
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Observation af0156d4-b9c3-4dc2-a4f0-91960d329e44 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Revolutionizing breast cancer diagnosis: A concate- nated precision through transfer learning in histopathological data analysis.Diagnostics, 14(4):422, 2024
Reference 17
Source-reported events for the cited work
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Observation b7663ce3-06f7-47da-8fd3-9de103bd8e56 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Glnet: global–local cnn’s-based informed model for detection of breast cancer categories from histopathological slides
Reference 18
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Breast Tumor Classification Using EfficientNet Deep Learning Model Imagenet classification with deep convolutional neural networks
Reference 19
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Observation b748c012-aafe-48f5-a9d3-9aa5efc5d6be · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model A clinical decision support tool to detect invasive ductal carcinoma in histopathological images using support vector machines, na ¨ ıve-bayes, and k-nearest neighbor classifiers
Reference 20
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Observation 1e7e076c-e90d-46e8-b7ba-f10763826607 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Breast cancer diagnosis from histopathology images using deep neural network and xgboost
Reference 21
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Observation 2104187c-8e5d-48c7-988e-041a18d13ff4 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Classification of breast cancer histopathological images using discriminative patches screened by generative adversarial networks
Reference 22
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Observation e77bebe3-5a61-410c-b0f1-78b0c35de7f0 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Cancer treatment and survivorship statistics, 2022
Reference 23
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Observation b9de3d4b-37d3-4528-a761-e158d96d75fd · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Deep learning-based breast cancer classification through medical imaging modalities: state of the art and research challenges
Reference 24
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Breast Tumor Classification Using EfficientNet Deep Learning Model Multi-class breast cancer classification using deep learning convolutional neural network
Reference 25
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Observation 18baf6aa-25d9-4791-9af7-8f828610ad0c · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Classification of breast cancer histology images using alexnet
Reference 26
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Observation a9b40fa7-476a-4819-8168-29cf80f1ac06 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Who position paper on mammography screening
Reference 27
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Observation a8e059df-4f7c-4ef6-bc93-dd6689af86c5 · outbound
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Reference 28
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Observation 66abd9eb-943b-41c1-b414-03ad793d948f · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Detection of breast cancer using histopathological image classification dataset with deep learning techniques
Reference 29
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Observation 61db2744-8f2f-4396-80f9-06f16b017be0 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Histopathological classi- fication of breast cancer images using a multi-scale input and multi-feature network
Reference 30
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Observation a968bb1d-8aa1-46c2-9eec-66bf369792cc · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Very Deep Convolutional Networks for Large-Scale Image Recognition
Reference 31
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Observation 95eb5700-785c-4bad-aa05-fcfa2aecdbe6 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model A dataset for breast cancer histopathological image classification
Reference 32
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Breast Tumor Classification Using EfficientNet Deep Learning Model Classification of benign and malignant subtypes of breast cancer histopathology imaging using hybrid cnn-lstm based transfer learning
Reference 33
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Observation c90ed930-a8ad-4708-b6fb-b70fb56ad189 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Efficientnet: Rethinking model scaling for convolutional neural networks
Reference 34
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Observation d3026b24-8dcf-412a-97f5-0e1f27b52044 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model Secs: An effective cnn joint construction strategy for breast cancer histopathological image classification
Reference 35
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Observation e29d00c0-035d-4ba7-9381-27e01e2c73d2 · outbound
Breast Tumor Classification Using EfficientNet Deep Learning Model De-enhancing the dynamic contrast-enhanced breast mri for robust registration
Reference 36
Source-reported events for the cited work
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No inbound Pith citation observations are available.