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Paper Citation Record · LEDGER

Mapping the Landscape of Generative AI in Network Monitoring and Management

As of 22 August 2026, this Paper Citation Record lists 100 of 190 outbound references and 0 inbound Pith citation observations for arXiv:2502.08576.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2502.08576 v2

Coverage vector

measured 100 of 190 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-08T04:38:57.397561Z

measured 100 of 100 standing notices

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Source: scholarly_work_events, retraction_status_cache, observed 2026-08-21T06:32:19.484+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Reference resolution

100 of 190 outbound references displayed

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  • verified fuzzy0
  • unresolved97
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Outbound references

Observation adecc1e4-e071-4593-91df-869726a422e2 · outbound

This paper cites Harnessing the power of llms in practice: A survey on chatgpt and beyond,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Harnessing the power of llms in practice: A survey on chatgpt and beyond,

Reference 1

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Observation 49c63361-c448-4d4c-abd0-1f4838b151cc · outbound

This paper cites Generative Artificial Intelligence (AI) Market Size Worldwide from 2020 to 2030,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Generative Artificial Intelligence (AI) Market Size Worldwide from 2020 to 2030,

Reference 2

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Observation eb6e042c-4218-4f61-b156-c363fae954c4 · outbound

This paper cites When Digital Twin Meets Generative AI: Intelligent Closed-Loop Network Management.

Mapping the Landscape of Generative AI in Network Monitoring and Management When Digital Twin Meets Generative AI: Intelligent Closed-Loop Network Management

Reference 3

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Observation 6b15b3b3-29b1-4bcf-8a71-cb25ec03c4e3 · outbound

This paper cites The Age of Generative AI and AI-generated Everything,.

Mapping the Landscape of Generative AI in Network Monitoring and Management The Age of Generative AI and AI-generated Everything,

Reference 4

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Observation 0f0b71eb-9a51-42a6-b264-6ca355153f2a · outbound

This paper cites Technology readiness levels for machine learning systems,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Technology readiness levels for machine learning systems,

Reference 5

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Observation 6c1d5181-d815-4cc1-8fd8-e7789831f9d1 · outbound

This paper cites Landing AI on Networks: An Equipment Ven- dor Viewpoint on Autonomous Driving Networks,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Landing AI on Networks: An Equipment Ven- dor Viewpoint on Autonomous Driving Networks,

Reference 6

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Observation 150514c6-5597-48bf-a261-837be74eacd8 · outbound

This paper cites The Networking Channel,.

Mapping the Landscape of Generative AI in Network Monitoring and Management The Networking Channel,

Reference 7

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Observation 42eb82da-ff05-4086-8e91-3a13ea7588ee · outbound

This paper cites AT&T’s new Generative AI Tool Will Help Employees Be More Effective, Creative, and Innovative,.

Mapping the Landscape of Generative AI in Network Monitoring and Management AT&T’s new Generative AI Tool Will Help Employees Be More Effective, Creative, and Innovative,

Reference 8

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Observation 5897ada7-1523-4ffb-9785-6b62638adbf0 · outbound

This paper cites Cisco Artificial Intelligence,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Cisco Artificial Intelligence,

Reference 9

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Observation 3a464a97-4774-4c87-94fa-0442ed45e0ed · outbound

This paper cites How to Make Better Use of Network Insights with Gen- erative AI,.

Mapping the Landscape of Generative AI in Network Monitoring and Management How to Make Better Use of Network Insights with Gen- erative AI,

Reference 10

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Observation 8b0e7889-25f3-4d37-9b39-a5e65d4e61f7 · outbound

This paper cites European Innovation Council,.

Mapping the Landscape of Generative AI in Network Monitoring and Management European Innovation Council,

Reference 11

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Observation 54560186-c767-4bbf-a65c-bdeee7a05d9e · outbound

This paper cites Huawei Introduces AI Technologies to Accelerate Network Trans- formation Towards All Intelligence in the Net5.5G Era,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Huawei Introduces AI Technologies to Accelerate Network Trans- formation Towards All Intelligence in the Net5.5G Era,

Reference 12

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Observation 4c57b3b4-380f-4999-ab32-90e1978539f7 · outbound

This paper cites Welcome to the Large Generative Al Models inTelecom (GenAlNet) Emerging TechnologyInitiative website,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Welcome to the Large Generative Al Models inTelecom (GenAlNet) Emerging TechnologyInitiative website,

Reference 13

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Observation 8ea5d1ce-2cc0-4a17-a7c0-c91a2a4bf708 · outbound

This paper cites IETF Side Meetings,.

Mapping the Landscape of Generative AI in Network Monitoring and Management IETF Side Meetings,

Reference 14

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Observation 6fa1b0a3-09c7-4319-9886-42161936c095 · outbound

This paper cites Specializing Large Language Models for Telecom Networks,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Specializing Large Language Models for Telecom Networks,

Reference 15

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Observation de09df32-e2eb-402f-8153-d1248bdccb9c · outbound

This paper cites Generative AI implications for Telco Operations,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Generative AI implications for Telco Operations,

Reference 16

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Observation d141af52-a50f-4cec-bfb1-3d4cbccd32b0 · outbound

This paper cites Telefónica Partners with Microsoft to Incorporate Generative AI into Kernel,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Telefónica Partners with Microsoft to Incorporate Generative AI into Kernel,

Reference 17

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Observation 4648a3f8-d067-4c67-b672-792b92c39268 · outbound

This paper cites Generative AI: the challenge of TIM for the future of IT,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Generative AI: the challenge of TIM for the future of IT,

Reference 18

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Observation c4f4bb1d-c0cb-48b7-a1ad-1c91d852216f · outbound

This paper cites Empowering IoT with Generative AI: Applications, Case Studies, and Limitations,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Empowering IoT with Generative AI: Applications, Case Studies, and Limitations,

Reference 19

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Observation bfced28d-a0dd-491a-9a1d-fc96a46daa86 · outbound

This paper cites A Comprehensive Overview of Large Language Models (LLMs) for Cyber Defences: Opportunities and Directions.

Mapping the Landscape of Generative AI in Network Monitoring and Management A Comprehensive Overview of Large Language Models (LLMs) for Cyber Defences: Opportunities and Directions

Reference 20

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Observation a61c2469-8384-44ee-9ca6-68e2a7aab5e0 · outbound

This paper cites Machine Learning Techniques for IoT Security: Current Research and Future Vision with Generative AI and Large Language Models,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Machine Learning Techniques for IoT Security: Current Research and Future Vision with Generative AI and Large Language Models,

Reference 21

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Observation b4a3f244-9f58-4653-b80c-4f012478207b · outbound

This paper cites Applying Generative Machine Learning to Intrusion Detection: A Systematic Mapping Study and Review,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Applying Generative Machine Learning to Intrusion Detection: A Systematic Mapping Study and Review,

Reference 22

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Observation cd23e2b9-a1ea-422a-ab82-0040021870c1 · outbound

This paper cites Large Language Model (LLM) for Telecommunications: A Comprehensive Survey on Principles, Key Techniques, and Opportunities.

Mapping the Landscape of Generative AI in Network Monitoring and Management Large Language Model (LLM) for Telecommunications: A Comprehensive Survey on Principles, Key Techniques, and Opportunities

Reference 23

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Observation 605093c2-599b-4a4b-9871-831f5de08510 · outbound

This paper cites At the dawn of generative AI era: A tutorial-cum-survey on new frontiers in 6G wireless intelligence,.

Mapping the Landscape of Generative AI in Network Monitoring and Management At the dawn of generative AI era: A tutorial-cum-survey on new frontiers in 6G wireless intelligence,

Reference 24

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Observation 4d4622e8-5ed7-4862-962a-f5aa409eb6c7 · outbound

This paper cites Generative AI in Mobile Networks: a Survey,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Generative AI in Mobile Networks: a Survey,

Reference 25

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Observation 35e063be-b026-47f4-8870-5bb1a2562923 · outbound

This paper cites Large Language Models for Networking: Workflow, Advances and Challenges.

Mapping the Landscape of Generative AI in Network Monitoring and Management Large Language Models for Networking: Workflow, Advances and Challenges

Reference 26

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Observation 575c2064-b8cd-4c79-8dae-d6216bd111e9 · outbound

This paper cites Large Language Models for Networking: Applications, Enabling Techniques, and Challenges.

Mapping the Landscape of Generative AI in Network Monitoring and Management Large Language Models for Networking: Applications, Enabling Techniques, and Challenges

Reference 27

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Observation e77339e1-1a78-4e0b-b40e-130c7ad618c2 · outbound

This paper cites Tele- com’s Artificial General Intelligence (AGI) Vision: Beyond the GenAI Frontier,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Tele- com’s Artificial General Intelligence (AGI) Vision: Beyond the GenAI Frontier,

Reference 28

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Observation 1403fe2b-1356-437d-bf88-1487a4ab10af · outbound

This paper cites Generative AI in Cybersecurity: A Comprehensive Review of LLM Applications and Vulnerabilities.

Mapping the Landscape of Generative AI in Network Monitoring and Management Generative AI in Cybersecurity: A Comprehensive Review of LLM Applications and Vulnerabilities

Reference 29

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Observation 71535633-8809-4a6f-bdb2-325e6e82049b · outbound

This paper cites Unleashing the Power of Edge-Cloud Generative AI in Mobile Networks: A Survey of AIGC Services,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Unleashing the Power of Edge-Cloud Generative AI in Mobile Networks: A Survey of AIGC Services,

Reference 30

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Observation 1acdf55f-f6ae-4b4f-bb7b-111ae10b4fca · outbound

This paper cites Toward Scalable Generative AI via Mixture of Experts in Mobile Edge Networks.

Mapping the Landscape of Generative AI in Network Monitoring and Management Toward Scalable Generative AI via Mixture of Experts in Mobile Edge Networks

Reference 31

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Observation e829c83c-9714-4fef-abb1-31fc530ad0f2 · outbound

This paper cites Characterization and prediction of mobile-app traffic using Markov modeling,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Characterization and prediction of mobile-app traffic using Markov modeling,

Reference 32

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Observation 3fe5a153-8bfb-4578-964d-3ec6227fcc66 · outbound

This paper cites Synthetic and Privacy-Preserving Traffic Trace Gen- eration using Generative AI Models for Training Network Intrusion Detection Systems,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Synthetic and Privacy-Preserving Traffic Trace Gen- eration using Generative AI Models for Training Network Intrusion Detection Systems,

Reference 33

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Observation 05bd26f1-e179-4ec5-b37d-cd5615ddd15c · outbound

This paper cites Knowledge enhanced GAN for IoT traffic generation,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Knowledge enhanced GAN for IoT traffic generation,

Reference 34

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Observation 97af713c-880b-463e-95ea-1b2f89b113b3 · outbound

This paper cites CFLOW-AD: real-time unsupervised anomaly detection with localization via conditional nor- malizing flows,.

Mapping the Landscape of Generative AI in Network Monitoring and Management CFLOW-AD: real-time unsupervised anomaly detection with localization via conditional nor- malizing flows,

Reference 35

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Observation 980ccbf4-e59c-4208-b29b-25da560b011b · outbound

This paper cites Auto-encoding variational Bayes,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Auto-encoding variational Bayes,

Reference 36

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Observation f701b15b-08e4-45a8-9028-e4c4eacd7842 · outbound

This paper cites Attention is All You Need,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Attention is All You Need,

Reference 37

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Observation c406da41-b0f1-40e2-b5a6-22303fa53476 · outbound

This paper cites NICE: Non-linear independent components estimation,.

Mapping the Landscape of Generative AI in Network Monitoring and Management NICE: Non-linear independent components estimation,

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Observation df2556ae-220d-4cbd-a6cb-d0aa56986053 · outbound

This paper cites Network Traffic Generation: A Survey and Methodology,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Network Traffic Generation: A Survey and Methodology,

Reference 39

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Observation caa6d5ef-60a8-46ed-8819-bc781cde97ad · outbound

This paper cites Generative Adversarial Nets,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Generative Adversarial Nets,

Reference 40

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Observation cf4aec5d-23d1-484a-ba82-0a16a2518d43 · outbound

This paper cites Conditional Generative Adversarial Nets.

Mapping the Landscape of Generative AI in Network Monitoring and Management Conditional Generative Adversarial Nets

Reference 41

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source=pdf_text observed=2026-08-08T04:38:57.137746Z digest=sha256:b30d71f6bbe868a57111878d7fabae5bd5ce5ac9713215698461fff65c9fb08f

Observation 7fa2841a-d53c-4fda-882d-e7c9d596a375 · outbound

This paper cites Unsupervised representation learning with deep convolutional generative adversarial networks,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Unsupervised representation learning with deep convolutional generative adversarial networks,

Reference 42

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source=pdf_text observed=2026-08-08T04:38:57.142305Z digest=sha256:07613832309ea25eab1c86d2c0ddd56eba857f8de4e57a8d9876616e6172dbea

Observation ae2f8596-8fa2-4467-b3b6-b4db740c4989 · outbound

This paper cites Autoencoding beyond pixels using a learned similarity metric,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Autoencoding beyond pixels using a learned similarity metric,

Reference 43

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source=pdf_text observed=2026-08-08T04:38:57.146724Z digest=sha256:5c024195d4078caf80ad8dad84dfa5ad3a558c993e7a2e2b8e99e84525e1d58a

Observation f7e0146a-2064-4fab-87b8-fb4873608d96 · outbound

This paper cites Density estimation using Real NVP,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Density estimation using Real NVP,

Reference 44

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source=pdf_text observed=2026-08-08T04:38:57.151009Z digest=sha256:a4ec125afce354a7ea3d774c7837e5fbfd188f9426732984c917087846c962fe

Observation d6143c97-0ce5-45ba-a0e9-bf70b7c5d3db · outbound

This paper cites On the Opportunities and Risks of Foundation Models.

Mapping the Landscape of Generative AI in Network Monitoring and Management On the Opportunities and Risks of Foundation Models

Reference 45

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source=pdf_text observed=2026-08-08T04:38:57.155279Z digest=sha256:ed927125eca545e2e05ecc8ce6aafdbe0532ef7a882f9979f8a2599f9dbd3b07

Observation aee892d7-e293-4def-a3bc-5626b5f561c1 · outbound

This paper cites BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding.

Mapping the Landscape of Generative AI in Network Monitoring and Management BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding

Reference 46

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Observation a22e6ac0-cb5a-4e27-a0b2-68ed21991184 · outbound

This paper cites Improving Language Understanding by Generative Pre-Training,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Improving Language Understanding by Generative Pre-Training,

Reference 47

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source=pdf_text observed=2026-08-08T04:38:57.164656Z digest=sha256:f17fe392e35b56548d053e6e56aab91d48e57bdc640f5ed734b2bc88964a404e

Observation 19230c6a-dc77-4d4f-a418-812d18ef008f · outbound

This paper cites Denoising Diffusion Probabilistic Mod- els,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Denoising Diffusion Probabilistic Mod- els,

Reference 48

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Observation 88decd0c-732f-465a-9b8f-9597c2cda1a5 · outbound

This paper cites Understanding diffusion objectives as the elbo with simple data augmentation,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Understanding diffusion objectives as the elbo with simple data augmentation,

Reference 49

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source=pdf_text observed=2026-08-08T04:38:57.173519Z digest=sha256:669d464f03581beeaae7156956008a970f8b9930d48fcf8c56c10f6ef4e2b7ea

Observation c8e84247-8a67-4a91-92db-c5573a9e3cb5 · outbound

This paper cites Mamba: Linear-Time Sequence Modeling with Selective State Spaces.

Mapping the Landscape of Generative AI in Network Monitoring and Management Mamba: Linear-Time Sequence Modeling with Selective State Spaces

Reference 50

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source=pdf_text observed=2026-08-08T04:38:57.177792Z digest=sha256:acd96ae909d89767d9102b8152ec5dbb8031f36c3650433c198a0e39cbe193c2

Observation f82fb01e-17a3-491c-879b-f619d8445076 · outbound

This paper cites Memory-efficient fine-tuning of compressed large language models via sub-4-bit integer quantization,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Memory-efficient fine-tuning of compressed large language models via sub-4-bit integer quantization,

Reference 51

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source=pdf_text observed=2026-08-08T04:38:57.182358Z digest=sha256:03bb174bb3818e3abbdb6cfbc3c32d977fcf0d5ffffff4432ec0b91705178981

Observation d0492d59-2555-41b7-a19d-101575bea9c9 · outbound

This paper cites LoRa: Low-rank adaptation of large language models,.

Mapping the Landscape of Generative AI in Network Monitoring and Management LoRa: Low-rank adaptation of large language models,

Reference 52

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Observation e69c00e3-5bc1-4d6d-8c77-92b8fd7a10b9 · outbound

This paper cites NetDiffusion: Network Data Augmenta- tion Through Protocol-Constrained Traffic Generation,.

Mapping the Landscape of Generative AI in Network Monitoring and Management NetDiffusion: Network Data Augmenta- tion Through Protocol-Constrained Traffic Generation,

Reference 53

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Observation 2ab6abf4-4bb9-4242-b818-5eba4f456e3d · outbound

This paper cites Parameter-efficient fine-tuning of large-scale pre-trained language models,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Parameter-efficient fine-tuning of large-scale pre-trained language models,

Reference 54

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Observation c3556c78-a770-4101-9052-58c7d456ae4d · outbound

This paper cites Available: https://github.com/ggerganov/ggml/blob/ master/docs/gguf.md.

Mapping the Landscape of Generative AI in Network Monitoring and Management Available: https://github.com/ggerganov/ggml/blob/ master/docs/gguf.md

Reference 55

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source=pdf_text observed=2026-08-08T04:38:57.199522Z digest=sha256:2dc71e532c8f39c8fd297c84ba4cbe62b650b79e2abe901326b40f52fa9ca4c3

Observation 125c2d9b-b889-4b6d-830c-0283b1636f6f · outbound

This paper cites Using Large Language Models to Understand Telecom Standards,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Using Large Language Models to Understand Telecom Standards,

Reference 56

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source=pdf_text observed=2026-08-08T04:38:57.203913Z digest=sha256:dbfd272be69e10d5a68e7235fb3f006ad21b59616aedf258b8a3f2b7b60ea02f

Observation 5077bc82-cbdf-42ce-9df5-2a8a5a629cbe · outbound

This paper cites NetGPT: Generative Pretrained Transformer for Network Traffic.

Mapping the Landscape of Generative AI in Network Monitoring and Management NetGPT: Generative Pretrained Transformer for Network Traffic

Reference 57

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source=pdf_text observed=2026-08-08T04:38:57.208624Z digest=sha256:0a1ef51fd44157a887478c21a83280446b5af86beda7d192f076912b28cff88e

Observation 62aacb34-73a4-4018-a5c6-715b956f387a · outbound

This paper cites Towards the Deployment of Machine Learning Solutions in Network Traffic Classification: A Systematic Survey,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Towards the Deployment of Machine Learning Solutions in Network Traffic Classification: A Systematic Survey,

Reference 58

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source=pdf_text observed=2026-08-08T04:38:57.213280Z digest=sha256:8340736286af8a2a10a076a12a72aed8a269b505e9eae34bd8715daca2fbe2a2

Observation 716aa14d-0617-4f9e-8319-27e1a8aeeda8 · outbound

This paper cites Network Traffic Classification: Techniques, Datasets, and Challenges,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Network Traffic Classification: Techniques, Datasets, and Challenges,

Reference 59

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source=pdf_text observed=2026-08-08T04:38:57.217600Z digest=sha256:9021b83c1a4b15e9e32d3d06c889dec832bcb3aa5884586b1e06b8750807e4e9

Observation a6d92d7d-a8bc-4f1d-b140-5a07eaab3326 · outbound

This paper cites AI- powered Internet Traffic Classification: Past, Present, and Future,.

Mapping the Landscape of Generative AI in Network Monitoring and Management AI- powered Internet Traffic Classification: Past, Present, and Future,

Reference 60

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source=pdf_text observed=2026-08-08T04:38:57.221882Z digest=sha256:818c2b8db919666a52185daf97c130e39de12cad6c3184542da63a0daa91f84a

Observation 6a1adf16-07a5-493b-a6e4-2caec6fbea08 · outbound

This paper cites ET-BERT: A Con- textualized Datagram Representation with Pre-training Transformers for Encrypted Traffic Classification,.

Mapping the Landscape of Generative AI in Network Monitoring and Management ET-BERT: A Con- textualized Datagram Representation with Pre-training Transformers for Encrypted Traffic Classification,

Reference 61

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source=pdf_text observed=2026-08-08T04:38:57.226199Z digest=sha256:d899fc0a330e5d74c1b6ea59c69e0720874de55b09122143ad95dd0851154a76

Observation 8227bf3f-a4b5-4af3-8da4-bafa233d5226 · outbound

This paper cites NetMamba: Efficient Network Traffic Classification via Pre-training Unidirectional Mamba.

Mapping the Landscape of Generative AI in Network Monitoring and Management NetMamba: Efficient Network Traffic Classification via Pre-training Unidirectional Mamba

Reference 62

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source=pdf_text observed=2026-08-08T04:38:57.230463Z digest=sha256:37c3bd51af9c22636f35ac8aab21fb84e0b221874333a5834625097668608216

Observation 6a55e648-45ca-41a7-92b9-64d31973c3cd · outbound

This paper cites A Survey on Data-driven Network Intrusion Detection,.

Mapping the Landscape of Generative AI in Network Monitoring and Management A Survey on Data-driven Network Intrusion Detection,

Reference 63

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Observation b30fa3ac-f416-4b6e-8397-c7ae354fe6ae · outbound

This paper cites FlowTransformer: A Transformer Framework for Flow-based Network Intrusion Detection Systems,.

Mapping the Landscape of Generative AI in Network Monitoring and Management FlowTransformer: A Transformer Framework for Flow-based Network Intrusion Detection Systems,

Reference 64

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Observation a4a25c36-38d0-48d4-8d06-bce15f81af59 · outbound

This paper cites Revolutionizing Cyber Threat Detec- tion With Large Language Models: A Privacy-Preserving BERT-based Lightweight Model for IoT/IIoT Devices,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Revolutionizing Cyber Threat Detec- tion With Large Language Models: A Privacy-Preserving BERT-based Lightweight Model for IoT/IIoT Devices,

Reference 65

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source=pdf_text observed=2026-08-08T04:38:57.243845Z digest=sha256:74ad2ce93f591ad0cafd2b8e619ddcd39666b80d44b7e82f64c676951884bf15

Observation bb2521f3-9afa-4630-bf16-e7d0dda2e205 · outbound

This paper cites A Survey on Automated Log Analysis for Reliability Engineering,.

Mapping the Landscape of Generative AI in Network Monitoring and Management A Survey on Automated Log Analysis for Reliability Engineering,

Reference 66

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source=pdf_text observed=2026-08-08T04:38:57.248133Z digest=sha256:25ac8bbc9a5c22d154d202e44bbc8a5a8cd02c79483cdd640cccacaa89bd2793

Observation 06a8824f-4b74-4a50-85ff-a823e53d743f · outbound

This paper cites LogGPT: Log Anomaly Detection via GPT,.

Mapping the Landscape of Generative AI in Network Monitoring and Management LogGPT: Log Anomaly Detection via GPT,

Reference 67

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source=pdf_text observed=2026-08-08T04:38:57.252583Z digest=sha256:d8ee6456632e7cd4d6a8e9058a2da46473daa17b23c43f5b204f0cdf82834cec

Observation 907e4cec-708f-481c-8096-145f0aeb6839 · outbound

This paper cites LogPrécis: Unleashing Language Models for Automated Malicious Log Analysis: Précis: A Concise Summary of Essential Points, Statements, or Facts,.

Mapping the Landscape of Generative AI in Network Monitoring and Management LogPrécis: Unleashing Language Models for Automated Malicious Log Analysis: Précis: A Concise Summary of Essential Points, Statements, or Facts,

Reference 68

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source=pdf_text observed=2026-08-08T04:38:57.256994Z digest=sha256:6e2f5495845123aa915b5520c139507b37fd6c372839072fa09329910b4f0e02

Observation 9a7cfb62-087e-4bfc-9cd0-7139b97094d7 · outbound

This paper cites Network Management Challenges and Trends in Multi-Layer and Multi-Vendor Settings for Carrier-Grade Networks,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Network Management Challenges and Trends in Multi-Layer and Multi-Vendor Settings for Carrier-Grade Networks,

Reference 69

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source=pdf_text observed=2026-08-08T04:38:57.261298Z digest=sha256:52cb4786863e4b11a299c29dc227826e4994a69233ae60c2b7cdf04d86b2f4c9

Observation 47d500ff-7800-43af-909b-4fda9e9018c2 · outbound

This paper cites Network Management in the Era of Ecosystems: Systematic Review and Management Framework,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Network Management in the Era of Ecosystems: Systematic Review and Management Framework,

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Observation 73d67e7a-dafe-4fc1-90fb-68cbfefbd423 · outbound

This paper cites A Review of IoT Network Management: Current Status and Perspectives,.

Mapping the Landscape of Generative AI in Network Monitoring and Management A Review of IoT Network Management: Current Status and Perspectives,

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source=pdf_text observed=2026-08-08T04:38:57.270106Z digest=sha256:3cb6ffef1453e8645dc285bf4aceee2ead4e5bef6aee2c7f7f50920189e7f855

Observation c0031400-e0a0-4d78-afb6-516aa8845fb1 · outbound

This paper cites Network Meets ChatGPT: Intent Autonomous Management, Control and Operation,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Network Meets ChatGPT: Intent Autonomous Management, Control and Operation,

Reference 72

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source=pdf_text observed=2026-08-08T04:38:57.274698Z digest=sha256:021fa1c667a4f9e1ee63dd1eadd026b05be8a9802de4270bf542bc1373006d2c

Observation b884c2a6-eb6f-4638-9e97-64ceae21c54c · outbound

This paper cites New Directions in Automated Traffic Analysis,.

Mapping the Landscape of Generative AI in Network Monitoring and Management New Directions in Automated Traffic Analysis,

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Observation bbcc734d-aca5-46ce-901e-f7cfef386657 · outbound

This paper cites Flowpic: A generic representation for encrypted traffic classification and applications identification,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Flowpic: A generic representation for encrypted traffic classification and applications identification,

Reference 74

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source=pdf_text observed=2026-08-08T04:38:57.283868Z digest=sha256:6d6af69cbf6af2eaf41e0587e7e027f79a82a41f7baca245127ad5b9ccd96ae6

Observation ced0bf59-93a3-46ce-8b37-01c94f160773 · outbound

This paper cites NetDiffus: Network Traffic Gen- eration by Diffusion Models through Time-Series Imaging,.

Mapping the Landscape of Generative AI in Network Monitoring and Management NetDiffus: Network Traffic Gen- eration by Diffusion Models through Time-Series Imaging,

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source=pdf_text observed=2026-08-08T04:38:57.288258Z digest=sha256:5469b5a6537dd60f917cc0d3267e79b73bea205fc686eeff83e31c076c4e81ad

Observation f2284c57-b00d-4046-9ffd-ab888cc10bb3 · outbound

This paper cites Multi-Class Network Traffic Generators and Classifiers Based on Neural Networks,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Multi-Class Network Traffic Generators and Classifiers Based on Neural Networks,

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source=pdf_text observed=2026-08-08T04:38:57.292782Z digest=sha256:80a83d409b2f9e45eef4e676061f33f24b999f5d6a4a9b5ec5e2009e11505ee8

Observation c97f3a1d-e7dd-4424-b439-96aa27b9be7c · outbound

This paper cites PAC-GPT: A Novel Approach to Generating Synthetic Network Traffic With GPT-3,.

Mapping the Landscape of Generative AI in Network Monitoring and Management PAC-GPT: A Novel Approach to Generating Synthetic Network Traffic With GPT-3,

Reference 77

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source=pdf_text observed=2026-08-08T04:38:57.297154Z digest=sha256:10115b830866b1617ce900af00ece3a059bd5fdfb2fc3def41c008b664e7a88c

Observation 2d708b62-127a-4c89-b57d-b9c2494445df · outbound

This paper cites LENS: A Foundation Model for Network Traffic,.

Mapping the Landscape of Generative AI in Network Monitoring and Management LENS: A Foundation Model for Network Traffic,

Reference 78

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source=pdf_text observed=2026-08-08T04:38:57.301285Z digest=sha256:6e0e43962942e7476ebc4740e7cdf427fac5ff4b65c0d31935787c2d4dedd561

Observation 5fdde5f7-c272-41dc-af2e-459cfcce4760 · outbound

This paper cites TrafficGPT: Breaking the Token Barrier for Efficient Long Traffic Analysis and Generation.

Mapping the Landscape of Generative AI in Network Monitoring and Management TrafficGPT: Breaking the Token Barrier for Efficient Long Traffic Analysis and Generation

Reference 79

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source=pdf_text observed=2026-08-08T04:38:57.305592Z digest=sha256:6708e86c04d130104244e3f732b9cc63c69fd21163bc0a9392636f7ab4f09d02

Observation e803e287-8863-46dc-b928-5f7384db520a · outbound

This paper cites Feasibility of State Space Models for Network Traffic Generation.

Mapping the Landscape of Generative AI in Network Monitoring and Management Feasibility of State Space Models for Network Traffic Generation

Reference 80

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

source=pdf_text observed=2026-08-08T04:38:57.310047Z digest=sha256:0246fc0570f850b1ea2c1e242d86e7a6109d5163f93a75e4b0940e5c4034f9e8

Observation acb81c6d-c514-4e53-98c7-c1af40b45c33 · outbound

This paper cites NetDiff: A Service-Guided Hierarchical Diffusion Model for Network Flow Trace Generation,.

Mapping the Landscape of Generative AI in Network Monitoring and Management NetDiff: A Service-Guided Hierarchical Diffusion Model for Network Flow Trace Generation,

Reference 81

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source=pdf_text observed=2026-08-08T04:38:57.314758Z digest=sha256:1a9dc2d7a9edcfa5791dc9f767e3205f74b06e03b1ced25dcea694f7896c1d0d

Observation 922a4b3d-bfa3-4157-8407-db8716ab0b03 · outbound

This paper cites Lightweight diffusion model for synthe- sizing malicious network traffic,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Lightweight diffusion model for synthe- sizing malicious network traffic,

Reference 82

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source=pdf_text observed=2026-08-08T04:38:57.319210Z digest=sha256:e28059e4fb7761cb7d0628082d084e054384f5aef0fdf6398c1255bbe57452e9

Observation 6bc50b0b-4566-4448-b042-f390d66afa57 · outbound

This paper cites Bench- marking of Synthetic Network Data: Reviewing Challenges and Ap- proaches,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Bench- marking of Synthetic Network Data: Reviewing Challenges and Ap- proaches,

Reference 83

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source=pdf_text observed=2026-08-08T04:38:57.323415Z digest=sha256:3240646953196c2cc399570e20922c10b74bbccb069f89b2eb08e6689f51194e

Observation 8cfd78aa-2456-42cb-946f-3b87c6b7a411 · outbound

This paper cites Imaging Time-series to Improve Classifica- tion and Imputation,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Imaging Time-series to Improve Classifica- tion and Imputation,

Reference 84

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source=pdf_text observed=2026-08-08T04:38:57.327473Z digest=sha256:3cf215bf3fd37ba86c0304b88bdcaeb627d48ec116934a13be0267271af1e7ef

Observation f9ac2cc3-6c00-4737-b700-867024c83408 · outbound

This paper cites netFound: Principled Design for Network Foundation Models.

Mapping the Landscape of Generative AI in Network Monitoring and Management netFound: Principled Design for Network Foundation Models

Reference 85

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source=pdf_text observed=2026-08-08T04:38:57.331723Z digest=sha256:44e7995b1310267d81fe5a1732237425fc9fc5d935a988b4a8b0f8c2a0d2296f

Observation 9bb7dbb3-206c-4bc0-96a5-c6b2c6e4462d · outbound

This paper cites An LLM-based Framework for Finger- printing Internet-connected Devices,.

Mapping the Landscape of Generative AI in Network Monitoring and Management An LLM-based Framework for Finger- printing Internet-connected Devices,

Reference 86

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source=pdf_text observed=2026-08-08T04:38:57.336536Z digest=sha256:0e4935d1e178dd14bf479c2e6df5984afd81f1837c42a99089fdc62499cc4f74

Observation 3f212d33-3e61-4cc4-8cdb-fbf0df1afc2e · outbound

This paper cites LAMBERT: Leveraging Attention Mechanisms to Improve the BERT Fine-Tuning Model for Encrypted Traffic Classification,.

Mapping the Landscape of Generative AI in Network Monitoring and Management LAMBERT: Leveraging Attention Mechanisms to Improve the BERT Fine-Tuning Model for Encrypted Traffic Classification,

Reference 87

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source=pdf_text observed=2026-08-08T04:38:57.340893Z digest=sha256:daec2a9e472c7709923a8504f95e6014ecc3420e7f58c97efc43848dd45b4580

Observation d65561c1-87ee-471d-a9a2-5bc9d433e793 · outbound

This paper cites Encrypted Traffic Classification Framework Based on Albert,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Encrypted Traffic Classification Framework Based on Albert,

Reference 88

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source=pdf_text observed=2026-08-08T04:38:57.345170Z digest=sha256:a098e5b8b232a39734aa969e754c9a58126673af7b57398fcc7b09cc5a09e31d

Observation b31886ab-3265-47a7-a4f6-b2fa32fc4c08 · outbound

This paper cites Intrusion Detection Method using Bi-directional GPT for In-vehicle Controller Area Networks,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Intrusion Detection Method using Bi-directional GPT for In-vehicle Controller Area Networks,

Reference 89

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source=pdf_text observed=2026-08-08T04:38:57.349839Z digest=sha256:e0c79cfef2c4cc595fbdd9d4328a81ba5519845ec4c8ec87869e5993177bd9fb

Observation 667c795e-2bf5-4367-8c03-31d4a2fb9cbd · outbound

This paper cites Securing Critical Infrastructures: Deep-Learning- Based Threat Detection in IIoT,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Securing Critical Infrastructures: Deep-Learning- Based Threat Detection in IIoT,

Reference 90

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source=pdf_text observed=2026-08-08T04:38:57.353977Z digest=sha256:36f180d5eee243de478a5f74122dc129e3f918f09fa6eb9cc337d90633a62874

Observation 402d6f9a-ca0f-4a60-be9d-95c9718e5a2e · outbound

This paper cites An Extreme Semi-supervised Framework Based on Transformer for Network Intrusion Detection,.

Mapping the Landscape of Generative AI in Network Monitoring and Management An Extreme Semi-supervised Framework Based on Transformer for Network Intrusion Detection,

Reference 91

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source=pdf_text observed=2026-08-08T04:38:57.358247Z digest=sha256:790eb17b950e009ab1b5b904d69ecbfe8ea6a7477209f5d678a225d7fe2f498b

Observation 640c41cb-54e1-4816-8fe6-22bfa200ba00 · outbound

This paper cites An Attack Detection Framework Based on BERT and Deep Learning,.

Mapping the Landscape of Generative AI in Network Monitoring and Management An Attack Detection Framework Based on BERT and Deep Learning,

Reference 92

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source=pdf_text observed=2026-08-08T04:38:57.362561Z digest=sha256:92d70a59eb96bb6f027dc86ac435bb84d51f9f8aed5f08d0087a15c5db2a1655

Observation 7aaf8b26-62c9-4aea-b563-ba739e15b1eb · outbound

This paper cites Network Intru- sion Detection via Flow-to-Image Conversion and Vision Transformer Classification,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Network Intru- sion Detection via Flow-to-Image Conversion and Vision Transformer Classification,

Reference 93

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source=pdf_text observed=2026-08-08T04:38:57.367050Z digest=sha256:c976acdc417ebaf696d6737d036742641acefd6af2c248f2ed92d818c7c5570e

Observation b14a66a0-58df-4e57-be6b-57e337aad8b4 · outbound

This paper cites RTIDS: A Robust Transformer-Based Approach for Intrusion Detection System,.

Mapping the Landscape of Generative AI in Network Monitoring and Management RTIDS: A Robust Transformer-Based Approach for Intrusion Detection System,

Reference 94

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source=pdf_text observed=2026-08-08T04:38:57.371283Z digest=sha256:ded97b7d29e03f6142ce5e7fba3777401e31daf5a3edf7162255a9dc0b737e44

Observation e475969d-a6a9-441c-93e1-f162b995a31b · outbound

This paper cites A Security Model Based on LightGBM and Transformer to Protect Healthcare Systems from Cyberattacks,.

Mapping the Landscape of Generative AI in Network Monitoring and Management A Security Model Based on LightGBM and Transformer to Protect Healthcare Systems from Cyberattacks,

Reference 95

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source=pdf_text observed=2026-08-08T04:38:57.375573Z digest=sha256:9547d3f70cbc7f45a77053132752745e429a67e487fab2f7fcb633c6540d128c

Observation f904cce7-4df4-4b2c-a74a-7b0a4bdfcb90 · outbound

This paper cites Intrusion Detection Technology Based on Large Language Models,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Intrusion Detection Technology Based on Large Language Models,

Reference 96

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source=pdf_text observed=2026-08-08T04:38:57.379898Z digest=sha256:4c85f621693a3b63d0e9c50efc03b0b1534d2330a09685f3cd47b241dc7dc961

Observation 629f4756-81ac-4ab6-8d16-88815c2537b5 · outbound

This paper cites HuntGPT: Integrating Machine Learning-Based Anomaly Detection and Explainable AI with Large Language Models (LLMs).

Mapping the Landscape of Generative AI in Network Monitoring and Management HuntGPT: Integrating Machine Learning-Based Anomaly Detection and Explainable AI with Large Language Models (LLMs)

Reference 97

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source=pdf_text observed=2026-08-08T04:38:57.384239Z digest=sha256:a5f90f9ea5e57abfd0bfdbafda6f1441aeefa6160286bbdbd4698fe0e3786307

Observation 8b789ccb-c12a-421e-aba3-3840148abbe3 · outbound

This paper cites TNN-IDS: Transformer Neural Network-based Intrusion Detection System for MQTT-enabled IoT Networks,.

Mapping the Landscape of Generative AI in Network Monitoring and Management TNN-IDS: Transformer Neural Network-based Intrusion Detection System for MQTT-enabled IoT Networks,

Reference 98

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source=pdf_text observed=2026-08-08T04:38:57.388870Z digest=sha256:4281904429a843c82d277747e7381ceb3c9ff485b687d2b61f02efadb795dac0

Observation 2b3163e3-ecba-4b64-868c-af0cc24c7aa3 · outbound

This paper cites Robust Unsupervised Network Intrusion Detection with Self-supervised Masked Context Reconstruction,.

Mapping the Landscape of Generative AI in Network Monitoring and Management Robust Unsupervised Network Intrusion Detection with Self-supervised Masked Context Reconstruction,

Reference 99

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source=pdf_text observed=2026-08-08T04:38:57.393234Z digest=sha256:cb3846dfd988224b7e373c99a7fef56d67958c267abe79037f901674818d2963

Observation 0440a772-9b21-4548-8471-5b5fb8d6d6f6 · outbound

This paper cites A Lightweight IoT Intrusion Detection Model based on Improved BERT- of-Theseus,.

Mapping the Landscape of Generative AI in Network Monitoring and Management A Lightweight IoT Intrusion Detection Model based on Improved BERT- of-Theseus,

Reference 100

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source=pdf_text observed=2026-08-08T04:38:57.397561Z digest=sha256:a34c233254aac8768cd49e137b062007e853b0251a77c5ea3c36296146765663

Pith citing papers

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