Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T21:11:58.856366Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 62 of 62 outbound references and 0 inbound Pith citation observations for arXiv:2507.00880.
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 2026-08-06T21:11:58.856366Z
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
62 of 62 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 2452f6f6-6785-455a-a796-8d4fb62a0868 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Zero-Cost Proxies for Lightweight NAS
Reference 1
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Observation 986922d5-ecc3-4c4b-a2f4-77cf1fac760b · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Once-for-All: Train One Network and Specialize it for Efficient Deployment
Reference 2
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Observation ba253c5a-ef62-463d-aab0-b4beacce2984 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Contrastive neural archi- tecture search with neural architecture comparators
Reference 3
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Observation 52855efe-3cd9-4942-a132-5ebebb51235a · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Peephole: Predicting Network Performance Before Training
Reference 4
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Observation 4d4c528b-3448-4f4e-a6e4-10b725406e4e · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Imagenet: A large-scale hierarchical image database
Reference 5
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Observation 5a21a850-ee66-4250-a622-62f315ce35d5 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Repvgg: Making vgg-style convnets great again
Reference 6
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Observation 5f832736-66e5-4f97-833d-660b533a5db2 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation ParZC: Parametric Zero-Cost Proxies for Efficient NAS
Reference 7
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Observation b16e3f2c-cd57-42be-99de-981ccd765ed1 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation NAS-Bench-201: Extending the Scope of Reproducible Neural Architecture Search
Reference 8
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Observation 04a727eb-7e2e-4c28-91a6-ba388ead1689 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Pace: A parallelizable computation encoder for directed acyclic graphs
Reference 9
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Observation 9a8238b0-2f04-44c7-9368-2f46277e21c9 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation An Image is Worth 16x16 Words: Transformers for Image Recognition at Scale
Reference 10
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Observation d031d8eb-16e1-4129-8853-691fa2e2ae6a · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Brp-nas: Prediction-based nas using gcns
Reference 11
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Observation d8d25d2a-ac15-4ef8-8b6f-0bc9846faa7f · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation A Generalization of Transformer Networks to Graphs
Reference 12
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Observation 734d2a02-6a7b-44a6-b9ea-8f01fd164fe9 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Neural topological ordering for computation graphs
Reference 13
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Observation dadcc8f9-62ba-4d9e-b470-66a9c15e7623 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Neural message passing for quantum chemistry
Reference 14
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Observation 514f6e6f-21f5-45ee-8d50-c788af746e95 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Accurate, Large Minibatch SGD: Training ImageNet in 1 Hour
Reference 15
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Observation 3e0b9753-082a-488c-94ef-2a7cf51e073d · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Cmt: Convolutional neural networks meet vision transformers
Reference 16
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Observation 7961f10f-17eb-49dd-a3c9-8285a7c7d672 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Inductive representation learning on large graphs
Reference 17
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Observation 6705a868-e3e1-44a2-824b-61fa8dafe499 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Flowerformer: Empowering neural architecture encod- ing using a flow-aware graph transformer
Reference 18
Source-reported events for the cited work
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Observation f79e7810-4465-41e4-888d-148cd613b564 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Cap: a context-aware neural predictor for nas
Reference 19
Source-reported events for the cited work
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Observation 96b08366-6b40-43c7-9f24-90800af498ac · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Graph masked au- toencoder enhanced predictor for neural architecture search
Reference 20
Source-reported events for the cited work
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Observation 495aedcc-e7e9-4ce9-a232-c6f6504279a5 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation A learned performance model for tensor processing units
Reference 21
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Observation 23100c7c-3041-4609-9175-1a7a8838800e · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Semi-supervised classi- fication with graph convolutional networks
Reference 22
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Observation c053f3df-f119-4a26-8d90-b9609cd23e28 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Answering complex queries in knowledge graphs with bidi- rectional sequence encoders
Reference 23
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Observation 44d80921-4cfc-426c-b986-d86717f7beb5 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Learning multiple layers of features from tiny images, 2009
Reference 24
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Observation 0d0ac11f-b65c-45b0-a780-98575865b737 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Neural graph em- bedding for neural architecture search
Reference 25
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Observation 5bdfde9c-105d-4b68-a91d-a8cbdac5ceea · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Progressive neural architecture search
Reference 26
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Observation 84cba2a2-65a4-49c4-9028-31394ef5fc36 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Nnlqp: A multi-platform neural network la- tency query and prediction system with an evolving database
Reference 27
Source-reported events for the cited work
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Observation cda97b8f-95bd-4785-8819-cd0664cb6da4 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation SGDR: Stochastic Gradient Descent with Warm Restarts
Reference 28
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Observation 91b84355-d2ca-48ef-905c-23293a2a7e05 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Decoupled Weight Decay Regularization
Reference 29
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Observation 02e4abb2-4ce6-4e40-b9be-7c28305d83f6 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Tnasp: A transformer-based nas predictor with a self- evolution framework
Reference 30
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Observation ceeadd6b-7360-4606-b18e-fb3b33281ba8 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Pinat: A permutation invari- ance augmented transformer for nas predictor
Reference 31
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Observation f20e144b-6fba-454a-a260-d2e29ff80823 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Neural architecture optimization
Reference 32
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Observation 7536d73c-31b9-4ad1-9f5f-ce258b40fe2d · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Semi-supervised neural architecture search
Reference 33
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Observation b0e62bcb-e025-4bcd-bca8-0dabdaa51469 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Transformers over directed acyclic graphs
Reference 34
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Observation 3f35c706-76da-4b56-ba61-ca364c7e6cc1 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation A generic graph-based neural architecture encoding scheme for predictor-based nas
Reference 35
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Observation 85c4b94c-954f-483a-ad16-22c8f18d70c5 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Ta-gates: An encoding scheme for neu- ral network architectures
Reference 36
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Observation d94be2d4-628f-481f-9795-a12f9229d7fe · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Acceleration of stochastic approximation by averaging
Reference 37
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Observation cc5d4f63-c1bf-4756-8e26-0f517a931f31 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Estimates of the regression coefficient based on kendall’s tau
Reference 38
Source-reported events for the cited work
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Observation 176111b2-b9a2-42f6-bcce-02df02b4cb85 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Bridging the gap between sample-based and one-shot neural architecture search with bonas
Reference 39
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Observation 0e24ed5c-ed43-445c-b1db-f82085584182 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Going deeper with convolutions
Reference 40
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Observation 6ba1561c-64e4-443e-aa7f-af0b9db91c99 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Directed Acyclic Graph Neural Networks
Reference 41
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Observation c6f1c11c-1360-4ac1-bc7e-7d02c9c66e78 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Attention is all you need
Reference 42
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Observation 6d745bc4-eb5b-4457-8fbc-d8b543daae98 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Graph at- tention networks
Reference 43
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Observation b586f910-b09e-4820-a2f0-41123dff6d4a · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Neural predictor for neural architecture search
Reference 44
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Observation 7151e4bf-c734-47e3-9c93-fe63d7dce1d0 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Bananas: Bayesian optimization with neural architectures for neural architecture search
Reference 45
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Observation 2096e4f0-14bf-49c3-88a5-262bd07951ee · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Pay Less Attention with Lightweight and Dynamic Convolutions
Reference 46
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Observation f47681c2-b79b-4824-9c8c-cf85f9ff1bad · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Representing long- range context for graph neural networks with global atten- tion
Reference 47
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Observation 9a8c1917-68a9-4ac9-b2a8-0945d6dcb56a · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation How powerful are graph neural networks? In International Conference on Learning Representations, 2018
Reference 48
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Observation a358c9d9-a32a-4a57-8ca2-b3fcbc169bbf · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Parcnetv2: Oversized kernel with enhanced attention
Reference 49
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NN-Former: Rethinking Graph Structure in Neural Architecture Representation Renas: Relativistic eval- uation of neural architecture search
Reference 50
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Observation 148e74f5-445f-43e6-92be-6fa0e1218b35 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Does unsupervised architecture representation learning help neural architecture search? Advances in Neural Information Processing Systems, 33:12486–12498, 2020
Reference 51
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Observation d0e03a8e-c05d-4ee2-81b6-ba435c161fc9 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Nar-former: Neural architecture representation learning towards holistic attributes prediction
Reference 52
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Observation c5008702-7ff3-401f-9325-a125db08cc7a · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Nar-former v2: Rethinking transformer for uni- versal neural network representation learning
Reference 53
Source-reported events for the cited work
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Observation 7843c696-39ba-452a-87c4-c8ca67aea055 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Nas-bench-101: Towards reproducible neural architecture search
Reference 54
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Observation 4169bfa9-461e-494e-872f-cae618adeecd · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Do transformers really perform badly for graph representation? In Thirty-Fifth Conference on Neural Information Process- ing Systems, 2021
Reference 55
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Observation aeff0ea2-7b1d-4f47-996c-efdd427cb369 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Graph structure of neural networks
Reference 56
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Observation 776ad859-bfca-4294-b2e9-b9d09daf7081 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Graph HyperNetworks for Neural Architecture Search
Reference 57
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Observation 2a11d187-babb-4e4b-a6b7-41b8b5e9a05e · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Nn-meter: Towards accurate latency prediction of deep-learning model inference on diverse edge devices
Reference 58
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Observation ef5c0b52-85cb-4674-b597-47b8c2a618cb · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation directed WL test
Reference 59
Source-reported events for the cited work
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Observation 5e86d9fa-5379-4158-87c6-4d87a7dc51d8 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation For accuracy prediction, we show the experiment settings on NAS-Bench-101 in Section 2.1.1 and NAS- Bench-201 in Section 4.1
Reference 60
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Observation 4a1cef73-ac1d-4d04-b516-e4dcf65d4ec0 · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Ablation on hyperparameters This work adopts a Transformer as the backbone, and the hyperparameters of Transformers have been well-settled in previous research
Reference 61
Source-reported events for the cited work
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Observation c701c7c7-dec7-4e04-9f94-4b46890f031d · outbound
NN-Former: Rethinking Graph Structure in Neural Architecture Representation Theoretical Analysis Our ASMA method has less or equal computational com- plexity than the vanilla attention
Reference 62
Source-reported events for the cited work
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No inbound Pith citation observations are available.