Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-14T12:29:34.990371Z
Paper Citation Record · LEDGER
As of 15 August 2026, this Paper Citation Record lists 23 of 23 outbound references and 0 inbound Pith citation observations for arXiv:1908.07116.
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 2026-08-14T12:29:34.990371Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-15T06:32:42.880941+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
23 of 23 outbound references displayed
External citation measurements
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Observation 7558958b-093b-4b57-bb37-589b3fe27e77 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Synthesizing Robust Adversarial Examples
Reference 1
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Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Towards evaluating the robustness of neural net- works
Reference 3
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Observation 135e4f66-8b8e-4c26-aba5-3209dccb82a9 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses EAD: Elastic-Net Attacks to Deep Neural Networks via Adversarial Examples
Reference 4
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Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Dhillon, Kamyar Aziz- zadenesheli, Jeremy D
Reference 5
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Observation de49af6e-0c62-450e-b882-80c4ebf280d7 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Explaining and Harnessing Adversarial Examples
Reference 7
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Observation d2890338-764f-446e-8123-e03fe229b0a2 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Towards Robust Neural Networks via Random Self-ensemble
Reference 12
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Observation abdf9768-1204-4e38-babd-c1e0177bc8ff · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Towards Deep Learning Models Resistant to Adversarial Attacks
Reference 13
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Observation 2d6a7045-b1bb-4011-af71-3952fd431663 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Training neural network classifiers for medical decision making: The effects of imbalanced datasets on classification performance
Reference 14
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Observation cbaebb95-92b1-485c-8dc8-c8b687941882 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Is robustness the cost of accuracy?–a comprehensive study on the robust- ness of 18 deep image classification models
Reference 17
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Observation 553e4f3c-7438-4778-b3b2-2a97714cf771 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Intriguing properties of neural networks
Reference 18
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Observation 09709e8e-cd04-4895-bfd1-85c94eb64a24 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Using deep learning to extract scenery infor- mation in real time spatiotemporal compressed sensing
Reference 20
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Observation 36e57a19-5c51-41fd-8c22-0adafab9efac · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses An admm-based universal framework for ad- versarial attacks on deep neural networks
Reference 21
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Observation 4d81573c-6561-461b-b5c9-6591c32fa456 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Fault sneaking attack: A stealthy framework for misleading deep neural networks
Reference 22
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Observation 2cf837a8-a68a-4196-81b4-579cd6c472fc · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Unresolved cited work
Reference 30
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Observation 0da9b32e-e5c9-4a0c-98ba-5e79acc19e1e · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses The mnist database of hand- written digits
Reference 1998
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Observation 6d56cbe4-3c02-4b10-9da9-fad3b2f39adf · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Distillation as a defense to adversarial perturbations against deep neu- ral networks
Reference 2008
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 7bfcd256-09be-4326-9681-721babd58e8e · outbound
Reference 2009
Source-reported events for the cited work
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Observation eb077d57-03cd-49ec-868d-3a63586f8990 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Ensemble Adversarial Training: Attacks and Defenses
Reference 2013
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Observation 83fba3a8-1374-4579-a102-2711b483bc6d · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Learning multiple layers of features from tiny images
Reference 2014
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Observation e5eb3dd4-7072-4b62-8ae6-3d2c8f98bb74 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Convolutional neural network architectures for matching natural language sentences
Reference 2015
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Observation 3a73961b-733c-44ec-8405-f0699cd4a1ce · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Dropout: a simple way to prevent neural networks from overfitting
Reference 2016
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Observation 52594590-9b1e-42c2-aed7-899df2e50bd4 · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Obfuscated Gradients Give a False Sense of Security: Circumventing Defenses to Adversarial Examples
Reference 2017
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Observation d69a2a91-d532-4547-9230-dfe68e754fea · outbound
Protecting Neural Networks with Hierarchical Random Switching: Towards Better Robustness-Accuracy Trade-off for Stochastic Defenses Adversarial Reprogramming of Neural Networks
Reference 2018
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No inbound Pith citation observations are available.