2019
DOI: 10.1007/978-3-030-30619-9_23
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Protecting the Visual Fidelity of Machine Learning Datasets Using QR Codes

Abstract: Machine learning is becoming increasingly popular in a variety of modern technology. However, research has demonstrated that machine learning models are vulnerable to adversarial examples in their inputs. Potential attacks include poisoning datasets by perturbing input samples to mislead a machine learning model into producing undesirable results. Such perturbations are often subtle and imperceptible from a human's perspective. This paper investigates two methods of verifying the visual fidelity of image based… Show more

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