activity
20152023
most citedUnsupervised Label Noise Modeling and Loss Correction

198 citations · 379 across the 26 of their papers we have counts for

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31 papers · 1 filter

cs.CV20231 cited

Fashion CUT: Unsupervised domain adaptation for visual pattern classification in clothes using synthetic data and pseudo-labels

Enric Moreu, Alex Martinelli, Martina Naughton +2

Accurate product information is critical for e-commerce stores to allow customers to browse, filter, and search for products. Product data quality is affected by missing or incorre…

cs.CV2022

Utilizing unsupervised learning to improve sward content prediction and herbage mass estimation

Paul Albert, Mohamed Saadeldin, Badri Narayanan +5

Sward species composition estimation is a tedious one. Herbage must be collected in the field, manually separated into components, dried and weighed to estimate species composition…

cs.CV2022

Unsupervised domain adaptation and super resolution on drone images for autonomous dry herbage biomass estimation

Paul Albert, Mohamed Saadeldin, Badri Narayanan +5

Herbage mass yield and composition estimation is an important tool for dairy farmers to ensure an adequate supply of high quality herbage for grazing and subsequently milk producti…

cs.CV20222 cited

Domain Randomization for Object Counting

Enric Moreu, Kevin McGuinness, Diego Ortego +1

Recently, the use of synthetic datasets based on game engines has been shown to improve the performance of several tasks in computer vision. However, these datasets are typically o…

cs.CV2021

How Important is Importance Sampling for Deep Budgeted Training?

Eric Arazo, Diego Ortego, Paul Albert +2

Long iterative training processes for Deep Neural Networks (DNNs) are commonly required to achieve state-of-the-art performance in many computer vision tasks. Importance sampling a…

cs.CV2021

Semi-supervised dry herbage mass estimation using automatic data and synthetic images

Paul Albert, Mohamed Saadeldin, Badri Narayanan +5

Monitoring species-specific dry herbage biomass is an important aspect of pasture-based milk production systems. Being aware of the herbage biomass in the field enables farmers to…