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J. Carbonera

4 papers hereh-index 5118 citations31 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • middle author1
  • last author3

Across the 4 of 4 papers where every author was matched, so the position is known.

fields
  • cs.LG3
  • cs.CV1

identity via Semantic Scholar / OpenAlex

activity
20242026
collaborators

4 papers

cs.LG2026

Silhouette Loss: Differentiable Global Structure Learning for Deep Representations

Matheus Vinícius Todescato, Joel Luís Carbonera

Learning discriminative representations is a central goal of supervised deep learning. While cross-entropy (CE) remains the dominant objective for classification, it does not expli…

cs.CV2025

No Labels Needed: Zero-Shot Image Classification with Collaborative Self-Learning

Matheus Vinícius Todescato, Joel Luís Carbonera

While deep learning, including Convolutional Neural Networks (CNNs) and Vision Transformers (ViTs), has significantly advanced classification performance, its typical reliance on e…

cs.LG2025

An approach based on class activation maps for investigating the effects of data augmentation on neural networks for image classification

Lucas M. Dorneles, Luan Fonseca Garcia, Joel Luís Carbonera

Neural networks have become increasingly popular in the last few years as an effective tool for the task of image classification due to the impressive performance they have achieve…

cs.LG2024

A Framework for testing Federated Learning algorithms using an edge-like environment

Felipe Machado Schwanck, Marcos Tomazzoli Leipnitz, Joel Luís Carbonera +1

Federated Learning (FL) is a machine learning paradigm in which many clients cooperatively train a single centralized model while keeping their data private and decentralized. FL i…

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