Search Results for author: Marcos V. Conde

Found 36 papers, 34 papers with code

NTIRE 2024 Challenge on Low Light Image Enhancement: Methods and Results

3 code implementations22 Apr 2024 Xiaoning Liu, Zongwei Wu, Ao Li, Florin-Alexandru Vasluianu, Yulun Zhang, Shuhang Gu, Le Zhang, Ce Zhu, Radu Timofte, Zhi Jin, Hongjun Wu, Chenxi Wang, Haitao Ling, Yuanhao Cai, Hao Bian, Yuxin Zheng, Jing Lin, Alan Yuille, Ben Shao, Jin Guo, Tianli Liu, Mohao Wu, Yixu Feng, Shuo Hou, Haotian Lin, Yu Zhu, Peng Wu, Wei Dong, Jinqiu Sun, Yanning Zhang, Qingsen Yan, Wenbin Zou, Weipeng Yang, Yunxiang Li, Qiaomu Wei, Tian Ye, Sixiang Chen, Zhao Zhang, Suiyi Zhao, Bo wang, Yan Luo, Zhichao Zuo, Mingshen Wang, Junhu Wang, Yanyan Wei, Xiaopeng Sun, Yu Gao, Jiancheng Huang, Hongming Chen, Xiang Chen, Hui Tang, Yuanbin Chen, Yuanbo Zhou, Xinwei Dai, Xintao Qiu, Wei Deng, Qinquan Gao, Tong Tong, Mingjia Li, Jin Hu, Xinyu He, Xiaojie Guo, sabarinathan, K Uma, A Sasithradevi, B Sathya Bama, S. Mohamed Mansoor Roomi, V. Srivatsav, Jinjuan Wang, Long Sun, Qiuying Chen, Jiahong Shao, Yizhi Zhang, Marcos V. Conde, Daniel Feijoo, Juan C. Benito, Alvaro García, Jaeho Lee, Seongwan Kim, Sharif S M A, Nodirkhuja Khujaev, Roman Tsoy, Ali Murtaza, Uswah Khairuddin, Ahmad 'Athif Mohd Faudzi, Sampada Malagi, Amogh Joshi, Nikhil Akalwadi, Chaitra Desai, Ramesh Ashok Tabib, Uma Mudenagudi, Wenyi Lian, Wenjing Lian, Jagadeesh Kalyanshetti, Vijayalaxmi Ashok Aralikatti, Palani Yashaswini, Nitish Upasi, Dikshit Hegde, Ujwala Patil, Sujata C, Xingzhuo Yan, Wei Hao, Minghan Fu, Pooja Choksy, Anjali Sarvaiya, Kishor Upla, Kiran Raja, Hailong Yan, Yunkai Zhang, Baiang Li, Jingyi Zhang, Huan Zheng

This paper reviews the NTIRE 2024 low light image enhancement challenge, highlighting the proposed solutions and results.

4k Low-Light Image Enhancement +1

Deep Portrait Quality Assessment. A NTIRE 2024 Challenge Survey

1 code implementation17 Apr 2024 Nicolas Chahine, Marcos V. Conde, Daniela Carfora, Gabriel Pacianotto, Benoit Pochon, Sira Ferradans, Radu Timofte

This paper reviews the NTIRE 2024 Portrait Quality Assessment Challenge, highlighting the proposed solutions and results.

Simple Image Signal Processing using Global Context Guidance

1 code implementation17 Apr 2024 Omar Elezabi, Marcos V. Conde, Radu Timofte

First, we propose a novel module that can be integrated into any neural ISP to capture the global context information from the full RAW images.

Color Constancy Tone Mapping

InstructIR: High-Quality Image Restoration Following Human Instructions

1 code implementation29 Jan 2024 Marcos V. Conde, Gregor Geigle, Radu Timofte

All-In-One image restoration models can effectively restore images from various types and levels of degradation using degradation-specific information as prompts to guide the restoration model.

Deblurring Image Denoising +4

BSRAW: Improving Blind RAW Image Super-Resolution

1 code implementation24 Dec 2023 Marcos V. Conde, Florin Vasluianu, Radu Timofte

Our BSRAW models trained with our pipeline can upscale real-scene RAW images and improve their quality.

Image Super-Resolution

Efficient Baselines for Motion Prediction in Autonomous Driving

1 code implementation6 Sep 2023 Carlos Gómez-Huélamo, Marcos V. Conde, Rafael Barea, Manuel Ocaña, Luis M. Bergasa

However, despite many approaches use simple ConvNets and LSTMs to obtain the social latent features, State-Of-The-Art (SOTA) models might be too complex for real-time applications when using both sources of information (map and past trajectories) as well as little interpretable, specially considering the physical information.

Motion Forecasting motion prediction

Rapid Deforestation and Burned Area Detection using Deep Multimodal Learning on Satellite Imagery

1 code implementation10 Jul 2023 Gabor Fodor, Marcos V. Conde

Our method successfully achieves high-precision deforestation estimation and burned area detection on unseen images from the region.

Fire Detection

NILUT: Conditional Neural Implicit 3D Lookup Tables for Image Enhancement

1 code implementation20 Jun 2023 Marcos V. Conde, Javier Vazquez-Corral, Michael S. Brown, Radu Timofte

Moreover, a NILUT can be extended to incorporate multiple styles into a single network with the ability to blend styles implicitly.

Color Manipulation Photo Retouching +1

h2oGPT: Democratizing Large Language Models

2 code implementations13 Jun 2023 Arno Candel, Jon McKinney, Philipp Singer, Pascal Pfeiffer, Maximilian Jeblick, Prithvi Prabhu, Jeff Gambera, Mark Landry, Shivam Bansal, Ryan Chesler, Chun Ming Lee, Marcos V. Conde, Pasha Stetsenko, Olivier Grellier, SriSatish Ambati

Applications built on top of Large Language Models (LLMs) such as GPT-4 represent a revolution in AI due to their human-level capabilities in natural language processing.

Chatbot Fairness +9

Efficient multi-lens bokeh effect rendering and transformation

1 code implementation CVPR 2023 Tim Seizinger, Marcos V. Conde, Manuel Kolmet, Tom E. Bishop, Radu Timofte

Our method can render Bokeh from an all-in-focus image, or transform the Bokeh of one lens to the effect of another lens without harming the sharp foreground regions in the image.

Bokeh Effect Rendering

Efficient Deep Models for Real-Time 4K Image Super-Resolution. NTIRE 2023 Benchmark and Report

1 code implementation CVPRW 2023 Marcos V. Conde, Eduard Zamfir, Radu Timofte, Daniel Motilla, and others

This paper introduces a novel benchmark for efficient upscaling as part of the NTIRE 2023 Real-Time Image Super-Resolution (RTSR) Challenge, which aimed to upscale images from 720p and 1080p resolution to native 4K (x2 and x3 factors) in real-time on commercial GPUs.

4k Image Super-Resolution

Towards Real-Time 4K Image Super-Resolution

2 code implementations CVPRW 2023 Eduard Zamfir, Marcos V. Conde, Radu Timofte

Over the past few years, high-definition videos and images in 720p (HD), 1080p (FHD), and 4K (UHD) resolution have become standard.

4k Image Super-Resolution

Real-Time Under-Display Cameras Image Restoration and HDR on Mobile Devices

1 code implementation25 Nov 2022 Marcos V. Conde, Florin Vasluianu, Sabari Nathan, Radu Timofte

We propose a lightweight model for blind UDC Image Restoration and HDR, and we also provide a benchmark comparing the performance and runtime of different methods on smartphones.

Image Restoration

A Brief Overview of AI Governance for Responsible Machine Learning Systems

1 code implementation21 Nov 2022 Navdeep Gill, Abhishek Mathur, Marcos V. Conde

Organizations of all sizes, across all industries and domains are leveraging artificial intelligence (AI) technologies to solve some of their biggest challenges around operations, customer experience, and much more.

Perceptual Image Enhancement for Smartphone Real-Time Applications

1 code implementation24 Oct 2022 Marcos V. Conde, Florin Vasluianu, Javier Vazquez-Corral, Radu Timofte

Our experiments show that, with much fewer parameters and operations, our model can deal with the mentioned artifacts and achieve competitive performance compared with state-of-the-art methods on standard benchmarks.

2k HDR Reconstruction +4

General Image Descriptors for Open World Image Retrieval using ViT CLIP

1 code implementation20 Oct 2022 Marcos V. Conde, Ivan Aerlic, Simon Jégou

The Google Universal Image Embedding (GUIE) Challenge is one of the first competitions in multi-domain image representations in the wild, covering a wide distribution of objects: landmarks, artwork, food, etc.

Image Retrieval Retrieval +3

Swin2SR: SwinV2 Transformer for Compressed Image Super-Resolution and Restoration

2 code implementations22 Sep 2022 Marcos V. Conde, Ui-Jin Choi, Maxime Burchi, Radu Timofte

Using this method we can tackle the major issues in training transformer vision models, such as training instability, resolution gaps between pre-training and fine-tuning, and hunger on data.

Compressed Image Super-resolution Image Super-Resolution +1

Exploring Map-based Features for Efficient Attention-based Vehicle Motion Prediction

1 code implementation25 May 2022 Carlos Gómez-Huélamo, Marcos V. Conde, Miguel Ortiz

Motion prediction (MP) of multiple agents is a crucial task in arbitrarily complex environments, from social robots to self-driving cars.

Autonomous Driving motion prediction +1

CLIP-Art: Contrastive Pre-training for Fine-Grained Art Classification

2 code implementations Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR) Workshops 2021 Marcos V. Conde, Kerem Turgutlu

Existing computer vision research in artwork struggles with artwork's fine-grained attributes recognition and lack of curated annotated datasets due to their costly creation.

Attribute Classification +4

Conformer and Blind Noisy Students for Improved Image Quality Assessment

1 code implementation27 Apr 2022 Marcos V. Conde, Maxime Burchi, Radu Timofte

Learning-based approaches for perceptual image quality assessment (IQA) usually require both the distorted and reference image for measuring the perceptual quality accurately.

Blind Image Quality Assessment Image Restoration +3

An Embarrassingly Pragmatic Introduction to Vision-based Autonomous Robots

no code implementations15 Nov 2021 Marcos V. Conde

Autonomous robots are currently one of the most popular Artificial Intelligence problems, having experienced significant advances in the last decade, from Self-driving cars and humanoids to delivery robots and drones.

Autonomous Driving Self-Driving Cars

Weakly-Supervised Classification and Detection of Bird Sounds in the Wild.

1 code implementation CLEF 2021 Marcos V. Conde, Kumar Shubham, Prateek Agnihotri, Nitin D. Movva, Szilard Bessenyei

It is easier to hear birds than see them, however, they still play an essential role in nature and they are excellent indicators of deteriorating environmental quality and pollution.

Audio Classification Audio Tagging +3

Exploring Vision Transformers for Fine-grained Classification

1 code implementation19 Jun 2021 Marcos V. Conde, Kerem Turgutlu

In this work, we propose a multi-stage ViT framework for fine-grained image classification tasks, which localizes the informative image regions without requiring architectural changes using the inherent multi-head self-attention mechanism.

Classification Fine-Grained Image Classification

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