SOTAVerified

Computational Efficiency

Methods and optimizations to reduce the computational resources (e.g., time, memory, or power) needed for training and inference in models. This involves techniques that streamline processing, optimize algorithms, or leverage hardware to enhance performance without compromising accuracy.

Papers

Showing 42414250 of 4891 papers

TitleStatusHype
CHIRRUP: a practical algorithm for unsourced multiple access0
Randomized Exploration for Non-Stationary Stochastic Linear BanditsCode0
MDFN: Multi-Scale Deep Feature Learning Network for Object Detection0
Deep Neural Network for Fast and Accurate Single Image Super-Resolution via Channel-Attention-based Fusion of Orientation-aware Features0
Learning a Neural 3D Texture Space from 2D ExemplarsCode0
Value-of-Information based Arbitration between Model-based and Model-free Control0
Oracle-Efficient Algorithms for Online Linear Optimization with Bandit Feedback0
Unsupervised Discovery of Temporal Structure in Noisy Data with Dynamical Components AnalysisCode0
Learning Positive Functions with Pseudo Mirror Descent0
Singleshot : a scalable Tucker tensor decomposition0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1ViTaLHamming Loss0.05Unverified