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 30013050 of 4891 papers

TitleStatusHype
These Maps Are Made by Propagation: Adapting Deep Stereo Networks to Road Scenarios with Decisive Disparity Diffusion0
The Significance of Machine Learning in Clinical Disease Diagnosis: A Review0
The Solution for the AIGC Inference Performance Optimization Competition0
The Stabilized Explicit Variable-Load Solver with Machine Learning Acceleration for the Rapid Solution of Stiff Chemical Kinetics0
The Symmetry of a Simple Optimization Problem in Lasso Screening0
The thermodynamic efficiency of computations made in cells across the range of life0
The Ultimate Guide to Fine-Tuning LLMs from Basics to Breakthroughs: An Exhaustive Review of Technologies, Research, Best Practices, Applied Research Challenges and Opportunities0
The use of deep learning in image segmentation, classification and detection0
The Variational Bayesian Inference for Network Autoregression Models0
The Weak Form Is Stronger Than You Think0
THINK-Bench: Evaluating Thinking Efficiency and Chain-of-Thought Quality of Large Reasoning Models0
Think Beyond Size: Adaptive Prompting for More Effective Reasoning0
Threshold Neuron: A Brain-inspired Artificial Neuron for Efficient On-device Inference0
Threshold Strategy for Leaking Corner-Free Hamilton-Jacobi Reachability with Decomposed Computations0
Tighter sparse variational Gaussian processes0
Tightly Coupled Learning Strategy for Weakly Supervised Hierarchical Place Recognition0
TIM: An Efficient Temporal Interaction Module for Spiking Transformer0
Time-Aware Knowledge Representations of Dynamic Objects with Multidimensional Persistence0
Time-Domain Operational Metrics for Real-time Resilience Assessment in DC Microgrids0
Scheduling HVAC loads to promote renewable generation integration with a learning-based joint chance-constrained approach0
Time-Varying Dynamic Bayesian Networks0
TiMEx: A Waiting Time Model for Mutually Exclusive Groups of Cancer Alterations0
TinyMetaFed: Efficient Federated Meta-Learning for TinyML0
Tiny-Toxic-Detector: A compact transformer-based model for toxic content detection0
TLINet: Differentiable Neural Network Temporal Logic Inference0
Token Dynamics: Towards Efficient and Dynamic Video Token Representation for Video Large Language Models0
Token Fusion: Bridging the Gap between Token Pruning and Token Merging0
ToolACE-R: Tool Learning with Adaptive Self-Refinement0
Tool flank wear prediction using high-frequency machine data from industrial edge device0
TopK Language Models0
TorchMD-Net 2.0: Fast Neural Network Potentials for Molecular Simulations0
TorchMD-NET: Equivariant Transformers for Neural Network based Molecular Potentials0
To Repair or Not to Repair? Investigating the Importance of AB-Cycles for the State-of-the-Art TSP Heuristic EAX0
Toward Efficient Automated Feature Engineering0
Toward Fast and Accurate Neural Chinese Word Segmentation with Multi-Criteria Learning0
An unsupervised, open-source workflow for 2D and 3D building mapping from airborne LiDAR data0
Towards a physically realistic computationally efficient DVS pixel model0
Towards Artificial General or Personalized Intelligence? A Survey on Foundation Models for Personalized Federated Intelligence0
Towards Assessing Deep Learning Test Input Generators0
Towards a Systematic Computational Framework for Modeling Multi-Agent Decision-Making at Micro Level for Smart Vehicles in a Smart World0
Towards a Theory of Intentions for Human-Robot Collaboration0
Towards a variational Jordan-Lee-Preskill quantum algorithm0
Towards Better Sample Efficiency in Multi-Agent Reinforcement Learning via Exploration0
Towards Compute-Optimal Transfer Learning0
Towards Efficient Large Scale Spatial-Temporal Time Series Forecasting via Improved Inverted Transformers0
HYPER-SNN: Towards Energy-efficient Quantized Deep Spiking Neural Networks for Hyperspectral Image Classification0
Towards Fairer and More Efficient Federated Learning via Multidimensional Personalized Edge Models0
Towards Fast and Accurate Neural Chinese Word Segmentation with Multi-Criteria Learning0
Towards Gaussian Process for operator learning: an uncertainty aware resolution independent operator learning algorithm for computational mechanics0
Trustworthy and Practical AI for Healthcare: A Guided Deferral System with Large Language Models0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1ViTaLHamming Loss0.05Unverified