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 26762700 of 4891 papers

TitleStatusHype
Scalable Vehicle Re-Identification via Self-Supervision0
Scale-free Unconstrained Online Learning for Curved Losses0
ScaleGNN: Towards Scalable Graph Neural Networks via Adaptive High-order Neighboring Feature Fusion0
Scaling Bayesian inference of mixed multinomial logit models to very large datasets0
Scaling Continuous Kernels with Sparse Fourier Domain Learning0
Scaling Laws for Sparsely-Connected Foundation Models0
SCASeg: Strip Cross-Attention for Efficient Semantic Segmentation0
Scatter-based common spatial patterns -- a unified spatial filtering framework0
Scattering and Gathering for Spatially Varying Blurs0
Scatter Matrix Concordance: A Diagnostic for Regressions on Subsets of Data0
Schreier-Coset Graph Propagation0
SC-MoE: Switch Conformer Mixture of Experts for Unified Streaming and Non-streaming Code-Switching ASR0
SDoH-GPT: Using Large Language Models to Extract Social Determinants of Health (SDoH)0
SDP: Spiking Diffusion Policy for Robotic Manipulation with Learnable Channel-Wise Membrane Thresholds0
SDR-Former: A Siamese Dual-Resolution Transformer for Liver Lesion Classification Using 3D Multi-Phase Imaging0
SDVTracker: Real-Time Multi-Sensor Association and Tracking for Self-Driving Vehicles0
Search-contempt: a hybrid MCTS algorithm for training AlphaZero-like engines with better computational efficiency0
Searching for COMETINHO: The Little Metric That Could0
Seeing Unseen: Discover Novel Biomedical Concepts via Geometry-Constrained Probabilistic Modeling0
Seesaw: High-throughput LLM Inference via Model Re-sharding0
SegINR: Segment-wise Implicit Neural Representation for Sequence Alignment in Neural Text-to-Speech0
Segment Any Crack: Deep Semantic Segmentation Adaptation for Crack Detection0
Segregation and Context Aggregation Network for Real-time Cloud Segmentation0
SeismicNet: Physics-informed neural networks for seismic wave modeling in semi-infinite domain0
Seismic wave propagation and inversion with Neural Operators0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1ViTaLHamming Loss0.05Unverified