SOTAVerified

Feature Engineering

Feature engineering is the process of taking a dataset and constructing explanatory variables — features — that can be used to train a machine learning model for a prediction problem. Often, data is spread across multiple tables and must be gathered into a single table with rows containing the observations and features in the columns.

The traditional approach to feature engineering is to build features one at a time using domain knowledge, a tedious, time-consuming, and error-prone process known as manual feature engineering. The code for manual feature engineering is problem-dependent and must be re-written for each new dataset.

Papers

Showing 501550 of 1706 papers

TitleStatusHype
Automatic Seizure Prediction using CNN and LSTM0
Feature Engineering vs BERT on Twitter Data0
End-to-end Ensemble-based Feature Selection for Paralinguistics Tasks0
QUILL: Query Intent with Large Language Models using Retrieval Augmentation and Multi-stage Distillation0
Explaining Translationese: why are Neural Classifiers Better and what do they Learn?0
Tools for Extracting Spatio-Temporal Patterns in Meteorological Image Sequences: From Feature Engineering to Attention-Based Neural Networks0
Feature Engineering and Classification Models for Partial Discharge in Power Transformers0
Machine Learning for K-adaptability in Two-stage Robust OptimizationCode0
DPIS: An Enhanced Mechanism for Differentially Private SGD with Importance Sampling0
Application of Explainable Machine Learning in Detecting and Classifying Ransomware Families Based on API Call Analysis0
Object-Category Aware Reinforcement Learning0
Less is More: Facial Landmarks can Recognize a Spontaneous SmileCode0
Temporal Spatial Decomposition and Fusion Network for Time Series Forecasting0
Point Cloud Recognition with Position-to-Structure Attention Transformers0
EM-PERSONA: EMotion-assisted Deep Neural Framework for PERSONAlity Subtyping from Suicide Notes0
Automated Mobile Attention KPConv Networks via a Wide and Deep Predictor0
FeatureBox: Feature Engineering on GPUs for Massive-Scale Ads Systems0
Estimating Brain Age with Global and Local Dependencies0
Self-Optimizing Feature Transformation0
Prediction of the outcome of a Twenty-20 Cricket Match : A Machine Learning Approach0
Everybody likes short sentences - A Data Analysis for the Text Complexity DE Challenge 20220
Tackling Data Drift with Adversarial Validation: An Application for German Text Complexity Estimation0
Fraud Dataset Benchmark and ApplicationsCode2
Lateral Movement Detection Using User Behavioral Analysis0
Artificial Neural Networks for Finger Vein Recognition: A Survey0
An Empirical Study on the Usage of Automated Machine Learning ToolsCode0
Interpretable (not just posthoc-explainable) medical claims modeling for discharge placement to prevent avoidable all-cause readmissions or death0
Survey on Evolutionary Deep Learning: Principles, Algorithms, Applications and Open Issues0
Application of federated learning techniques for arrhythmia classification using 12-lead ECG signals0
Pseudo-Labels Are All You Need0
RRWaveNet: A Compact End-to-End Multi-Scale Residual CNN for Robust PPG Respiratory Rate Estimation0
KDD CUP 2022 Wind Power Forecasting Team 88VIP Solution0
Efficient Novelty Detection Methods for Early Warning of Potential Fatal DiseasesCode0
A novel deep learning-based approach for sleep apnea detection using single-lead ECG signals0
Explaining Classifiers Trained on Raw Hierarchical Multiple-Instance Data0
GenHPF: General Healthcare Predictive Framework with Multi-task Multi-source LearningCode1
Golden Reference-Free Hardware Trojan Localization using Graph Convolutional Network0
On Merging Feature Engineering and Deep Learning for Diagnosis, Risk-Prediction and Age Estimation Based on the 12-Lead ECG0
Generative Adversarial Networks Applied to Synthetic Financial Scenarios Generation0
MACFE: A Meta-learning and Causality Based Feature Engineering FrameworkCode0
Plumeria at SemEval-2022 Task 6: Sarcasm Detection for English and Arabic Using Transformers and Data Augmentation0
Amrita_CEN at SemEval-2022 Task 6: A Machine Learning Approach for Detecting Intended Sarcasm using Oversampling0
Amrita_CEN at SemEval-2022 Task 4: Oversampling-based Machine Learning Approach for Detecting Patronizing and Condescending Language0
Helsinki-NLP at SemEval-2022 Task 2: A Feature-Based Approach to Multilingual Idiomaticity Detection0
Few-shot incremental learning in the context of solar cell quality inspection0
Using Person Embedding to Enrich Features and Data Augmentation for Classification0
Vibration fault detection in wind turbines based on normal behaviour models without feature engineering0
A multi-model-based deep learning framework for short text multiclass classification with the imbalanced and extremely small data set0
Efficient End-to-End AutoML via Scalable Search Space DecompositionCode1
Energy reconstruction for large liquid scintillator detectors with machine learning techniques: aggregated features approach0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CNN14 gestures accuracy0.98Unverified