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 151175 of 1706 papers

TitleStatusHype
Direct Multitype Cardiac Indices Estimation via Joint Representation and Regression LearningCode0
Detecting Unsuccessful Students in Cybersecurity Exercises in Two Different Learning EnvironmentsCode0
Detecting Singleton Spams in Reviews via Learning Deep Anomalous Temporal Aspect-Sentiment PatternsCode0
Disfluency Detection using Auto-Correlational Neural NetworksCode0
Dominant motion identification of multi-particle system using deep learning from videoCode0
Empowering Machines to Think Like Chemists: Unveiling Molecular Structure-Polarity Relationships with Hierarchical Symbolic RegressionCode0
DeepTriangle: A Deep Learning Approach to Loss ReservingCode0
Deep Tracking: Seeing Beyond Seeing Using Recurrent Neural NetworksCode0
Deep Voice: Real-time Neural Text-to-SpeechCode0
deepQuest: A Framework for Neural-based Quality EstimationCode0
De-identification of Patient Notes with Recurrent Neural NetworksCode0
Deep Learning-Based Noninvasive Screening of Type 2 Diabetes with Chest X-ray Images and Electronic Health RecordsCode0
A deep learning framework for Text-independent Writer IdentificationCode0
Deep Learning Chromatic and Clique Numbers of GraphsCode0
Deep Learning Applications for Intrusion Detection in Network TrafficCode0
Deep Learning-Based Automatic Downbeat Tracking: A Brief ReviewCode0
Deep Learning for Answer Sentence SelectionCode0
DeepFM: An End-to-End Wide & Deep Learning Framework for CTR PredictionCode0
Deep-HiTS: Rotation Invariant Convolutional Neural Network for Transient DetectionCode0
Deep Convolutional Neural Network Applied to Electroencephalography: Raw Data vs Spectral FeaturesCode0
Deep Impression: Audiovisual Deep Residual Networks for Multimodal Apparent Personality Trait RecognitionCode0
DeepAtom: A Framework for Protein-Ligand Binding Affinity PredictionCode0
Deep Affix Features Improve Neural Named Entity RecognizersCode0
DeepCCI: End-to-end Deep Learning for Chemical-Chemical Interaction PredictionCode0
AI-enabled Prediction of eSports Player Performance Using the Data from Heterogeneous SensorsCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CNN14 gestures accuracy0.98Unverified