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 14761500 of 1706 papers

TitleStatusHype
Multi-Level Network Embedding with Boosted Low-Rank Matrix ApproximationCode0
Transition-Based Neural Word SegmentationCode0
CESI: Canonicalizing Open Knowledge Bases using Embeddings and Side InformationCode0
A Graph-based Model for Joint Chinese Word Segmentation and Dependency ParsingCode0
A Two Dimensional Feature Engineering Method for Relation ExtractionCode0
PyRATA, Python Rule-based feAture sTructure AnalysisCode0
Multimodal Speech Emotion Recognition and Ambiguity ResolutionCode0
Seq2seq Dependency ParsingCode0
Effective Illicit Account Detection on Large Cryptocurrency MultiGraphsCode0
Quantifying yeast colony morphologies with feature engineering from time-lapse photographyCode0
Incorporating Word Attention into Character-Based Word SegmentationCode0
Identifying Expert Behavior in Offline Training Datasets Improves Behavioral Cloning of Robotic Manipulation PoliciesCode0
A Simple Fusion of Deep and Shallow Learning for Acoustic Scene ClassificationCode0
Deduplication Over Heterogeneous Attribute Types (D-HAT)Code0
Efficient Novelty Detection Methods for Early Warning of Potential Fatal DiseasesCode0
We used Neural Networks to Detect Clickbaits: You won't believe what happened Next!Code0
Efficient Structured Inference for Transition-Based Parsing with Neural Networks and Error StatesCode0
Multiple perspectives HMM-based feature engineering for credit card fraud detectionCode0
ServeNet: A Deep Neural Network for Web Services ClassificationCode0
Egocentric Spatial MemoryCode0
AdvanceSplice: Integrating N-gram one-hot encoding and ensemble modeling for enhanced accuracyCode0
A domain-agnostic approach for opinion prediction on speechCode0
INFODENS: An Open-source Framework for Learning Text RepresentationsCode0
A deep learning framework for Text-independent Writer IdentificationCode0
ELF-Gym: Evaluating Large Language Models Generated Features for Tabular PredictionCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CNN14 gestures accuracy0.98Unverified