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 10511100 of 1706 papers

TitleStatusHype
Fake News Detection using Stance Classification: A Survey0
Combining Machine Learning and Social Network Analysis to Reveal the Organizational Structures0
Image Retrieval and Pattern Spotting using Siamese Neural Network0
Low-resource Deep Entity Resolution with Transfer and Active Learning0
Exploiting Unsupervised Pre-training and Automated Feature Engineering for Low-resource Hate Speech Detection in Polish0
Computing Committor Functions for the Study of Rare Events Using Deep Learning0
Deep Learning-Based Automatic Downbeat Tracking: A Brief ReviewCode0
Streaming Adaptive Nonparametric Variational Autoencoder0
Automatic Health Problem Detection from Gait Videos Using Deep Neural NetworksCode0
Beyond Context: A New Perspective for Word Embeddings0
CodeForTheChange at SemEval-2019 Task 8: Skip-Thoughts for Fact Checking in Community Question Answering0
UC Davis at SemEval-2019 Task 1: DAG Semantic Parsing with Attention-based Decoder0
The binary trio at SemEval-2019 Task 5: Multitarget Hate Speech Detection in Tweets0
Highly Effective Arabic Diacritization using Sequence to Sequence Modeling0
Podlab at SemEval-2019 Task 3: The Importance of Being Shallow0
Incorporating Word Attention into Character-Based Word SegmentationCode0
Breast mass classification in ultrasound based on Kendall's shape manifold0
Approximation Ratios of Graph Neural Networks for Combinatorial Problems0
Multiple perspectives HMM-based feature engineering for credit card fraud detectionCode0
Knowledge-aware Graph Neural Networks with Label Smoothness Regularization for Recommender SystemsCode0
Feature Selection and Feature Extraction in Pattern Analysis: A Literature ReviewCode0
Computing committor functions for the study of rare events using deep learning with importance sampling0
Selectivity Estimation for Range Predicates using Lightweight Models0
Fake News Early Detection: An Interdisciplinary Study0
Latent Variable Session-Based Recommendation0
A bag-of-concepts model improves relation extraction in a narrow knowledge domain with limited data0
DDGK: Learning Graph Representations for Deep Divergence Graph KernelsCode0
Predict Future Sales using Ensembled Random Forests0
Causality Extraction based on Self-Attentive BiLSTM-CRF with Transferred EmbeddingsCode0
An attention-based BiLSTM-CRF approach to document-level chemical named entity recognitionCode0
Multimodal Speech Emotion Recognition and Ambiguity ResolutionCode0
Feature Engineering for Mid-Price Prediction with Deep Learning0
ReinBo: Machine Learning pipeline search and configuration with Bayesian Optimization embedded Reinforcement LearningCode0
A Graph-based Model for Joint Chinese Word Segmentation and Dependency ParsingCode0
ASSERT: Anti-Spoofing with Squeeze-Excitation and Residual neTworksCode0
On the Vulnerability of CNN Classifiers in EEG-Based BCIs0
The Landscape of R Packages for Automated Exploratory Data AnalysisCode0
Activation Analysis of a Byte-Based Deep Neural Network for Malware ClassificationCode0
SAFE ML: Surrogate Assisted Feature Extraction for Model LearningCode0
Field-aware Neural Factorization Machine for Click-Through Rate Prediction0
Leveraging Knowledge Bases in LSTMs for Improving Machine Reading0
Forecasting the 2017-2018 Yemen Cholera Outbreak with Machine Learning0
Recurrent Neural Networks with Stochastic Layers for Acoustic Novelty DetectionCode0
Machine learning and chord based feature engineering for genre prediction in popular Brazilian musicCode0
The Spatially-Conscious Machine Learning Model0
CESI: Canonicalizing Open Knowledge Bases using Embeddings and Side InformationCode0
Flexible Operator Embeddings via Deep Learning0
Extracting PICO elements from RCT abstracts using 1-2gram analysis and multitask classification0
The autofeat Python Library for Automated Feature Engineering and SelectionCode0
A Comparative Analysis of Android Malware0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CNN14 gestures accuracy0.98Unverified