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 11511200 of 1706 papers

TitleStatusHype
INESC-ID at SemEval-2016 Task 4-A: Reducing the Problem of Out-of-Embedding Words0
INESC-ID: Sentiment Analysis without Hand-Coded Features or Linguistic Resources using Embedding Subspaces0
Influenza Modeling Based on Massive Feature Engineering and International Flow Deconvolution0
Innovative Measures of Patient and Disease Phenotyping: Optimizing Linguistic and Machine Learning Techniques in the Investigation of Electronic Health Record (EHR) Data0
Integrating Deep Learning with Logic Fusion for Information Extraction0
Enhancing Traffic Incident Management with Large Language Models: A Hybrid Machine Learning Approach for Severity Classification0
Intelligent Icing Detection Model of Wind Turbine Blades Based on SCADA data0
Intelligent Spark Agents: A Modular LangGraph Framework for Scalable, Visualized, and Enhanced Big Data Machine Learning Workflows0
Intelligent Vector-based Customer Segmentation in the Banking Industry0
Intent Recognition in Conversational Recommender Systems0
Deep Learning Domain Adaptation to Understand Physico-Chemical Processes from Fluorescence Spectroscopy Small Datasets: Application to Ageing of Olive Oil0
Interleaved Sequence RNNs for Fraud Detection0
Inter-Patient ECG Classification with Convolutional and Recurrent Neural Networks0
Interpretable Feature Engineering for Time Series Predictors using Attention Networks0
Application of Explainable Machine Learning in Detecting and Classifying Ransomware Families Based on API Call Analysis0
Interpretable (not just posthoc-explainable) medical claims modeling for discharge placement to prevent avoidable all-cause readmissions or death0
Interpreting Complex Regression Models0
Data organization limits the predictability of binary classification0
Introduction to Medical Imaging Informatics0
Intrusion detection systems using classical machine learning techniques versus integrated unsupervised feature learning and deep neural network0
Investigating and Explaining Feature and Representation Learning in Translationese Classification0
Investigating context features hidden in End-to-End TTS0
Investigating how well contextual features are captured by bi-directional recurrent neural network models0
Investigation of annotator's behaviour using eye-tracking data0
Investigation of Time-Frequency Feature Combinations with Histogram Layer Time Delay Neural Networks0
IOA: Improving SVM Based Sentiment Classification Through Post Processing0
IoT-Based Environmental Control System for Fish Farms with Sensor Integration and Machine Learning Decision Support0
IoT Device Identification Based on Network Communication Analysis Using Deep Learning0
IoT Device Identification Using Deep Learning0
IoT Security: Botnet detection in IoT using Machine learning0
Is Precise Recovery Necessary? A Task-Oriented Imputation Approach for Time Series Forecasting on Variable Subset0
Iterative Boosting Deep Neural Networks for Predicting Click-Through Rate0
ITNLP-AiKF at SemEval-2017 Task 1: Rich Features Based SVR for Semantic Textual Similarity Computing0
Joint Feature Selection in Distributed Stochastic Learning for Large-Scale Discriminative Training in SMT0
KDD CUP 2022 Wind Power Forecasting Team 88VIP Solution0
KeLP: a Kernel-based Learning Platform for Natural Language Processing0
Keyphrase Extraction with Span-based Feature Representations0
Keyword spotting -- Detecting commands in speech using deep learning0
Knowledge-driven Site Selection via Urban Knowledge Graph0
Lagged correlation-based deep learning for directional trend change prediction in financial time series0
Landslide Detection and Segmentation Using Remote Sensing Images and Deep Neural Network0
Language Semantics Interpretation with an Interaction-based Recurrent Neural Networks0
Large Language Models for Networking: Workflow, Advances and Challenges0
Large Language Models Orchestrating Structured Reasoning Achieve Kaggle Grandmaster Level0
Large Margin Prototypical Network for Few-shot Relation Classification with Fine-grained Features0
Large-Scale Categorization of Japanese Product Titles Using Neural Attention Models0
Large-Scale Cell-Level Quality of Service Estimation on 5G Networks Using Machine Learning Techniques0
Large-scale End-of-Life Prediction of Hard Disks in Distributed Datacenters0
Latent Variable Session-Based Recommendation0
Lateral Movement Detection Using User Behavioral Analysis0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CNN14 gestures accuracy0.98Unverified