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 16011625 of 1706 papers

TitleStatusHype
DeepAlignment: Unsupervised Ontology Matching with Refined Word Vectors0
Deep Attentive Sentence Ordering Network0
Deep Crossing: Web-Scale Modeling without Manually Crafted Combinatorial Features0
DeepEdge: A Multi-Scale Bifurcated Deep Network for Top-Down Contour Detection0
Deep Exhaustive Model for Nested Named Entity Recognition0
Deep Feature Learning for Wireless Spectrum Data0
Deep-Graph-Sprints: Accelerated Representation Learning in Continuous-Time Dynamic Graphs0
Deep Hashing: A Joint Approach for Image Signature Learning0
Deep Health Care Text Classification0
Deep Interaction Machine: A Simple but Effective Model for High-order Feature Interactions0
Deep Interaction Machine: A Simple but Effective Model for High-order Feature Interactions0
Deep Learning-Based Detection of the Acute Respiratory Distress Syndrome: What Are the Models Learning?0
Deep Learning based, end-to-end metaphor detection in Greek language with Recurrent and Convolutional Neural Networks0
Deep Learning-Based Forecasting of Boarding Patient Counts to Address ED Overcrowding0
Deep Learning for Chinese Word Segmentation and POS Tagging0
Deep Learning for Effective and Efficient Reduction of Large Adaptation Spaces in Self-Adaptive Systems0
Deep Learning for Insider Threat Detection: Review, Challenges and Opportunities0
Deep Learning for Iris Recognition: A Review0
Deep Learning for NLP (without Magic)0
Deep Learning Head Model for Real-time Estimation of Entire Brain Deformation in Concussion0
Deep Learning in Lexical Analysis and Parsing0
Deep Learning in Semantic Kernel Spaces0
Deep Learning in Single-Cell and Spatial Transcriptomics Data Analysis: Advances and Challenges from a Data Science Perspective0
Deep Learning Regression of VLSI Plasma Etch Metrology0
DeepLink: A Novel Link Prediction Framework based on Deep Learning0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CNN14 gestures accuracy0.98Unverified