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
Unsupervised Abbreviation Detection in Clinical Narratives0
The GW/LT3 VarDial 2016 Shared Task System for Dialects and Similar Languages Detection0
The impact of simple feature engineering in multilingual medical NER0
Combining Lexical and Semantic-based Features for Answer Sentence Selection0
基於字元階層之語音合成用文脈訊息擷取 (Character-Level Linguistic Features Extraction for Text-to-Speech System) [In Chinese]0
Named Entity Recognition in Swedish Health Records with Character-Based Deep Bidirectional LSTMsCode0
CharNER: Character-Level Named Entity RecognitionCode0
Character-Aware Neural Networks for Arabic Named Entity Recognition for Social Media0
A Recurrent and Compositional Model for Personality Trait Recognition from Short Texts0
Borrow a Little from your Rich Cousin: Using Embeddings and Polarities of English Words for Multilingual Sentiment Classification0
Towards Deep Learning in Hindi NER: An approach to tackle the Labelled Data Sparsity0
Bidirectional LSTM for Named Entity Recognition in Twitter Messages0
A Unified Architecture for Semantic Role Labeling and Relation Classification0
Attention-Based Convolutional Neural Network for Semantic Relation ExtractionCode0
Word and Document Embeddings based on Neural Network Approaches0
ProjE: Embedding Projection for Knowledge Graph CompletionCode0
A Feature-Enriched Neural Model for Joint Chinese Word Segmentation and Part-of-Speech Tagging0
Feature Engineering and Ensemble Modeling for Paper Acceptance Rank Prediction0
A Stacking Gated Neural Architecture for Implicit Discourse Relation Classification0
Modeling Skip-Grams for Event Detection with Convolutional Neural Networks0
Deceptive Review Spam Detection via Exploiting Task Relatedness and Unlabeled Data0
Phonologically Aware Neural Model for Named Entity Recognition in Low Resource Transfer Settings0
Discourse Parsing with Attention-based Hierarchical Neural Networks0
Neural Sentiment Classification with User and Product AttentionCode0
Learning Connective-based Word Representations for Implicit Discourse Relation Identification0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CNN14 gestures accuracy0.98Unverified