AutoML

E427705

AutoML is a set of machine learning tools and services that automatically build, train, and optimize models with minimal manual coding or expertise.

All labels observed (1)

Label Occurrences
AutoML canonical 4

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Statements (51)

Predicate Object
instanceOf automated machine learning system ⓘ
machine learning paradigm ⓘ
aimsTo automate end-to-end machine learning workflow ⓘ
improve model performance through automation ⓘ
reduce need for manual ML expertise ⓘ
appliedIn academia ⓘ
cloud machine learning platforms ⓘ
industry ⓘ
benefits data scientists ⓘ
machine learning engineers ⓘ
non-expert users ⓘ
challenge computational cost ⓘ
interpretability of resulting models ⓘ
overfitting risk ⓘ
search space design ⓘ
component evaluation strategy ⓘ
resource management ⓘ
search space definition ⓘ
search strategy ⓘ
fieldOfStudy artificial intelligence ⓘ
machine learning ⓘ
goal accelerate model development ⓘ
democratize access to machine learning ⓘ
minimize manual coding ⓘ
standardize ML workflows ⓘ
includesStep data preprocessing ⓘ
feature engineering ⓘ
hyperparameter optimization ⓘ
model deployment ⓘ
model evaluation ⓘ
model selection ⓘ
model training ⓘ
relatedTo MLOps ⓘ
data science automation ⓘ
meta-learning ⓘ
supportsTask classification ⓘ
clustering ⓘ
computer vision ⓘ
natural language processing ⓘ
regression ⓘ
time series forecasting ⓘ
typicalOutput model performance report ⓘ
optimized hyperparameters ⓘ
trained machine learning model ⓘ
usesTechnique Bayesian optimization ⓘ
evolutionary algorithms ⓘ
grid search ⓘ
hyperparameter search ⓘ
meta-learning ⓘ
neural architecture search ⓘ
random search ⓘ

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Referenced by (4)

Full triples — surface form annotated when it differs from this entity's canonical label.