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AI-woordenlijst

Het complete woordenboek van kunstmatige intelligentie

162
categorieën
2.032
subcategorieën
23.060
termen
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subcategorieën

K-means Clustering

Iterative partitioning algorithm that groups data into K clusters by minimizing within-cluster variance.

7 termen
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Hierarchical Clustering

Method that builds a hierarchy of clusters using a bottom-up (agglomerative) or top-down (divisive) approach.

3 termen
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DBSCAN

Density-based clustering algorithm that identifies clusters of arbitrary shapes and detects outliers.

4 termen
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Principal Component Analysis (PCA)

Linear dimensionality reduction technique that projects data onto axes of maximum variance.

7 termen
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t-SNE

Non-linear dimensionality reduction algorithm specialized in high-dimensional data visualization.

5 termen
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UMAP

Modern dimensionality reduction technique that better preserves global structure than t-SNE with faster computations.

6 termen
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Spectral Clustering

Method using the eigenvalues of a similarity matrix to perform clustering on non-convex data.

11 termen
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Autoencoders

Unsupervised neural networks that learn a compressed representation of data through encoding-decoding.

8 termen
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Gaussian Mixture Model Clustering

Probabilistic approach modeling data as a mixture of Gaussian distributions for soft clustering.

15 termen
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Matrix Factorization

Dimensionality reduction technique decomposing a matrix into products of lower-rank matrices.

15 termen
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Fuzzy Clustering (Fuzzy C-means)

A clustering variant where each point can belong to multiple clusters with different degrees of membership.

17 termen
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Isomap

A manifold learning algorithm that preserves geodesic distances for dimensionality reduction.

11 termen
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LDA (Latent Dirichlet Allocation)

Probabilistic model for dimensionality reduction and clustering in text analysis and topic modeling.

10 termen
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OPTICS

Extension of DBSCAN producing a clustering order that allows identifying structures with variable densities.

2 termen
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Feature Selection

Dimensionality reduction by selecting the most relevant variables rather than creating new combinations.

2 termen
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