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Taxonomy of the most commonly used Machine Learning Algorithms

Taxonomy of the most commonly used Machine Learning Algorithmsav Murat Durmus
Om Taxonomy of the most commonly used Machine Learning Algorithms

"All models are wrong, but some are useful." George E. P. Box Taxonomy of 40 Machine Learning Algorithms: - ADABOOST - ADAM OPTIMIZATION - AGGLOMERATIVE CLUSTERING - ARMA/ARIMA MODEL - BERT - CONVOLUTIONAL NEURAL NETWORK - DBSCAN - DECISION TREE - DEEP Q-LEARNING - EFFICIENTNET - FACTOR ANALYSIS OF CORRESPONDENCES - GAN - GMM - GPT-3 - GRADIENT BOOSTING MACHINE - GRADIENT DESCENT - GRAPH NEURAL NETWORKS - HIERARCHICAL CLUSTERING - HIDDEN MARKOV MODEL (HMM) - INDEPENDENT COMPONENT ANALYSIS - ISOLATION FOREST - K-MEANS - K-NEAREST NEIGHBOUR - LINEAR REGRESSION - LOGISTIC REGRESSION - LSTM - MEAN SHIFT - MOBILENET - MONTE CARLO ALGORITHM - MULTIMODAL PARALLEL NETWORK - NAIVE BAYES CLASSIFIERS - PROXIMAL POLICY OPTIMIZATION - PRINCIPAL COMPONENT ANALYSIS - Q-LEARNING - RANDOM FORESTS - RECURRENT NEURAL NETWORK - RESNET - SPATIAL TEMPORAL GRAPH CONVOLUTIONAL NETWORKS - STOCHASTIC GRADIENT DESCENT - SUPPORT VECTOR MACHINE

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  • Språk:
  • Engelska
  • ISBN:
  • 9798442041989
  • Format:
  • Häftad
  • Sidor:
  • 84
  • Utgiven:
  • 29. mars 2022
  • Mått:
  • 127x203x4 mm.
  • Vikt:
  • 91 g.
Leveranstid: 2-4 veckor
Förväntad leverans: 17. december 2024

Beskrivning av Taxonomy of the most commonly used Machine Learning Algorithms

"All models are wrong, but some are useful." George E. P. Box Taxonomy of 40 Machine Learning Algorithms: - ADABOOST
- ADAM OPTIMIZATION
- AGGLOMERATIVE CLUSTERING
- ARMA/ARIMA MODEL
- BERT
- CONVOLUTIONAL NEURAL NETWORK
- DBSCAN
- DECISION TREE
- DEEP Q-LEARNING
- EFFICIENTNET
- FACTOR ANALYSIS OF CORRESPONDENCES
- GAN
- GMM
- GPT-3
- GRADIENT BOOSTING MACHINE
- GRADIENT DESCENT
- GRAPH NEURAL NETWORKS
- HIERARCHICAL CLUSTERING
- HIDDEN MARKOV MODEL (HMM)
- INDEPENDENT COMPONENT ANALYSIS
- ISOLATION FOREST
- K-MEANS
- K-NEAREST NEIGHBOUR
- LINEAR REGRESSION
- LOGISTIC REGRESSION
- LSTM
- MEAN SHIFT
- MOBILENET
- MONTE CARLO ALGORITHM
- MULTIMODAL PARALLEL NETWORK
- NAIVE BAYES CLASSIFIERS
- PROXIMAL POLICY OPTIMIZATION
- PRINCIPAL COMPONENT ANALYSIS
- Q-LEARNING
- RANDOM FORESTS
- RECURRENT NEURAL NETWORK
- RESNET
- SPATIAL TEMPORAL GRAPH CONVOLUTIONAL NETWORKS
- STOCHASTIC GRADIENT DESCENT
- SUPPORT VECTOR MACHINE

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