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OChem Inc machine learning methods
Machine Learning Methods, supplied by OChem Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/machine+learning+method/machine+learning+methods/pmc04937869-129-80-80
Average 90 stars, based on 1 article reviews
machine learning methods - by Bioz Stars, 2026-09
90/100 stars

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Article Title: Computational prediction models for assessing endocrine disrupting potential of chemicals.
Article Snippet: Endocrine disrupting chemicals (EDCs) mimic natural hormones and disrupt endocrine function.. Humans and wildlife are exposed to EDCs might alter endocrine functions through various mechanisms and lead to an adverse effects.. Hence, EDCs identification is important to protect the ecosystem and to promote the public health.

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Article Title: Computational prediction models for assessing endocrine disrupting potential of chemicals.
Article Snippet: Endocrine disrupting chemicals (EDCs) mimic natural hormones and disrupt endocrine function.. Humans and wildlife are exposed to EDCs might alter endocrine functions through various mechanisms and lead to an adverse effects.. Hence, EDCs identification is important to protect the ecosystem and to promote the public health.

other:

Article Title: In silico prediction of chemical-induced hematotoxicity with machine learning and deep learning methods.
Article Snippet: Chemical-induced hematotoxicity is an important concern in the drug discovery, since it can often be fatal when it happens.. It is quite useful for us to give special attention to chemicals which can cause hematotoxicity.. In the present study, we focused on in silico prediction of chemical-induced hematotoxicity with machine learning (ML) and deep learning (DL) methods.

Article Title: CERAPP: Collaborative Estrogen Receptor Activity Prediction Project
Article Snippet: Models were developed using both well-known and innovative methods including partial least-squares (PLS) ( ; ), partial least-squares discriminant analysis (PLS-DA) ( ; ), decision forest (DF) ( , ; ; ), three-dimensional (3D) quantitative spectral data–activity relationship (QSDAR) ( ; ; ), support vector machines (SVM) , k nearest neighbors (kNN) ( ; ), associative artificial neural networks (ASNN) ( , ), PASS algorithm derived from Naïve Bayes classifier , self-consistent regression with radial basis function interpolation (RBF-SCR) , OCHEM machine learning methods , docking and consensus of different approaches ( ; ; ).



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A comparison of genomic prediction performance of the naïve ensemble-average (ensemble) model vs each of the individual genomic prediction models in violin plots. The width of the violins indicates the distribution of the metric values for predictions from all combinations of the 5 RIL populations, 3 training-test ratios, and 500 random samples. The performance of genomic prediction models was measured with a) the Pearson correlation and b) MSE. The orange represents the performance of classical models (rrBLUP, BayesB, and RKHS) while the green represents machine learning models (RF, SVR, and GAT). The red is the performance of the ensemble. Box plots within the violin plots represent the median metric value (white line) and the interquartile range (black box) with whiskers extending 1.5 times the interquartile range.

Journal: G3: Genes | Genomes | Genetics

Article Title: Improved genomic prediction performance with ensembles of diverse models

doi: 10.1093/g3journal/jkaf048

Figure Lengend Snippet: A comparison of genomic prediction performance of the naïve ensemble-average (ensemble) model vs each of the individual genomic prediction models in violin plots. The width of the violins indicates the distribution of the metric values for predictions from all combinations of the 5 RIL populations, 3 training-test ratios, and 500 random samples. The performance of genomic prediction models was measured with a) the Pearson correlation and b) MSE. The orange represents the performance of classical models (rrBLUP, BayesB, and RKHS) while the green represents machine learning models (RF, SVR, and GAT). The red is the performance of the ensemble. Box plots within the violin plots represent the median metric value (white line) and the interquartile range (black box) with whiskers extending 1.5 times the interquartile range.

Article Snippet: From the various machine learning methods, we selected RF , SVR ( Drucker et al. 1996 ), and GAT ( Velickovic et al. 2017 ) for our investigation of ensemble prediction.

Techniques: Comparison