Please use this identifier to cite or link to this item: https://openlibrary-repo.ecampusontario.ca/jspui/handle/123456789/1790
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dc.contributor.authorRamazi, Pouria-
dc.contributor.otherKalantari, Hamid-
dc.date.accessioned2023-03-14T15:54:52Z-
dc.date.available2023-03-14T15:54:52Z-
dc.date.issued2023-03-03-
dc.identifier0b16baf9-b44c-498e-afe1-0fd0fac2de57-
dc.identifier.urihttps://openlibrary-repo.ecampusontario.ca/jspui/handle/123456789/1790-
dc.description.sponsorshipThis project is made possible with funding by the Government of Ontario and through eCampusOntario’s support of the Virtual Learning Strategy. To learn more about the Virtual Learning Strategy visit: https://vls.ecampusontario.ca.en_US
dc.language.isoengen_US
dc.rightsCC BY-NC | https://creativecommons.org/licenses/by-nc/4.0/en_US
dc.subjectMachine-learningen_US
dc.subjectBayesian networksen_US
dc.titleBayesian and Causal Bayesian Networksen_US
dc.typeLearning Objecten_US
dc.typeImageen_US
dc.typeVideoen_US
dc.typeOtheren_US
dcterms.accessRightsOpen Accessen_US
dcterms.accessRightsOpen Access-
dcterms.educationLevelCollegeen_US
dcterms.educationLevelUniversity - Undergraduateen_US
dcterms.educationLevelUniversity - Graduate & Post-Graduateen_US
dc.date.updated2023-03-29-
dc.identifier.slughttps://openlibrary.ecampusontario.ca/catalogue/item/?id=0b16baf9-b44c-498e-afe1-0fd0fac2de57-
ecO-OER.AdoptedNoen_US
ecO-OER.AncillaryMaterialYesen_US
ecO-OER.AncillaryMaterialResources for Learners: Hosted YouTube Videos | https://www.youtube.com/watch?v=GEDOK17LlXg-
ecO-OER.InstitutionalAffiliationBrock Universityen_US
ecO-OER.ISNI0000 0004 1936 9318en_US
ecO-OER.ReviewedNoen_US
ecO-OER.AccessibilityStatementNoen_US
lrmi.learningResourceTypeEducational Unit - Courseen_US
lrmi.learningResourceTypeInstructional Object - Lecture Materialen_US
lrmi.learningResourceTypeInstructional Object - Video Asseten_US
ecO-OER.POD.compatibleYesen_US
dc.description.abstractThe aim of the online course Bayesian and Causal Bayesian Networks is to introduce the theory and provide the necessary skills to apply these machine-learning models in practice. With the revelation of artificial intelligence and machine learning models, the world has witnessed an increasing desire to use them in different applications. An obstacle preventing the wide use of machine learning models is their "black box" nature -- a quality referred to as "uninterpretable". Classical mechanistic models that are based on our prior understanding of the world are often trusted and preferred, but they often fall short in performance. Bayesian networks, which are probabilistic graphical models, nicely fill in this gap, as they are graphical, and hence, relatively easy to understand, yet as powerful as advanced machine learning models. Moreover, they have been recently extended to causal Bayesian networks to systematically identify causal relationships in unknown processes, making them more intuitive and reliable. In addition to recorded lectures, this course includes several micro instructional videos that break the heavy material into small digestible pieces. The micro videos allow a broader range of audience with limited time and background knowledge to benefit from this course.en_US
dc.subject.otherEngineering - Electricalen_US
dc.subject.otherSciences - Mathematics & Statisticsen_US
dc.subject.otherTechnology - Computer Scienceen_US
ecO-OER.VLS.projectIDBROC-71en_US
ecO-OER.VLS.CategoryDigital Content - Create a New Online Courseen_US
ecO-OER.VLSYesen_US
ecO-OER.CVLPNoen_US
ecO-OER.ItemTypeCourseen_US
ecO-OER.ItemTypeInstructional Objecten_US
ecO-OER.ItemTypeLecture Materialen_US
ecO-OER.MediaFormatPDFen_US
ecO-OER.MediaFormatVideoen_US
ecO-OER.MediaFormatOtheren_US
ecO-OER.VLS.cvlpSupportedNoen_US
Appears in Collections:Ontario OER Collection
VLS Collection

Files in This Item:
File Description SizeFormat 
StructuralLearning.zip%%dl%% Zip File (Structured Learning [MP4, Digital PDF, PNG Files, LaTeX Source Files ])1.2 GBzipView/Open
Causality.zip%%dl%% Zip File (Causality [MP4, Digital PDF])1.9 GBzipView/Open
ParameterLearning.zip%%dl%% Zip File (Parameter Learning [MP4, Digital PDF])4.09 GBzipView/Open
BN-Rep_Module.zip%%dl%% Zip File (Network Representation [MP4, Digital PDF])5.75 GBzipView/Open
BN-Animations.zip%%dl%% Zip File (Short Animations [MP4])206.82 MBzipView/Open


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