Published 1992 | Version v1
Report Open

On the prior probabilities for two-stage Bayesian estimates

Description

The method of Bayesian inference is reexamined for its applicability and for the required underlying assumptions in obtaining and using prior probability estimates. Two different approaches are suggested to determine the first-stage priors in the two-stage Bayesian analysis which avoid certain assumptions required for other techniques. In the first scheme, the prior is obtained through a true frequency based distribution generated at selected intervals utilizing actual sampling of the failure rate distributions. The population variability distribution is generated as the weighed average of the frequency distributions. The second method is based on a non-parametric Bayesian approach using the Maximum Entropy Principle. Specific features such as integral properties or selected parameters of prior distributions may be obtained with minimal assumptions. It is indicated how various quantiles may also be generated with a least square technique

Availability note (English)

MF available from INIS under the Report Number; OSTI as DE93006389; NTIS; INIS; US Govt. Printing Office Dep.

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Additional details

Publishing Information

Imprint Pagination
5 p.
Report number
BNL-NUREG--48226

Conference

Title
Probabilistic safety assessment international topical meeting (PSA 93).
Dates
27-29 Jan 1993.
Place
Clearwater Beach, FL (United States).

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
24039520
Subject category
S99: GENERAL AND MISCELLANEOUS;
Resource subtype / Literary indicator
Conference
Descriptors DEI
DISTRIBUTION FUNCTIONS; PROBABILITY; STATISTICAL MODELS; SYSTEM FAILURE ANALYSIS
Descriptors DEC
MATHEMATICAL MODELS; SYSTEMS ANALYSIS

Optional Information

Contract/Grant/Project number
Contract AC02-76CH00016
Funding organization
Nuclear Regulatory Commission, Washington, DC (United States).
Secondary number(s)
CONF-930116--35.