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Published July 14, 1977 | Version v1
Journal article

Pattern recognition applied to uranium prospecting

  • 1. Massachusetts Inst. of Tech., Cambridge (USA). Dept. of Earth and Planetary Sciences

Description

It is stated that pattern recognition techniques provide one way of combining quantitative and descriptive geological data for mineral prospecting. A quantified decision process using computer-selected patterns of geological data has the potential for selecting areas with undiscovered deposits of uranium or other minerals. When a natural resource is mined more rapidly than it is discovered, its continued production becomes increasingly difficult, and it has been noted that, although a considerable uranium reserve may remain in the U.S.A., the discovery rate for uranium is decreasing exponentially with cumulative exploration footage drilled. Pattern recognition methods of organising geological information for prospecting may provide new predictive power, as well as insight into the occurrence of uranium ore deposits. Often the task of prospecting consists of three stages of information processing: (1) collection of data on known ore deposits; (2) noting any regularities common to the known examples of an ore; (3) selection of new exploration targets based on the results of the second stage. A logical pattern recognition algorithm is here described that implements this geological procedure to demonstrate the possibility of building a quantified uranium prospecting guide from diverse geologic data. (author)

Additional details

Identifiers

Publishing Information

Journal Title
Nature
Journal Volume
268
Journal Issue
5616
Series
Nature (London).
Journal Page Range
125-127
ISSN
0028-0836

INIS

Country of Publication
United Kingdom
Country of Input or Organization
United Kingdom
INIS RN
8340336
Subject category
S58: GEOSCIENCES;
Descriptors DEI
ALGORITHMS; DATA PROCESSING; GEOLOGIC DEPOSITS; GEOLOGIC SURVEYS; PATTERN RECOGNITION; PROSPECTING; URANIUM ORES
Descriptors DEC
ORES

Optional Information

Notes
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