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The effect of class-balance and class-overlap in the training set for multivariate and product-adapted grading of Scots pine sawn timber

Olofsson, Linus (author)
Luleå tekniska universitet,Träteknik
Broman, Olof (author)
Luleå tekniska universitet,Träteknik
Oja, Johan (author)
Luleå tekniska universitet,Träteknik
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Sandberg, Dick, 1967- (author)
Luleå tekniska universitet,Träteknik
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 (creator_code:org_t)
2020-09-04
2021
English.
In: Wood Material Science & Engineering. - London : Taylor & Francis Group. - 1748-0272 .- 1748-0280. ; 16:1, s. 58-63
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Using multivariate partial least squares regression (PLS) to perform visual quality grading of sawn timber requires a training set with known quality grades for the training of a grading model. This study evaluated the grading accuracy of an independent test set of sawn timber when changing the aspects of class-balance and class-overlap of the training set consisting of 251 planks. The study also compared two ways of expressing the reference-grade of the training set; by grading images picturing the planks, and by grading the product produced from the planks. Two grading models were trained using each reference-grade to establish a baseline for comparison. Both models achieved a 76% grading accuracy of the test set, indicating that both reference-grades can be used to train comparable models. To study the class-balance and class-overlap aspects of the training set, 25% of the training set was removed in two training scenarios. The models trained on class-balanced data indicated that class-imbalance of the training set was not a problem. The models trained on data with less class-overlap using the product-grade reference suffered a 4%-points grading accuracy loss due to the smaller training set, while the model trained using the image-grade reference retained its grading accuracy.

Subject headings

LANTBRUKSVETENSKAPER  -- Lantbruksvetenskap, skogsbruk och fiske -- Trävetenskap (hsv//swe)
AGRICULTURAL SCIENCES  -- Agriculture, Forestry and Fisheries -- Wood Science (hsv//eng)

Keyword

Sawn timber
PLS regression
machine-learning
training aspects
Träteknik
Wood Science and Engineering

Publication and Content Type

ref (subject category)
art (subject category)

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Olofsson, Linus
Broman, Olof
Oja, Johan
Sandberg, Dick, ...
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AGRICULTURAL SCIENCES
AGRICULTURAL SCI ...
and Agriculture Fore ...
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Wood Material Sc ...
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Luleå University of Technology

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