A machine vision approach to the grading of crushed aggregate

Murtagh, Fionn, Qiao, X., Crookes, D., Walsh, P., Basheer, P.A.M., Long, A. and Starck, J.L.

(2005)

Murtagh, Fionn, Qiao, X., Crookes, D., Walsh, P., Basheer, P.A.M., Long, A. and Starck, J.L. (2005) A machine vision approach to the grading of crushed aggregate. Machine Vision and Applications, 16 (4).

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Abstract

The grading of crushed aggregate is carried out usually by sieving. We describe a new image-based approach to the automatic grading of such materials. The operational problem addressed is where the camera is located directly over a conveyor belt. Our approach characterizes the information content of each image, taking into account relative variation in the pixel data, and resolution scale. In feature space, we find very good class separation using a multidimensional linear classifier. The innovation in this work includes (i) introducing an effective image-based approach into this application area, and (ii) our supervised classification using wavelet entropy-based features.

Information about this Version

This is a Submitted version
This version's date is: 2005
This item is not peer reviewed

Link to this Version

https://repository.royalholloway.ac.uk/items/245c5b75-4130-d903-4ffa-570f47c900d8/5/

Item TypeJournal Article
TitleA machine vision approach to the grading of crushed aggregate
AuthorsMurtagh, Fionn
Qiao, X.
Crookes, D.
Walsh, P.
Basheer, P.A.M.
Long, A.
Starck, J.L.
Uncontrolled KeywordsMachine vision, Aggregate, Construction, Wavelet transform, Entropy, Information, Image database
DepartmentsFaculty of Science\Computer Science

Identifiers

doihttp://dx.doi.org/10.1007/s00138-005-0176-7

Deposited by Research Information System (atira) on 27-Jan-2013 in Royal Holloway Research Online.Last modified on 27-Jan-2013


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