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Automated Detection of Hematological Patterns Through Machine Learning

ISBN-13: 9783659333651 / Angielski / Miękka / 2014 / 128 str.

Rossman Mark
Automated Detection of Hematological Patterns Through Machine Learning Rossman Mark 9783659333651 LAP Lambert Academic Publishing - książkaWidoczna okładka, to zdjęcie poglądowe, a rzeczywista szata graficzna może różnić się od prezentowanej.

Automated Detection of Hematological Patterns Through Machine Learning

ISBN-13: 9783659333651 / Angielski / Miękka / 2014 / 128 str.

Rossman Mark
cena 178,06
(netto: 169,58 VAT:  5%)

Najniższa cena z 30 dni: 178,06
Termin realizacji zamówienia:
ok. 10-14 dni roboczych.

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The use of hematological analyzers has become routine in clinical practice, but the sheer volume of data produced by these devices often makes manual inspection of all the results an unwieldy task. For this reason, automated pattern analysis through the use of machine learning has been used in these types of situations, to save time and to provide invaluable aid to medical professionals in this area of diagnostic medicine. Toward this end, Artificial Neural Networks (ANNs) are often relied upon in the field of machine learning, because of their ability to distill representative feature components from large amounts of input data. This paper details an approach in which the scatterplots of cells that were produced by a hematological device were used as inputs. The data were separated into two classes, one containing clinically Normal samples, and the second containing abnormal samples that contained Variant Lymphocytes. Statistical features were extracted from these data using Principal Component Analysis (PCA) and then a Perceptron ANN was employed to differentiate between the two classes of data. The accuracy of pattern classification using this method was then discussed.

The use of hematological analyzers has become routine in clinical practice, but the sheer volume of data produced by these devices often makes manual inspection of all the results an unwieldy task. For this reason, automated pattern analysis through the use of machine learning has been used in these types of situations, to save time and to provide invaluable aid to medical professionals in this area of diagnostic medicine. Toward this end, Artificial Neural Networks (ANNs) are often relied upon in the field of machine learning, because of their ability to distill representative feature components from large amounts of input data. This paper details an approach in which the scatterplots of cells that were produced by a hematological device were used as inputs. The data were separated into two classes, one containing clinically Normal samples, and the second containing abnormal samples that contained Variant Lymphocytes. Statistical features were extracted from these data using Principal Component Analysis (PCA) and then a Perceptron ANN was employed to differentiate between the two classes of data. The accuracy of pattern classification using this method was then discussed.

Kategorie:
Nauka, Medycyna
Kategorie BISAC:
Medical > Medycyna
Wydawca:
LAP Lambert Academic Publishing
Język:
Angielski
ISBN-13:
9783659333651
Rok wydania:
2014
Ilość stron:
128
Waga:
0.20 kg
Wymiary:
22.86 x 15.24 x 0.76
Oprawa:
Miękka
Wolumenów:
01

B.S. in Electrical Engineering, Florida International University, Miami, Florida, 1999.M.S in Computer Engineering, Florida International University, Miami, Florida, 2003.Ph.D. in Electrical Engineering, Florida International University, Miami, Florida, 2011.Senior Software Engineer, Beckman Coulter Corporation, Miami, Florida, 2004-Present.



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