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การศึกษาความเป็นไปได้ในการวัดระดับกรด-ด่างในเลือดด้วยเทคนิคเชิงแสงและโครงข่ายประสาทเทียม

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มหาวิทยาลัยสงขลานครินทร์
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To verification of concept, a spectroscopic method for measurement of pH in human blood through the syringe based on backpropagation artificial neural network (BP-ANN). In this paper the feasibility of design and fabricate measurement of pH was consist of SLEDs as light source, 2 photodiodes as sensor to measure the light intensity and calculate the blood pH. The spectral data of 48 subjects were measured. The principal component analysis (PCA) was applied to deduct the dimensional of collected spectral data to reduce the infestation of redundant data. In such cases, the principal component analysis has taken as inputs of BP-ANN to correlate and predict blood pH. The calculated blood pH by BP-ANN with PCA is quite a desirable with standard error of 0.015 and 0.023 in validation and testing, correlations coefficient (R) 0.992 and 0.919 in validation and testing, Inspecting the accuracy of BP-ANN model results produce by statistical analysis with a relative analytical error all under 3% in validation, and testing. The results are proved that a good correlation between absorbance data with actual pH. The model is in good agreement. Hence, the method of BP-ANN with PCA is a potential for the absorbance detection of pH in human blood through the syringe.
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วิทยานิพนธ์ (วศ.ม. (วิศวกรรมไฟฟ้า))--มหาวิทยาลัยสงขลานครินทร์, 2560

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