scholarly journals Band Assignment in Ultra-Narrowband (UNB) Systems for Massive IoT Access

Author(s):  
Enes Krijestorac ◽  
Ghaith Hattab ◽  
Petar Popovskit ◽  
Danijela Cabric
Keyword(s):  
2017 ◽  
Vol 71 (10) ◽  
pp. 2367-2376 ◽  
Author(s):  
Jinfeng Zhou ◽  
Rongwu Wang ◽  
Xiongying Wu ◽  
Bugao Xu

Cashmere and wool are two protein fibers with analogous geometrical attributes, but distinct physical properties. Due to its scarcity and unique features, cashmere is a much more expensive fiber than wool. In the textile production, cashmere is often intentionally blended with fine wool in order to reduce the material cost. To identify the fiber contents of a wool–cashmere blend is important to quality control and product classification. The goal of this study is to develop a reliable method for estimating fiber contents in wool–cashmere blends based on near-infrared (NIR) spectroscopy. In this study, we prepared two sets of cashmere–wool blends by using either whole fibers or fiber snippets in 11 different blend ratios of the two fibers and collected the NIR spectra of all the 22 samples. Of the 11 samples in each set, six were used as a subset for calibration and five as a subset for validation. By referencing the NIR band assignment to chemical bonds in protein, we identified six characteristic wavelength bands where the NIR absorbance powers of the two fibers were significantly different. We then performed the chemometric analysis with two multilinear regression (MLR) equations to predict the cashmere content (CC) in a blended sample. The experiment with these samples demonstrated that the predicted CCs from the MLR models were consistent with the CCs given in the preparations of the two sample sets (whole fiber or snippet), and the errors of the predicted CCs could be limited to 0.5% if the testing was performed over at least 25 locations. The MLR models seem to be reliable and accurate enough for estimating the cashmere content in a wool–cashmere blend and have potential to be used for tackling the cashmere adulteration problem.


Author(s):  
Mitsuo Tasumi ◽  
Akira Sakamoto ◽  
Toyohiko Hieda ◽  
Hajime Torii

2017 ◽  
Vol 16 (03) ◽  
pp. 1750023
Author(s):  
Trocia N. Clasp ◽  
Scott W. Reeve ◽  
Hideya Koizumi

The vibrational structure of 2-ethyl-1-hexanol is of great interest because of its industrial and military applications. However, detailed spectral analysis is challenging due to its flexibility. This paper reports a detailed analysis of the gas and liquid phase vibrational spectra of 2-ethyl-1-hexanol using the Fourier transform infrared spectroscopy and Raman experimental data. By performing a detailed exploration of the conformational space in this work, the theoretical spectra reproduced almost all experimental details observed, and assigned internal valence coordinates to all of the experimentally observed bands in the floppy 2-ethyl-1-hexanol molecule. Relative contributions from the various internal valence coordinates to the experimental vibrational bands are directly compared between the liquid phase Raman band and the gas and liquid phase infrared band.


2009 ◽  
Vol 110 (12) ◽  
pp. 964-973 ◽  
Author(s):  
Andrei V. Nikitin ◽  
Semen Mikhailenko ◽  
Isamu Morino ◽  
Tatsuya Yokota ◽  
Ryoichi Kumazawa ◽  
...  

Clay Minerals ◽  
1999 ◽  
Vol 34 (2) ◽  
pp. 365-374 ◽  
Author(s):  
F. Martin ◽  
S. Petit ◽  
O. Grauby ◽  
M. P. Lavie

AbstractThe deuteration technique was used to assign unknown infrared (IR) bands of Ge-bearing talcs. Procedures to achieve partial or complete H/D replacement in synthetic Ge-bearing (Mg, Ni and Co)-talcs have been investigated. From the spectral shift of IR absorption bands in the 4000–300 cm-1 region resulting from the H-D substitution, the IR bands of vibrations of Ge-bearing talcs could be identified and synthetic Ge-bearing talcs showed significantly different IR spectra from those for Si-talcs. After deuteration of synthetic Ge-bearing talcs, the unknown bands were attributed either to hydroxyl groups or to Ge–O vibrations of the clay skeleton, and the spectra were interpreted fully.


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