IP Library Patent Application 14334206
Patent Application
App. No. 14/334,206

QUANTITATIVE ELEMENTAL PROFILING IN OPTICAL EMISSION SPECTROSCOPY

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Quick Facts
Patent No.
US None
App. No.
14/334,206
Abstract

The current invention considers the spectrum as a multimodal distribution over a list of structures containing the wavelength as the main entry and the other information mentioned above in the list as additional entries. Each line is then given a probability of contributing to the spectral line. In the case of multiple spectral lines, inference between spectral lines and their respective levels of confidence will provide a complete picture of the list of probable emitters with a probability factor for each line in order to provide a quantitative assignment of the spectral lines and profiling for a given spectrum.

Claims (27)

1 . One or more tangible non-transitory computer-readable media having computer-executable instructions for performing a method of running a software program on a computing device, the computing device operating under an operating system, the method including issuing instructions from the software program to automatically quantitatively determine confidence for identification of an emitter represented by a spectral peak, the instructions comprising:

receiving a spectral database containing spectral information, said spectral information including a plurality of emitters and a plurality of spectral peaks associated with said plurality of emitters;

receiving a spectrum associated with an analyte that includes said emitter;

evaluating said spectrum and detecting peaks of said analyte;

automatically assigning said peaks to corresponding spectral lines;

automatically identifying possible emitters associated with said spectral lines, said identification based on a comparison of said spectral lines to said spectral information contained in said spectral database;

normalizing said corresponding spectral lines to indicate signal strength of said possible emitters;

calculating said signal strength of said possible emitters associated with intensity of said spectral lines; and

automatically determining a level of confidence of identification of each emitter of said possible emitters.

2 . A computer-implemented method of automatically quantitatively determining a level of confidence for identification of an emitter represented by a spectral peak, comprising:

receiving a spectral database containing spectral information, said spectral information including a plurality of emitters and a plurality of spectral peaks associated with said plurality of emitters;

receiving a spectrum associated with an analyte that includes said emitter;

evaluating said spectrum and detecting peaks of said analyte;

automatically assigning said peaks to corresponding spectral lines;

automatically identifying possible emitters associated with said spectral lines, said identification based on a comparison of said spectral lines to said spectral information contained in said spectral database;

normalizing said corresponding spectral lines to indicate signal strength of said possible emitters;

calculating said signal strength of said possible emitters associated with intensity of said spectral lines; and

automatically determining a level of confidence of identification of each emitter of said possible emitters.

3 . One or more tangible non-transitory computer-readable media having computer-executable instructions for performing a method of running a software program on a computing device, the computing device operating under an operating system, the method including issuing instructions from the software program to automatically quantitatively determine confidence for identification of an emitter represented by a spectral peak, the instructions comprising:

receiving a model or database providing spectral information about an array of transitions;

receiving a signal indicating atomic interferences, molecular interferences, or both;

defining a central position for each peak in said signal in order to provide density distributions;

extracting a distribution of said each peak;

comparing said extracted distribution to said model or database;

calculating emission strength for each transition that can be found in said model or database;

multiplying said emission strength by a value of a wavelength of said each transition of the distribution, where said each transition under a spectral peak has a probability that can be normalized to have a sum of one (1) over a spectra range to provide a notion of probability, wherein normalization is defined by the number of transitions considered;

based on the foregoing steps, provided a level of confidence for said each peak.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 5, 2015
From: BAUDELET, MATTHIEU
To: UNIVERSITY OF CENTRAL FLORIDA RESEARCH FOUNDATION, INC.
Reel/Frame 034632/0259 →