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LIBS data analysis using a predictor-corrector based digital signal processor algorithm

机译:LIBS数据分析采用基于预测器校正的数字信号处理器算法

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There are many accepted sensor technologies for generating spectra for material classification. Once the spectra are generated, communication bandwidth limitations favor local material classification with its attendant reduction in data transfer rates and power consumption. Transferring sensor technologies such as Cavity Ring-Down Spectroscopy (CRDS) and Laser Induced Breakdown Spectroscopy (LIBS) require effective material classifiers. A result of recent efforts has been emphasis on Partial Least Squares - Discriminant Analysis (PLS-DA) and Principle Component Analysis (PCA). Implementation of these via general purpose computers is difficult in small portable sensor configurations. This paper addresses the creation of a low mass, low power, robust hardware spectra classifier for a limited set of predetermined materials in an atmospheric matrix. Crucial to this is the incorporation of PCA or PLS-DA classifiers into a predictor-corrector style implementation. The system configuration guarantees rapid convergence. Software running on multi-core Digital Signal Processor (DSPs) simulates a stream-lined plasma physics model estimator, reducing Analog-to-Digital (ADC) power requirements. This paper presents the results of a predictorcorrector model implemented on a low power multi-core DSP to perform substance classification. This configuration emphasizes the hardware system and software design via a predictor corrector model that simultaneously decreases the sample rate while performing the classification.
机译:有许多可接受的传感器技术,用于生成材料分类的光谱。一旦产生光谱,通信带宽限制有利于其具有数据传输速率和功耗的伴随的局部材料分类。传送传感器技术,例如腔响谱谱(CRD)和激光诱导的击穿光谱(LIBS)需要有效的材料分类器。近期努力的结果一直在重点是局部最小二乘 - 判别分析(PLS-DA)和原理成分分析(PCA)。通过通用计算机的实现在小型便携式传感器配置中难以实现。本文在大气矩阵中寻址用于有限一组预定材料的低质量,低功耗鲁棒硬件谱分类器的创建。至关重要的是将PCA或PCA-DA分类器结合到预测校正器样式实现中。系统配置保证快速收敛。在多核数字信号处理器(DSP)上运行的软件模拟流衬里等离子体物理模型估计器,减少了模数转准(ADC)电源要求。本文介绍了在低功率多核DSP上实现的预测粗磁体模型的结果,以执行物质分类。该配置通过预测校正器模型强调硬件系统和软件设计,同时执行分类的同时降低采样率。

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