自主浮子嵌入式光学浮游生物计数器的实现

Dong Ho Lee, KyungWoon Lee, Ui-seok Jeong, J. Park
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引用次数: 1

摘要

本文对浮游植物和浮游动物的光学性质进行了研究。利用紫外可见分光光度计测定浮游生物的吸收光谱。在670 nm处发现了浮游植物的吸收峰。根据浮游生物的光学特性,以红色LED为光源,设计并搭建了光学浮游生物计数器(OPC)的粒子检测系统。为了对水下环境进行观测,开发了嵌入式系统。自主浮子由现场可编程门阵列(FPGA)和CPU组成的嵌入式系统控制,执行图像信号处理、数据压缩、电源管理和卫星通信。嵌入式系统利用线性ccd获取高分辨率的粒子图像,用于水下环境中的粒子计数。星载信号处理减少了粒子图像数据量,提高了卫星通信的性能。利用OPC和嵌入式系统,获取了卤虾的扫描图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Implementation of optical plankton counter with embedded system for autonomous float
The optical properties of both phytoplankton and zooplankton were investigated in this study. The absorption spectrums of planktons were measured using an UV-visible spectrophotometer. An absorption peak was found at 670 nm for the phytoplankton. A particle detecting system for an optical plankton counter (OPC) was designed and built with a red LED as a light source based on the optical characteristics of plankton. In order to observe underwater environment, the embedded system was developed. The autonomous float is controlled by embedded system composed of field-programmable gate array (FPGA) and CPU to perform image signal processing, data compression, power management and satellite communication. Embedded system acquires high-resolution particle image using a linear-CCD for counting particles in underwater environment. On-board signal processing reduces amount of particle image data for good performance in satellite communication. Using OPC and the embedded system, scanning images of brine shrimp was acquired.
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