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首页> 外文期刊>Transactions of the ASABE >DEVELOPMENT OF AN AUTOMATED HIGH-THROUGHPUT PHENOTYPING SYSTEM FOR WHEAT EVALUATION IN A CONTROLLED ENVIRONMENT
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DEVELOPMENT OF AN AUTOMATED HIGH-THROUGHPUT PHENOTYPING SYSTEM FOR WHEAT EVALUATION IN A CONTROLLED ENVIRONMENT

机译:一种自动化高吞吐量表型系统,对受控环境中的小麦评估

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摘要

Plant breeding has significantly improved in recent years; however, phenotyping remains a bottleneck, as the process of evaluating and measuring plant traits is often expensive, subjective, and laborious. Although commercial phenotyping systems are available, factors like cost, space, and need for specific controlled-environment conditions limit the affordability of these products. An accurate, user-friendly, adaptive, and high-throughput phenotyping (HTP) system is highly desirable to plant breeders, physiologists, and agronomists. To solve this problem, an automated HTP system and image processing algorithms were developed and tested in this study. The automated platform was an integration of an aluminum framework (including movement and control components), three cameras, and a laptop computer. A control program was developed using LabVIEW to manage operation of the system frame and sensors as a single-unit automated HTP system. Image processing algorithms were developed in MATLAB for high-throughput analysis of images acquired by the system to estimate phenotypes and traits associated with tested plants. The phenotypes extracted were color/spectral, texture, temperature, morphology, and greenness features on a temporal scale. Using two wheat lines with known heat tolerance, the functions of the HTP system were validated. Heat stress tolerance experiments revealed that features such as green leaf area and green normalized difference vegetation index derived from our system showed differences between the control and heat stress treatments, as well as between heat-tolerant and susceptible wheat lines. In another experiment, stripe rust resistance in wheat was assessed. With the HTP system, some potential for detecting qualitative traits, such as disease resistance, was observed, although further validation is needed. In summary, successful development and implementation of an automated system with custom image processing algorithms for HTP in wheat was achieved. Improvement of such systems would further help plant breeders, physiologists, and agronomists to phenotype crops in an efficient, objective, and high-throughput manner.
机译:近年来植物育种显着改善;然而,表型仍然是一个瓶颈,因为评估和测量植物特征的过程通常是昂贵的,主观和费力的。虽然商业表型系统可用,但是对特定控制环境条件的成本,空间和需要等因素限制了这些产品的负担能力。对植物育种者,生理学家和农学学家来说,非常需要准确,用户友好,适应性和高通量表型(HTP)系统。为了解决这个问题,在本研究中开发并测试了自动化HTP系统和图像处理算法。自动化平台是铝框架(包括运动和控制部件),三台摄像机和笔记本电脑的集成。使用LabVIEW开发了一个控制程序,以管理系统帧和传感器的操作作为单位自动化HTP系统。在MATLAB中开发了图像处理算法,用于系统获得的图像的高通量分析,以估计与测试植物相关的表型和特征。提取的表型是颞级的颜色/光谱,纹理,温度,形态和绿色特征。使用具有已知耐热性的两条小麦线,验证了HTP系统的功能。热应力耐受实验表明,衍生自我们系统的绿叶面积和绿叶面积和绿色归一化差异植被指数的特征在控制和热应激处理之间以及耐热性和易感小麦线之间存在差异。在另一个实验中,评估小麦的条纹耐锈性。通过HTP系统,观察到检测定性特征的一些可能性,虽然需要进一步验证。总之,实现了在小麦中具有定制图像处理算法的自动化系统的成功开发和实施。这种系统的改善将进一步帮助植物育种者,生理学家和农学学是有效,客观和高吞吐量的表型作物。

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