Detection of Stress Induced by Soybean Aphid (Hemiptera: Aphididae) Using Multispectral Imagery from Unmanned Aerial Vehicles

Author:

Marston Zachary P D1,Cira Theresa M1ORCID,Hodgson Erin W2,Knight Joseph F3,Macrae Ian V4,Koch Robert L1

Affiliation:

1. Department of Entomology, University of Minnesota, Saint Paul, MN

2. Department of Entomology, Iowa State University, Ames, IA

3. Department of Forest Resources, University of Minnesota, Saint Paul, MN

4. Department of Entomology, University of Minnesota, Northwest Research and Outreach Center, Crookston, MN

Abstract

Abstract Soybean aphid, Aphis glycines Matsumura (Hemiptera: Aphididae), is a common pest of soybean, Glycine max (L.) Merrill (Fabales: Fabaceae), in North America requiring frequent scouting as part of an integrated pest management plan. Current scouting methods are time consuming and provide incomplete coverage of soybean. Unmanned aerial vehicles (UAVs) are capable of collecting high-resolution imagery that offer more detailed coverage in agricultural fields than traditional scouting methods. Recently, it was documented that changes to the spectral reflectance of soybean canopies caused by aphid-induced stress could be detected from ground-based sensors; however, it remained unknown whether these changes could also be detected from UAV-based sensors. Small-plot trials were conducted in 2017 and 2018 where cages were used to manipulate aphid populations. Additional open-field trials were conducted in 2018 where insecticides were used to create a gradient of aphid pressure. Whole-plant soybean aphid densities were recorded along with UAV-based multispectral imagery. Simple linear regressions were used to determine whether UAV-based multispectral reflectance was associated with aphid populations. Our findings indicate that near-infrared reflectance decreased with increasing soybean aphid populations in caged trials when cumulative aphid days surpassed the economic injury level, and in open-field trials when soybean aphid populations were above the economic threshold. These findings provide the first documentation of soybean aphid-induced stress being detected from UAV-based multispectral imagery and advance the use of UAVs for remote scouting of soybean aphid and other field crop pests.

Funder

Agriculture and Food Research Initiative

USDA National Institute of Food and Agriculture

Publisher

Oxford University Press (OUP)

Subject

Insect Science,Ecology,General Medicine

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