Detection of the tulip breaking virus (TBV) in tulips using optical sensors

被引:23
作者
Polder, G. [1 ]
van der Heijden, G. W. A. M. [1 ]
van Doorn, J. [3 ]
Clevers, J. G. P. W. [2 ]
van der Schoor, R.
Baltissen, A. H. M. C. [3 ]
机构
[1] Wageningen Univ, NL-6700 AC Wageningen, Netherlands
[2] Wageningen Univ, Ctr Geoinformat, NL-6700 AA Wageningen, Netherlands
[3] Wageningen Univ, NL-2160 AB Lisse, Netherlands
关键词
Plant virus; Image processing; Hyperspectral imaging; Spectroscopy; Machine vision; LEAF PIGMENT CONTENT; CHLOROPHYLL FLUORESCENCE; PLANT; REFLECTANCE; INFORMATION; LEAVES; RANGE;
D O I
10.1007/s11119-010-9169-2
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
The tulip breaking virus (TBV) causes severe economic losses for countries that export tulips such as the Netherlands. Infected plants have to be removed from the field as soon as possible. There is an urgent need for a rapid and objective method of screening. In this study, four proximal optical sensing techniques for the detection of TBV in tulip plants were evaluated and compared with a visual assessment by crop experts as well as with an ELISA (enzyme immunoassay) analysis of the same plants. The optical sensor techniques used were an RGB color camera, a spectrophotometer measuring from 350 to 2500 nm, a spectral imaging camera covering a spectral range from 400 to 900 nm and a chlorophyll fluorescence imaging system that measures the photosynthetic activity. Linear discriminant classification was used to compare the results of these optical techniques and the visual assessment with the ELISA score. The spectral imaging system was the best optical technique and its error was only slightly larger than the visual assessment error. The experimental results appear to be promising, and they have led to further research to develop an autonomous robot for the detection and removal of diseased tulip plants in the open field. The application of this robot system will reduce the amount of insecticides and the considerable pressure on labor for selecting diseased plants by the crop expert.
引用
收藏
页码:397 / 412
页数:16
相关论文
共 36 条
[1]  
*ASDI, 2010, LEAF CLIP
[2]  
ASJES C, 1975, EUROPEAN J PLANT PAT, V81, P64, DOI DOI 10.1007/BF02650332
[3]   Control of aphid-vectored and thrips-borne virus spread in lily, tulip, iris and dahlia by sprays of mineral oil, polydimethylsiloxane and pyrethroid insecticide in the field [J].
Asjes, CJ ;
Blom-Barnhoorn, GJ .
ANNALS OF APPLIED BIOLOGY, 2001, 139 (01) :11-19
[4]   Stable recombinant alpaca antibodies for detection of Tulip virus X [J].
Beekwilder, Jules ;
van Houwelingen, Adele ;
van Beckhoven, Jose ;
Speksnijder, Arjen .
EUROPEAN JOURNAL OF PLANT PATHOLOGY, 2008, 121 (04) :477-485
[5]   Monitoring and screening plant populations with combined thermal and chlorophyll fluorescence imaging [J].
Chaerle, Laury ;
Leinonen, Ilkka ;
Jones, Hamlyn G. ;
Van Der Straeten, Dominique .
JOURNAL OF EXPERIMENTAL BOTANY, 2007, 58 (04) :773-784
[6]   Using spectral information from the NIR water absorption features for the retrieval of canopy water content [J].
Clevers, J. G. P. W. ;
Kooistra, L. ;
Schalepman, M. E. .
INTERNATIONAL JOURNAL OF APPLIED EARTH OBSERVATION AND GEOINFORMATION, 2008, 10 (03) :388-397
[7]   CHARACTERIZATION OF POTYVIRUSES FROM TULIP AND LILY WHICH CAUSE FLOWER-BREAKING [J].
DEKKER, EL ;
DERKS, AFLM ;
ASJES, CJ ;
LEMMERS, MEC ;
BOL, JF ;
LANGEVELD, SA .
JOURNAL OF GENERAL VIROLOGY, 1993, 74 :881-887
[8]   PURIFICATION OF TULIP BREAKING VIRUS AND PRODUCTION OF ANTISERA FOR USE IN ELISA [J].
DERKS, AFLM ;
VINKVANDENABEELE, JL ;
VANSCHADEWIJK, AR .
NETHERLANDS JOURNAL OF PLANT PATHOLOGY, 1982, 88 (03) :87-98
[9]   Assessing leaf pigment content and activity with a reflectometer [J].
Gamon, JA ;
Surfus, JS .
NEW PHYTOLOGIST, 1999, 143 (01) :105-117
[10]   REMOTE-SENSING OF THE XANTHOPHYLL CYCLE AND CHLOROPHYLL FLUORESCENCE IN SUNFLOWER LEAVES AND CANOPIES [J].
GAMON, JA ;
FIELD, CB ;
BILGER, W ;
BJORKMAN, O ;
FREDEEN, AL ;
PENUELAS, J .
OECOLOGIA, 1990, 85 (01) :1-7