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  1. KRISHI Publication and Data Inventory Repository
  2. Crop Science A5
  3. ICAR-National Bureau of Agricultural Insect Resources H1
  4. CS-NBAIR-Publication
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Please use this identifier to cite or link to this item: http://krishi.icar.gov.in/jspui/handle/123456789/24099
Title: Shannon information theory a useful tool for detecting significant abiotic factors influencing the population dynamics of Helicoverpa armigera (Hübner) on cotton crop
Other Titles: Not Available
Authors: M pratheepa
Abraham Verghese
Bheemanna H
ICAR Data Use Licennce: http://krishi.icar.gov.in/PDF/ICAR_Data_Use_Licence.pdf
Author's Affiliated institute: ICAR::National Bureau of Agricultural Insect Resources
Published/ Complete Date: 2016-10-10
Project Code: Not Available
Keywords: Helicoverpa armigera, Abiotic, Cotton, Shannon information theory, Data mining, Crop stag
Publisher: Elsevier
Citation: Not Available
Series/Report no.: Not Available;
Abstract/Description: Helicoverpa armigera is a major pest on cotton (Gossypium spp.) and India ranks second in world production of cotton. This pest is highly adapted to different environments and abundance of this pest is due to both abiotic factors and hosts. In this study, the data mining technique based on Shannon information theory has been used for finding the significant factors that affect H. armigera incidence. This has been discussed in detail. The crop stage of cotton, season and abiotic factors like maximum temperature, minimum temperature, morning relative humidity, evening relative humidity, rainfall, number of rainy days in a week, have been considered for the analysis. The results of Shannon information theory showed that among all the factors, crop stage played a major role followed by number of rainy days in a week and relative humidity for the pest incidence and agreed well with correlation analysis
Description: Not Available
ISSN: Not Available
Type(s) of content: Journal
Sponsors: Not Available
Language: English
Name of Journal: Ecological Modelling
NAAS Rating: 8.5
Volume No.: 337
Page Number: 25-28
Name of the Division/Regional Station: Division of Genomic Resources
Source, DOI or any other URL: https://doi.org/10.1016/j.ecolmodel.2016.06.003
URI: http://krishi.icar.gov.in/jspui/handle/123456789/24099
Appears in Collections:CS-NBAIR-Publication

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