Abdollahi Hesar, A., Sofalian, O., Alizadeh, B., Asghari, A., Zali, H., 2020. Evaluation of some autumn canola genotypes based on agronomy traits and SIIG index. Journal of Crop Breeding. 12, 93-104. [In Persian with English summary].
Ahmadi, K., Gholizadeh, H.A., Ebadzadeh, H. R., Hatami, F., Fazliestabragh, M., Hussein pour, R., Kazemian, A., Rafeie, M., 2016. Agricultural Statistics. Ministry of Agriculture-Jahad. Vol. 1. 163p. [In Persian].
Brim, C.A., Johnson, H.W., Cockerham, C.C., 1959. Multiple selection criteria in soybeans. Agronomy Journal. 51, 42-46.
Drikvand, R., Samiei, K., Hossinpoor, T., 2011. Path coefficient analysis in hull-less barley under rainfed condition. Australian Journal of Basic and Applied Sciences. 5, 277-279.
Emami, S., Asghari, A., Mohammaddoust Chamanabad, H., Rasoulzadeh, A., Ramzi, E. 2019. Evaluation of osmotic stress tolerance in durum wheat (Triticum durum L.) advanced lines. Environmental Stresses Crop Sciences. 12, 697-707. [In Persian with English summary].
FAO. 2017. Statistical data. www. FAOSTAT. Org.
Ferreira, J. R., Pereira, J. F., Turchetto, C., Minella, E., Consoli, L., Delatorre, C. A. 2016. Assessment of genetic diversity in Brazilian barley using SSR markers. Genetics and Molecular Biology. 39, 86-96.
Hadado, T., Rau, D., Bitocchi, E., Pado, R. 2009. Genetic diversity of barley (Hordeum vulgre L.) landraces from the central highlands of Eithiopia: comparison between the Belg and Meher growing seasons using morphological traits. Genetic Resources and Crop Evolution. 56, 1131-1148.
Holland, J.B. 2006. Estimating genotypic correlations and their standard errors using multivariate restricted maximum likelihood estimation with SAS Proc MIXED. Crop Science. 46, 642-654.
Lin, C. Y. 1978. Index selection for genetic improvement of quantitative characters. Theoretical Applied Genetics. 52, 49-56.
Kampthorne, O., Nordskog, A.W. 1959. Restricted selection indices. Biometrics. 15, 10-19.
Mohtashmi, R. 2015. The correlation study of important barley agronomic traits and grain yield by Path Analysis. Biological Forum – An International Journal. 7, 1211-1219.
Mondal, S., Singh, R.P., Crossa, J., Huerta-Espino, J., Sharma, I., Chatrath, R., Singh,G.P., Sohu, V.S., Mavi, G.S., Sukuru, V.S.P., Kalappanavar, I.K., Mishra, V.K.,Hussain, M., Gautam, N.R., Uddin, J., Barma, N.C.D., Hakim, A., Joshi, A.K., 2013. Earliness in wheat: a key to adaptation under terminal and continual high temperature stress in South Asia. Field Crops Research. 151, 19–26.
Mondal, S., Singh, R.P., Mason, E.R., Huerta-Espino, J., Autrique, E., Joshi, A.K., 2016. Grain yield, adaptation and progress in breeding for early-maturingand heat-tolerant wheat lines in South Asia. Field Crops Research. 192, 78–85
Najafi Mirak, T., Dastfal, M., Andarzian, B., Farzadi, H., Bahari, M., Zali, H., 2018. Stability analysis of grain yield of durum wheat promising lines in warm and dry areas using parametric and non-parametric methods. Journal of Crop Production and Processing. 8, 79-96. [In Persian with English summary].
Pesek, J., Baker, R.J., 1969. Desired improvement in relation to selection indices. Canadian Journal of Plant Science. 49, 803-804.
Rabiei, B., Valizdah, M. Ghareyazie, B., Moghaddam, M., 2004. Evaluation of selection indices for improving rice grain shape. Field Crops Research. 89, 359-367.
Ramzi, E., Asghari, A., Khomari, S., Chamanabad, H.M., 2018. Investigation of durum wheat (Triticum turgidum L. subsp. Durum Desf) lines for tolerance to aluminum stress condition. Journal of Crop Breeding. 10, 63-72. [In Persian with English summary].
Rane, J., Pannu, R.K., Sohu, V.S., Saini, R.S., Mishra, B., Shoran, J., Crossa, J., Vargas, M., Joshi, K., 2007. Performance of yield and stability of advanced wheat cultivar under heat stress environments of the Indo-Gangetic plains. Crop Science. 47, 1561-1572.
Rodríguez, F., Alvarado, G., Pacheco, Á., Burgueño. J., 2017. ACBD-R. Augmented Complete Block Design with R for Windows. Version 3.0.
https://hdl.handle.net/11529/ 10855. CIMMYT Research Data & Software Repository Network, V3, DEACCESSIONED VERSION.
Smith, H.F., 1936. A discriminant function for plant selection. Annals of Eugenics. 7, 240-250.
Tahmasebi, S., Dastfal, M., Zali, H., Rajaei, M., 2018. Drought tolerance evaluation of bread heat cultivars and promising lines in warm and dry climate of the south. Cereal Research. 8, 209-225. [In Persian with English summary].
Wahid, A., Gelani, S., Ashraf, M., Foolad, M.R., 2007. Heat tolerance in plants, An Overview. Environmental and Experimental Botany. 61, 199-223.
Yagoutipour, A., Farshadfar, E., Saeedi, M., 2017. Assessment of durum wheat genotypes for drought tolerance by suitable compound method. Environmental Stress in Crop Sciences. 10, 247-256. [In Persian with English summary].
Zali, H., Sofalian, O., Hasanloo, T., Asghari, A., Hoseini, S.M. 2015. Appraising of drought tolerance relying on stability analysis indices in canola genotypes simultaneously, using selection index of ideal genotype (SIIG) technique: Introduction of new method. Biological Forum – An International Journal. 7, 703-711.
Zali, H., Sofalian, O., Hasanloo, T., Asghari, A., Zeinalabedini, M., 2017. Appropriate strategies for selection of drought tolerant genotypes in canola. Journal of Crop Breeding. 78, 77-90. [In Persian with English summary].
Zali, H., Barati, A., 2020. Evaluation of selection index of ideal genotype (SIIG) in other to selection of barley promising lines with high yield and desirable agronomy traits. Journal of Crop Breeding. 12, 93-104. [In Persian with English summary].
Zeng, X.Q. 2015. Genetic variability in agronomic traits of a germplasm collection of hulless barley. Genetics and Molecular Research. 14, 18356-18369.