| [1] |
Spaargaren J, van Geest G. 2018. Chrysanthemum. |
| [2] |
Song X, Gao K, Fan G, Zhao X, Liu Z, et al. 2018. Quantitative classification of the morphological traits of ray florets in large-flowered Chrysanthemum. |
| [3] |
Luo XY, Song XB, Dai SL. 2016. Variation and probability grading of quantitative characters of traditional chrysanthemum cultivars. |
| [4] |
Qi S, Twyford AD, Ding JY, Borrell JS, Wang LZ, et al. 2022. Natural interploidy hybridization among the key taxa involved in the origin of horticultural chrysanthemums. |
| [5] |
Datta DSK. 2012. Year round cultivation of garden Chrysanthemum (Chrysanthemum morifolium Ramat.) through photoperiodic response. Science and culture 78:71−77 |
| [6] |
Esquinas-Alcázar J. 2005. Protecting crop genetic diversity for food security: political, ethical and technical challenges. |
| [7] |
Gao K, Song X, Kong D, Dai S. 2020. Genetic analysis of leaf traits in small-flower Chrysanthemum (Chrysanthemum × morifolium Ramat.). |
| [8] |
Kumar S, Kumar M, Yadav HK, Sharma S, Kumar S, et al. 2017. Genetic diversity and population structure analysis of Chrysanthemum (Dendranthema grandiflora Tzvelev) germplasm based on RAPD markers. |
| [9] |
Feng S, He R, Lu J, Jiang M, Shen X, et al. 2016. Development of SSR markers and assessment of genetic diversity in medicinal Chrysanthemum morifolium cultivars. |
| [10] |
Hodaei M, Rahimmalek M, Arzani A. 2019. Genetic diversity of Iranian Chrysanthemum morifolium cultivars using morphological traits and sequence-related amplified polymorphism (SRAP) markers. |
| [11] |
Shao QS, Guo QS, Deng YM, Guo HP. 2010. A comparative analysis of genetic diversity in medicinal Chrysanthemum morifolium based on morphology, ISSR and SRAP markers. |
| [12] |
Li ZH, He LF, Wang XJ, Guo LF, Luo CY, et al. 2023. Genetic diversity analysis and fingerprints of Chrysanthemum × morifolium based on SSR molecular markers. |
| [13] |
Thakur A, Sharma R, Dhiman SR, Negi R, Singh A. 2023. Genetic diversity analysis in chrysanthemum (Dendranthema grandiflora Tzvelev) using SSR markers: corroborating mutant behaviour of newly evolved genotypes. |
| [14] |
Zhang Y, Cao YF, Huo HL, Xu JY, Tian LM, et al. 2022. An assessment of the genetic diversity of pear (Pyrus L.) germplasm resources based on the fruit phenotypic traits. |
| [15] |
Chen L, Liu Y, Chen CJ, Ji RS, Du HZ, et al. 2022. Analysis on Genetic Diversity of Agronomic Traits in Chrysanthemum Germplasm for Medicinal and Tea Use. |
| [16] |
Xu LJ, Liang HZ, Yu YL, Tan ZW, Yang Q, et al. 2022. Establishment of comprehensive evaluation of chrysanthemum germplasm and selection of elite resource. Northern Horticulture 12:55−63 (in Chinese) |
| [17] |
Heidari P, Rezaei M, Sahebi M, Khadivi A. 2019. Phenotypic variability of Pyrus boissieriana buhse: implications for conservation and breeding. |
| [18] |
Mirheidari F, Khadivi A, Moradi Y, Paryan S. 2020. Phenotypic characterization of Prunus haussknechtii Bornm., P. elaeagnifolia Spach, and P. Orientalis Mill. |
| [19] |
Ruiz D, Egea J. 2008. Phenotypic diversity and relationships of fruit quality traits in apricot (Prunus armeniaca L.) germplasm. |
| [20] |
Song X, Zhao X, Fan G, Gao K, Dai S, et al. 2018. Genetic analysis of the corolla tube merged degree and the relative number of ray florets in chrysanthemum (Chrysanthemum × morifolium Ramat.). |
| [21] |
Cui H, Zhang Y, Shi X, Gong F, Xiong X, et al. 2019. The numerical classification and grading standards of daylily (Hemerocallis) flower color. |
| [22] |
Arias R, Lee TC, Logendra L, Janes H. 2000. Correlation of lycopene measured by HPLC with the L*, a*, b* color readings of a hydroponic tomato and the relationship of maturity with color and lycopene content. |
| [23] |
Khadivi A, Mirheidari F, Moradi Y, Paryan S. 2020. Morphological and pomological characterizations of Pyrus syriaca Boiss. germplasm. |
| [24] |
Sun Z, LI Q, Wang X, Zhao W, Xue Y, et al. 2017. Comprehensive evaluation and phenotypic diversity analysis of germplasm resources in Mandarin. |
| [25] |
Gao Y, Yu Z. 2020. Quality evaluation of celery based on principal component analysis. |
| [26] |
Zarei A, Erfani-Moghadam J, Jalilian H. 2019. Assessment of variability within and among four Pyrus species using multivariate analysis. |
| [27] |
Ma Y, Wang XC, Mu YJ, Yang FF, Gao JL, et al. 2019. Principal component analysis of quality indexes of different varieties of Actinidia arguta. |
| [28] |
Petruccelli R, Ganino T, Ciaccheri L, Maselli F, Mariotti P. 2013. Phenotypic diversity of traditional cherry accessions present in the Tuscan region. |
| [29] |
Pan YH. 2015. Analysis of concepts and categories of plant phenome and phenomics. |
| [30] |
Wang LR, Zhu GR, Fang WC. 2006. The evaluating criteria of some botanical quantitative characters of peach genetic resources. |
| [31] |
Campbell DR. 2009. Using phenotypic manipulations to study multivariate selection of floral trait associations. |
| [32] |
Goodman RM. 2004. Encyclopedia of plant and crop science. New York: Emerald Publishing. pp. 37−38. doi: |
| [33] |
Wang T, van Dijk ADJ, Cai X, Wu J, Bonnema G, et al. 2025. Brassica diversity through the lens of polyploidy: genomic evolution, introgression, and homoeologous exchange. |
| [34] |
Bala M, Rehana S, Singh MP. 2023. Self-incompatibility: a targeted, unexplored pre-fertilization barrier in flower crops of Asteraceae. |
| [35] |
Guo F, Lv P, Wu C, Peng J, Qin D, et al. 2020. Phenotypic Diversity Analysis of Cutting Flower Chrysanthemum Germplasm Resources Based on Phenotypic Traits. |
| [36] |
Li J, Xu L, Chi L, Wei W, Ma Q, et al. 2022. Phenotypic Diversity Analysis of Chrysanthemum indicum Germplasm Resources. |
| [37] |
Cao Q, Lu BR, Xia H, Rong J, Sala F, et al. 2006. Genetic diversity and origin of weedy rice (Oryza sativa f. spontanea) populations found in North-eastern China revealed by simple sequence repeat (SSR) markers. |
| [38] |
Wei S, Luo L, Long P. 2016. The diversity of lettuce resource based on the analysis of phenotypic traits. |
| [39] |
Hu BL, Wan Y, Li X, Lei JG, Luo XD, et al. 2012. Analysis on genetic diversity of phenotypic traits in rice (Oryza sativa) core collection and its comprehensive assessment. |