| [1] |
Nie L, Peng S. 2017. Rice production in China. In Rice production worldwide, ed. Chauhan BS, Jabran K, Mahajan G. Cham, Netherlands: Springer. pp. 33–52 doi: 10.1007/978-3-319-47516-5_2 |
| [2] |
Tang L, Risalat H, Cao R, Hu Q, Pan X, et al. 2022. Food security in China: A brief view of rice production in recent 20 years. |
| [3] |
Hu Y, Cheng H, Tao S. 2016. The challenges and solutions for cadmium-contaminated rice in China: A critical review. |
| [4] |
Zhang J, Zhu Y, Yu L, Yang M, Zou X, et al. 2022. Research advances in cadmium uptake, transport and resistance in rice (Oryza sativa L.). |
| [5] |
Li H, Luo N, Li YW, Cai QY, Li HY, et al. 2017. Cadmium in rice: Transport mechanisms, influencing factors, and minimizing measures. |
| [6] |
Sun L, Wang R, Tang W, Chen Y, Zhou J, et al. 2022. Robust identification of low-Cd rice varieties by boosting the genotypic effect of grain Cd accumulation in combination with marker-assisted selection. |
| [7] |
Liao C, Huang M. 2025. Substantial progress and remaining challenges in developing low-cadmium rice in China. |
| [8] |
Sasaki A, Yamaji N, Yokosho K, Ma JF. 2012. Nramp5 is a major transporter responsible for manganese and cadmium uptake in rice. |
| [9] |
Tang L, Dong J, Qu M, Lv Q, Zhang L, et al. 2022. Knockout of OsNRAMP5 enhances rice tolerance to cadmium toxicity in response to varying external cadmium concentrations via distinct mechanisms. |
| [10] |
Bin Rahman ANMR, Zhang J. 2023. Trends in rice research: 2030 and beyond. |
| [11] |
Xiong D, Flexas J, Huang J, Cui K, Wang F, et al. 2022. Why high yield QTLs failed in preventing yield stagnation in rice? |
| [12] |
Yagioka A, Hayashi S, Kimiwada K, Kondo M. 2021. Sink production and grain-filling ability of a new high-yielding rice variety, Kitagenki. |
| [13] |
Yang J, Zhang J. 2023. Simultaneously improving grain yield and water and nutrient use efficiencies by enhancing the harvest index in rice. |
| [14] |
Zi W, Li J, Chen J, Cao F, Zheng H, et al. 2025. High grain yield and high nitrogen use efficiency can be achieved simultaneously in single-season hybrid rice. |
| [15] |
Huang M, Cao J, Zhang R, Chen J, Cao F, et al. 2022. Late-stage vigor contributes to high grain yield in high-quality hybrid rice. |
| [16] |
Huang M, Yin X, Jiang L, Zou Y, Deng G. 2015. Raising potential yield of short-duration rice cultivars is possible by increasing harvest index. Biotechnologie, Agronomie, Société et Environnement 19:153−159 |
| [17] |
Huang M, Chen J, Cao F, Jiang L, Zou Y, et al. 2016. Improving physiological N-use efficiency by increasing harvest index in rice: a case in super-hybrid cultivar Guiliangyou 2. |
| [18] |
Ying J, Peng S, He Q, Yang H, Yang C, et al. 1998. Comparison of high-yield rice in tropical and subtropical environments I. Determinants of grain and dry matter yields. |
| [19] |
Zhang Y, Tang Q, Zou Y, Li D, Qin J, et al. 2009. Yield potential and radiation use efficiency of "super" hybrid rice grown under subtropical conditions. |
| [20] |
Huang M, Xiao Z, Fang S, Zhang H, Liu L, et al. 2024. Achieving super high yield in rice by simultaneously increasing panicle number and grain weight via improving pre-heading biomass production. |
| [21] |
Fu Y, Huang N, Zhong X, Mai G, Pan H, et al. 2023. Improving grain yield and nitrogen use efficiency of direct-seeded rice with simplified and nitrogen-reduced practices under a double-cropping system in South China. |
| [22] |
Capua DG, Rahmstorf S. 2023. Extreme weather in a changing climate. |