ไฝ ่ฎpaperไบๅ๏ผโ ้ๆผๅๅฃค็ๆ
็้ฃไบไบ (Reading Papers on Soil Biodiversity Together)
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๐ Journal surfing - 03.2021: ็็ฉๅคๆจฃๆงใๆง็ๆนๆณ่ๆผๅใ็็ฉๅฐ็
Manage episode 301132897 series 2960096
๐ ้ไธ้ๆฏไธๆไปฝ็ๆ็ซ ๏ผไป็ดนไบไธไบ็็ฉๅคๆจฃๆงใๆง็ๆนๆณ่ๆผๅใ่็็ฉๅฐ็็็ ็ฉถ๏ผ
[Trait-based methods]
(00:53-04:02)
1.ไปฅ่ผๅนณ่กก็ๅคๆง็็ตๅไพ่จ็ฎ็ฉ็จฎ้็ๅ่ฝๅทฎ็ฐ doi.org/10.1111/2041-210X.13537
de Bello, F., Botta-Dukรกt, Z., Lepลก, J., & Fibich, P. (2021). Towards a more balanced combination of multiple traits when computing functional differences between species.
Methods in Ecology and Evolution, 12(3), 443โ448. ยฉ 2020 British Ecological Society.
(04:04-08:50)
2.ๅฐๅบฆๆฑๅ้ฆฌๆ้
ๅฑฑๆตทๆๆขฏๅบฆๅคฉ่พ็ง็จฎๅ
งๆง็็่ฎ็ฐ่็พค่ฝๆงๅปบ doi.org/10.1002/ece3.7054
Mungee, M., & Athreya, R. (2021). Intraspecific trait variability and community assembly in hawkmoths (Lepidoptera: Sphingidae) across an elevational gradient in the eastern Himalayas, India.
Ecology and Evolution, 11, 2471โ2487. ยฉ 2020 The Authors.
(08:52-11:39)
3.็จฎๅ
งๆง็่ฎ็ฐๅจไฟ้ฒๅ่ฝ็ๆ
ไฝ็ถญๅบฆไธญ็้่ฆๆง doi.org/10.1111/ecog.05254
He, D., Biswas, S. R., Xu, M. S., Yang, T. H., You, W. H., & Yan, E. R. (2021). The importance of intraspecific trait variability in promoting functional niche dimensionality.
Ecography, 44(3), 380โ390. ยฉ 2020 The Authors.
[Methods in Biodiversity]
(11:59-12:20)
4.ๆธฌ้็ฉ็จฎๅคๆจฃๆง็ๆฆๅฟตๆๅ doi.org/10.1111/oik.07202
Roswell, M., Dushoff, J., & Winfree, R. (2021). A conceptual guide to measuring species diversity.
Oikos, 130(3), 321โ338. ยฉ 2020 The Authors.
(12:20-12:49)
5.้ฃๆฅ้ซ้้็็ฉๅคๆจฃๆงๅ้๏ผๅ
จ็ๅบๆผๆจฃๅฐๅบๅ ้ซๆถๆงๆดๅ่็ถๅ็่ฏๆฉ doi.org/10.1111/mec.15797
Arribas, P., Andรบjar, C., Bidartondo, M. I., Bohmann, K., Coissac, ร., Creer, S., โฆ Emerson, B. C. (2021). Connecting high-throughput biodiversity inventories: Opportunities for a site-based genomic framework for global integration and synthesis.
Molecular Ecology, 30(5), 1120โ1135. ยฉ 2020 The Authors.
(12:50-13:08)
6.ๆดๆฃ-็ๆ
ไฝ้ฃ็บ้ซๆๆธ๏ผไธ็จฎ็จๆผ้ๅ็พค่ฝๆงๅปบ้็จไธญๆดๆฃ่็ๆ
ไฝ้็จ็ธๅฐ้่ฆๆง็ๆฐๆๆจ doi.org/10.1111/ecog.05356
Vilmi, A., Gibert, C., Escarguel, G., Happonen, K., Heino, J., Jamoneau, A., โฆ Wang, J. (2021). Dispersalโniche continuum index: a new quantitative metric for assessing the relative importance of dispersal versus niche processes in community assembly.
Ecography, 44(3), 370โ379. ยฉ 2020 The Authors.
[Trait evolution]
(13:13-13:46)
7.่้ฃๅ็ขๅฑ้ฃๆง็้ฉๆไฟไฝฟๆทกๆฐด้ญๅจๅ
ถ่ผปๅฐๆผๅไธญๅบ็พๅคงๅ่
น่
็่ถจๅๆผๅ๏ผ่ณ้ฐพๆดพ๏ผ่้ฏ็ฎ๏ผ doi.org/10.1111/evo.14178
Burns, M. D. (2021). Adaptation to herbivory and detritivory drives the convergent evolution of large abdominal cavities in a diverse freshwater fish radiation (Otophysi: Characiformes).
Evolution, 75(3), 688โ705. ยฉ 2021 The Authors. ยฉ 2021 The Society for the Study of Evolution.
[Macroecology]
(13:47-14:21)
8.ๆผๅ็ๆ้ๆไฝณ่งฃ้ไบ็พ็ๆทกๆฐด้ญ็ทฏๅบฆไธ็ๅคๆจฃๆงๆขฏๅบฆ doi.org/10.1111/geb.13253
Miller, E. C., & Romรกn-Palacios, C. (2021). Evolutionary time best explains the latitudinal diversity gradient of living freshwater fish diversity.
Global Ecology and Biogeography, 30(3), 749โ763. ยฉ 2021 John Wiley & Sons Ltd
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ืคืจืงืื
1. ไปฅ่ผๅนณ่กก็ๅคๆง็็ตๅไพ่จ็ฎ็ฉ็จฎ้็ๅ่ฝๅทฎ็ฐ doi.org/10.1111/2041-210X.13537 (00:00:53)
2. ๅฐๅบฆๆฑๅ้ฆฌๆ้ ๅฑฑๆตทๆๆขฏๅบฆๅคฉ่พ็ง็จฎๅ งๆง็็่ฎ็ฐ่็พค่ฝๆงๅปบ doi.org/10.1002/ece3.7054 (00:04:04)
3. ็จฎๅ งๆง็่ฎ็ฐๅจไฟ้ฒๅ่ฝ็ๆ ไฝ็ถญๅบฆไธญ็้่ฆๆง doi.org/10.1111/ecog.05254 (00:08:52)
4. ๆธฌ้็ฉ็จฎๅคๆจฃๆง็ๆฆๅฟตๆๅ doi.org/10.1111/oik.07202 (00:11:59)
5. ้ฃๆฅ้ซ้้็็ฉๅคๆจฃๆงๅ้๏ผๅ จ็ๅบๆผๆจฃๅฐๅบๅ ้ซๆถๆงๆดๅ่็ถๅ็่ฏๆฉ doi.org/10.1111/mec.15797 (00:12:20)
6. ๆดๆฃ-็ๆ ไฝ้ฃ็บ้ซๆๆธ๏ผไธ็จฎ็จๆผ้ๅ็พค่ฝๆงๅปบ้็จไธญๆดๆฃ่็ๆ ไฝ้็จ็ธๅฐ้่ฆๆง็ๆฐๆๆจ doi.org/10.1111/ecog.05356 (00:12:50)
7. ่้ฃๅ็ขๅฑ้ฃๆง็้ฉๆไฟไฝฟๆทกๆฐด้ญๅจๅ ถ่ผปๅฐๆผๅไธญๅบ็พๅคงๅ่ น่ ็่ถจๅๆผๅ๏ผ่ณ้ฐพๆดพ๏ผ่้ฏ็ฎ๏ผ doi.org/10.1111/evo.14178 (00:13:13)
8. ๆผๅ็ๆ้ๆไฝณ่งฃ้ไบ็พ็ๆทกๆฐด้ญ็ทฏๅบฆไธ็ๅคๆจฃๆงๆขฏๅบฆ doi.org/10.1111/geb.13253 (00:13:47)
24 ืคืจืงืื