16. Koch, C. (2012), Consciousness: Confessions of a Romantic Reductionist (London: MIT Press), p. 65.
17. Quian Quiroga, R., et al. (2008), Trends in Cognitive Science 12:87–91.
18. Waydo, S., et al. (2006), Journal of Neuroscience 26:10232–4.
19. Yuste, R. (2015), Nature Reviews Neuroscience 16:487–97, p. 488.
20. Goodale, M. and Milner, A. (1992), Trends in Neuroscience 15:20–25.
21. Milner, A. (2017), Experimental Brain Research 235:1297–308.
22. Vargas-Irwin, C., et al. (2015), Journal of Neuroscience 35:10888–97.
23. Saur, D., et al. (2008), Proceedings of the National Academy of Sciences USA 105:18035–40.
24. Barlow, H. (1972), Perception 1:371–94; Barlow, H. (2009), Perception 38:795–807.
25. Crick, F. (1958), Symposia of the Society of Experimental Biology 12:138–63.
26. Boden (2006), vol. 2, p. 1206.
27. James (1890), vol. 1, p. 179.
28. Barlow (1972), p. 390.
29. Там же, p. 381.
30. Barlow (2009), p. 797.
31. White, J., et al. (1986), Philosophical Transactions of the Royal Society of London: B 314:1–340.
32. White J. (2013), in The C. elegans Research Community (eds.), WormBook, https://tinyurl.com/mindofworm.
33. Crick, F. and Jones, E. (1993), Nature 361:109–10.
34. Felleman, D. and Van Essen, D. (1991), Cerebral Cortex 1:1–47.
35. Sporns O., et al. (2005), PLoS Computational Biology 1:e42, p. 245; Hagmann, P. (2005), ‘From Diffusion MRI to Brain Connectomics’ (PhD Thesis, Lausanne: EPFL), doi:10.5075/epfl-thesis-3230; Seung, S. (2012), Connectome: How the Brain’s Wiring Makes Us Who We Are (Boston: Houghton Mifflin Harcourt).
36. Morabito, C. (2017), Nuncius 32:472–500.
37. Swanson, L. and Lichtman, J. (2016), Annual Review of Neuroscience 39:197–216, p. 197.
38. Bardin, J. (2012), Nature 483:394–6.
39. Smith, S., et al. (2015), Nature Neuroscience 18:1565–7.
40. Ingalhalikar, M., et al. (2014), Proceedings of the National Academy of Sciences USA 111:823–8; Joel, D. and Tarrasch, R. (2014), Proceedings of the National Academy of Sciences USA 111:E637; Cahill, L. (2015), Proceedings of the National Academy of Sciences USA 111:577–8.
41. Morgan, J. and Lichtman, J. (2013), Nature Methods 10:494–500, p. 497.
42. E conomo, M., et al. (2016), eLife 5:e10566.
43. Wolff, S. and Olveczky, B. (2018), Current Opinion in Neurobiology 49:84–94; Winnubst. J., et al. (2019), Cell, 179:268–81
44. Ero, C., et al. (2018), Frontiers in Neuroinformatics 12:00084.
45. Bargmann, C. (2013), Bioessays 34:458–65, p. 464.
46. White (2013).
47. Swanson and Lichtman (2016), p. 198.
48. Bargmann, C. and Marder, E. (2013), Nature Methods 10:483–90.
49. Shimizu, K. and Stopfer, M. (2013), Current Biology 23:R1026–R1031.
50. Ohyama, T., et al. (2015), Nature 520:633–9.
51. Morgan, J. and Lichtman, J. (2019), https://www.biorxiv.org/content/ 10.1101/683276v1
52. Sasaki, T., et al. (2012), Proceedings of the National Academy of Sciences USA 109:20720–5.
53. Mu, Y., et al. (2019), Cell 178:27–43.
54. Savtchouk I. and Volterra, A. (2018), Journal of Neuroscience 38:14–25; Fiacco, T. and McCarthy, K. (2018), Journal of Neuroscience 38:3–13.
55. Fitzsimonds, R., et al. (1997), Nature 388:439–48.
56. Bullock, T., et al. (2005), Science 310:791–2.
57. Yuste (2015).
58. Harvey, C., et al. (2012), Nature 484:62–8.
59. Yuste (2015), p. 494.
60. Buzsaki, G. (2010), Neuron 68:362–85; Buzsaki, G. (2019), The Brain from Inside Out (New York: Oxford University Press).
61. Saxena, S. and Cunningham, J. (2019), Current Opinion in Neurobiology 55:103–11.
62. Простое объяснение низкоразмерных многообразий: Richard Gao’s blog post: https://tinyurl.com/manifold-explanation.
63. Gallego, J., et al. (2017), Neuron 94:978–84; Gonzalez, W., et al. (2019), Science 365:821–5; Oby, E., et al. (2019), Proceedings of the National Academy of Sciences 116:15210–5.
64. Nassim, C. (2018), Lessons from the Lobster: Eve Marder’s Work in Neuroscience (Cambridge, MA: MIT Press).