Мозг – повелитель времени — страница 50 из 54

, 46, 289–301.

— Haeusler, S., Maass, W. (2007). A statistical analysis of information-processing properties of lamina-specific cortical microcircuit models. Cerebral Cortex, 17, 149–162.

— Hafele, J. C., Keating, R. E. (1972a). Around-the-world atomic clocks: Observed relativistic time gains. Science, 177, 168–170.

— Hafele, J. C., Keating, R. E. (1972b). Around-the-world atomic clocks: Predicted relativistic time gains. Science, 177, 166–168.

— Haggard, P. (2008). Human volition: towards a neuroscience of will. National Review of Neuroscience, 9, 934–946.

— Haggard, P. (2011). Decision time for free will. Neuron, 69, 404–406.

— Hahnloser, R. H. R., Kozhevnikov, A. A., Fee M. S. (2002). An ultrasparse code underlies the generation of neural sequence in a songbird. Nature, 419, 65–70.

— Hakimi, S., Hare, T. A. (2015). Enhanced neural responses to imagined primary rewards predict reduced monetary temporal discounting. Journal of Neuroscience, 35, 13103–13109.

— Hammond, C. (2012). Time warped: Unlocking the mysteries of time perception. New York: Harper-Perennial.

— Han, C. J., Robinson, J. K. (2001). Cannabinoid modulation of time estimation in the rat. Behavioral Neuroscience 115, 243–246.

— Harrington, D. L., Castillo, G. N., Reed J. D., Song, D. D., Lit-van I., Lee, R. R. (2014). Dissociation of neural mechanisms for intersensory timing deficits in Parkinson’s disease. Timing &Time Perception, 2, 145–168.

— Harris, S. (2012). Free will. New York: Free Press. В русском переводе: Харрис С. Свобода воли, которой не существует. — Альпина Паблишер, 2015.

— Hassabis, D., Kumaran, D., Vann, S. D., Maguire, E. A. (2007). Patients with hippocampal amnesia cannot imagine new experiences. Proceedings of the National Academy of Sciences USA, 104, 1726–1731.

— Hawking, S. (1996). A brief history of time. New York: Bantam Books. В русском переводе: Хокинг С. Краткая история времени. — АСТ, 2017.

— Hayashi, M. J., Kanai, R., Tanabe, H. C., Yoshida, Y., Carlson, S., Walsh, V., Sadato, N. (2013). Interaction of numerosity and time in prefrontal and parietal cortex. Journal of Neuroscience, 33, 883–893.

— Helson, H., King, S. M. (1931). The tau effect: an example of psychological relativity. Journal of Experimental Psychology, 14, 202–217.

— Henderson, J., Hurly, T. A., Bateson, M., Healy, S. D. (2006). Timing in free-living rufous hummingbirds, Selasphorus rufus. Current Biology, 16, 512–515.

— Herculano-Houzel, S. (2009). The human brain in numbers: a linearly scaled-up primate brain. Frontiers in Human Neuroscience, 3.

— Herzog, E. D., Aton, S.J., Numano, R., Sakaki, Y., Tei H. (2004). Temporal precision in the mammalian circadian system: A reliable clock from less reliable neurons. Journal of Biological Rhythms, 19, 35–46.

— Herzog M. H., Kammer T., Scharnowski F. (2016). Time slices: What is the duration of a percept? PLoS Biol, 14, e1002433.

— Hicks, R. E., Miller, G. W., Kinsbourne, M. (1976). Prospective and retrospective judgments of time as a function of amount of information processed. American Journal of Psychology, 89, 719–730.

— Hinkley, N., Sherman, J. A., Phillips, N. B., Schioppo, M., Lemke, N. D., Beloy, K., Pizzocaro, M., Oates, C. W., Ludlow, A. D. (2013). An atomic clock with 10–18 instability. Science, 341, 1215–1218.

— Honing, H., Merchant, H., Háden, G. P., Prado, L., Bartolo, R. (2012). Rhesus monkeys (Macaca mulatta) detect rhythmic groups in music, but not the beat. PLoS ONE, 7, e51369.

— Hoskins,J. (1993). The play of time: Kodi perspectives on calendars, history, and exchange. Berkeley: University of California Press.

— Huang, Y., Jones, B. (1982). On the interdependence of temporal and spatial judgments. Perception &Psychophysics, 32, 7–14.

— Hume, D. (1739/2000). A treatise on human nature. Oxford: Oxford University Press. В русском переводе: Юм Д. Трактат о человеческой природе. — Азбука, 2001.

— Hussain, F., Gupta, C., Hirning, A. J., Ott, W., Matthews, K. S., Josić K., Bennett, M. R. (2014). Engineered temperature compensation in a synthetic genetic clock. Proceedings of the National Academy of Sciences, 111, 972–977. — Huxley, T. H. (1894/1911). Collected essays: Method and results. New York: D. Appleton.

— Ikeda, H., Kubo, T., Kuriyama, K., Takahashi, M. (2014). Self-awakening improves alertness in the morning and during the day after partial sleep deprivation. Journal of Sleep Research, 23, 673–680.

— Ishihara, M., Keller, P. E., Rossetti, Y., Prinz, W. (2008). Horizontal spatial representations of time: Evidence for the STEARC effect. Cortex, 44, 454–461.

— Ishizawa, Y., Ahmed, O. J., Patel, S. R., Gale, J. T., Sierra-Mercado, D., Brown, E. N., Eskandar, E. N. (2016). Dynamics of propofolinduced loss of consciousness across primate neocortex. Journal of Neuroscience, 36, 7718–7726.

— Ivry, R. B., Schlerf, J. E. (2008). Dedicated and intrinsic models of time perception. Trends in Cognitive Sciences, 12, 273–280.

— Jacobs, B., Schall, M., Prather, M., Kapler, E., Driscoll, L., Baca, S., Jacobs, J., Ford, K., Wainwright, M., Treml, M. (2001). Regional dendritic and spine variation in human cerebral cortex: A quantitative golgi study. Cerebral Cortex, 11, 558–571. — James, W. (1890). The principles of psychology. New York: Dover Publications. В русском переводе: Джемс У. Психология. — Педагогика, 1991.

— Janssen, P., Shadlen, M. N. (2005). A representation of the hazard rate of elapsed time in the macaque area LIP. Nature Neuroscience, 8, 234–241.

— Jazayeri, M., Shadlen, M. N. (2010). Temporal context calibrates interval timing. Nature Neuroscience, 13, 1020–1026.

— Jazayeri, M., Shadlen, M. N. (2015). A neural mechanism for sensing and reproducing a time interval. Current Biology, 25, 2599–2609.

— Jin, D. Z., Fujii, N., Graybiel, A. M. (2009). Neural representation of time in cortico-basal ganglia circuits. Proceedings of the National Academy of Science USA, 106, 19156–19161.

— Johnson, C. H., Golden, S. S., Kondo, T. (1998). Adaptive significance of circadian programs in cyanobacteria. Trends in Microbiology, 6, 407–410.

— Johnson, H. A., Goel, A., Buonomano, D. V. (2010). Neural dynamics of in vitro cortical networks reflects experienced temporal patterns. Nature Neuroscience, 13, 917–919.

— Jones, C. R., Campbell, S. S., Zone, S. E., Cooper, F., DeSano, A., Murphy, P. J., Jones, B., Czajkowski, L., Ptáček, L., J. (1999). Familial advanced sleep-phase syndrome: A short-period circadian rhythm variant in humans. Nature Medicine, 5, 1062–1065.

— Jones, C. R., Huang, A. L., Ptáček, L. J., Fu, Y.-H. (2013). Genetic basis of human circadian rhythm disorders. Experimental Neurology, 243, 28–33.

— Kable, J. W., Glimcher, P. W. (2007). The neural correlates of subjective value during intertemporal choice. Nature Neuroscience, 10, 1625–1633.

— Kanabus, M., Szelag, E., Rojek, E., Poppel, E. (2002). Temporal order judgment for auditory and visual stimuli. Acta Neurobiologiae Experimentalis, 62, 263–270.

— Kandel, E. (2013). The new science of mind and the future of knowledge. Neuron, 80, 546–560.

— Kandel, E. R., Schartz, J., Jessel, T., Siegelbaum, S. A., Hudspeth, A. J. (2013). Principles of neural science, 5th ed. New York: McGraw-Hill Medical.

— Karlsson, M. P., Frank, L. M. (2009). Awake replay of remote experiences in the hippocampus. Nature Neuroscience, 12, 913–918.

— Karmarkar, U. R., Najarian, M. T., Buonomano, D. V. (2002). Mechanisms and significance of spike-timing dependent plasticity. Biological Cybernetics, 87, 373–382.

— Keele, S. W., Pokorny, R. A., Corcos, D. M., Ivry, R. (1985). Do perception and motor production share common timing mechanisms: a correctional analysis. Acta Psychologica (Amst.), 60, 173–191.

— Kiesel, A., Vierck, E. (2009). SNARC-like congruency based on number magnitude and response duration. Journal of Experimental Psychology: Learning, Memory, and Cognition, 35, 275–279.

— Kilgard, M. P., Merzenich, M. M. (1995). Anticipated stimuli across skin. Nature, 373, 663.

— Kilgard, M. P., Merzenich, M. M. (2002). Order-sensitive plasticity in adult primary auditory cortex. Proceedings of the National Academy of Science USA, 99, 3205–3209.

— Killingsworth, M. A., Gilbert, D. T. (2010). A wandering mind is an unhappy mind. Science, 330, 932.

— Kim, J., Ghim, J.-W., Lee, J. H., Jung, M. W. (2013). Neural correlates of interval timing in rodent prefrontal cortex. Journal of Neuroscience, 33, 13834–13847.

— Kivimäki, M., Batty, G. D., Hublin, C. (2011). Shift work as a risk factor for future type 2 diabetes: evidence, mechanisms, implications, and future research directions. PLoS Med, 8, e1001138.

— Klampf l, S., David, S. V., Yin, P., Shamma, S. A., Maass, W. (2012). A quantitative analysis of information about past and present stimuli encoded by spikes of A1 neurons. Journal of Neurophysiology, 108, 1366–1380.

— Knutsson, A. (2003). Health disorders of shift workers. Occupational Medicine, 53, 103–108.

— Koch, C. (2004). The quest for consciousness: A neurobiological approach. Englewood, CO: Robers & Company.

— Konopka, R. J., Benzer, S. (1971). Clock mutants of Drosophila melanogaster. Proceedings of the National Academy of Science USA, 68, 2112–2116.

— Kording, K. (2007). Decision theory: What “should” the nervous system do? Science, 318, 606–610.

— Kostarakos, K., Hedwig, B. (2012). Calling song recognition in female crickets: Temporal tuning of identified brain neurons matches behavior.