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We introduce Biomaker CA: a Biome Maker project using Cellular Automata (CA).
Theory of Self-Reproducing Automata
Neumann, J. V. and Burks, A. W. (1966) · 1966
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Mathematical games
Gardner, M. (1970) · 1970
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An approach to the synthesis of life
Ray, T. S. (1991) · 1991
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Evolving 3d morphology and behavior by competition
Sims, K. (1994) · 1994
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Computational genetics, physiology, metabolism, neural systems, learning, vision, and behavior or polyworld: Life in a new context
Yaeger, L. (1995) · 1995
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Perspective: Complex adaptations and the evolution of evolvability
Wagner, G. P. and Altenberg, L. (1996) · 1996
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Evolvability
Kirschner, M. and Gerhart, J. (1998) · 1998
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Attractiveness vs. efficiency (how mate preference affects location in the evolution of artificial swimming organisms)
Ventrella, J. (1998) · 1998
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Reasons for premature convergence of self-adapting mutation rates
Glickman, M. and Sycara, K. (2000) · 2000
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How neutral networks influence evolvability
Ebner, M., Shackleton, M., and Shipman, R. (2001) · 2001
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Avida: a software platform for research in computational evolutionary biology
Ofria, C. and Wilke, C. O. (2004) · 2004
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Spontaneous evolution of modularity and network motifs
Kashtan, N. and Alon, U. (2005) · 2005
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A virtual creatures model for studies in artificial evolution
Miconi, T. and Channon, A. (2005) · 2005
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Unbounded evolutionary dynamics in a system of agents that actively process and transform their environment
Channon, A. (2006) · 2006
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Selecting for evolvable representations
Reisinger, J. and Miikkulainen, R. (2006) · 2006
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Division blocks and the open-ended evolution of development, form, and behavior
Spector, L., Klein, J., and Feinstein, M. (2007) · 2007
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Natural selection fails to optimize mutation rates for long-term adaptation on rugged fitness landscapes
Clune, J., Misevic, D., Ofria, C., Lenski, R. E., Elena, S. F., and Sanjuán, R. (2008) · 2008
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Exploiting open-endedness to solve problems through the search for novelty
Lehman, J. and Stanley, K. O. (2008) · 2008
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Evosphere: Evolutionary dynamics in a population of fighting virtual creatures
Miconi, T. (2008) · 2008
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Is evolvability evolvable?
Pigliucci, M. (2008) · 2008
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Policy gradients with Parameter-Based exploration for control
Sehnke, F., Osendorfer, C., Rückstieß, T., Graves, A., Peters, J., and Schmidhuber, J. (2008) · 2008
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Evolutionary self-adaptation: a survey of operators and strategy parameters
Kramer, O. (2010) · 2010
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Improving evolvability through novelty search and self-adaptation
Lehman, J. and Stanley, K. O. (2011) · 2011
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Picbreeder: a case study in collaborative evolutionary exploration of design space
Secretan, J., Beato, N., D’Ambrosio, D. B., Rodriguez, A., Campbell, A., Folsom-Kovarik, J. T., and Stanley, K. O. (2011) · 2011
Cited alongside, same era.
The evolutionary origins of modularity
Clune, J., Mouret, J.-B., and Lipson, H. (2013) · 2013
Cited alongside, same era.
Powerplay: Training an increasingly general problem solver by continually searching for the simplest still unsolvable problem
Paired open-ended trailblazer (poet): Endlessly generating increasingly complex and diverse learning environments and their solutions
Wang, R., Lehman, J., Clune, J., and Stanley, K. O. (2019) · 2019
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Growing neural cellular automata
Mordvintsev, A., Randazzo, E., Niklasson, E., and Levin, M. (2020) · 2020
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Self-classifying mnist digits
Randazzo, E., Mordvintsev, A., Niklasson, E., Levin, M., and Greydanus, S. (2020) · 2020
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Enhanced poet: Open-ended reinforcement learning through unbounded invention of learning challenges and their solutions
Wang, R., Lehman, J., Rawal, A., Zhi, J., Li, Y., Clune, J., and Stanley, K. O. (2020) · 2020
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Adversarial reprogramming of neural cellular automata
Randazzo, E., Mordvintsev, A., Niklasson, E., and Levin, M. (2021a) · 2021
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Schmidhuber, J. (2013) · 2013
Cited alongside, same era.
Identifying necessary conditions for open-ended evolution through the artificial life world of chromaria
Soros, L. and Stanley, K. (2014) · 2014
Cited alongside, same era.
Enhancing divergent search through extinction events
Lehman, J. and Miikkulainen, R. (2015) · 2015
Cited alongside, same era.
Illuminating search spaces by mapping elites
Mouret, J.-B. and Clune, J. (2015) · 2015
Cited alongside, same era.
Evolvability search: Directly selecting for evolvability in order to study and produce it
Mengistu, H., Lehman, J., and Clune, J. (2016) · 2016
Cited alongside, same era.
Quality diversity: A new frontier for evolutionary computation
Pugh, J. K., Soros, L. B., and Stanley, K. O. (2016) · 2016
Cited alongside, same era.
How a life-like system emerges from a simple particle motion law
Schmickl, T., Stefanec, M., and Crailsheim, K. (2016) · 2016
Cited alongside, same era.
Randazzo, E., Versari, L., and Mordvintsev, A. (2021b) · 2021
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Open-ended learning leads to generally capable agents
Team, O. E. L., Stooke, A., Mahajan, A., Barros, C., Deck, C., Bauer, J., Sygnowski, J., Trebacz, M., Jaderberg, M., Mathieu, M., McAleese, N., Bradley-Schmieg, N., Wong, N., Porcel, N., Raileanu, R., Hughes-Fitt, S., Dalibard, V., and Czarnecki, W. M. (2021) · 2021
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Adversarial Takeover of Neural Cellular Automata
Cavuoti, L., Sacco, F., Randazzo, E., and Levin, M. (2022) · 2022
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Powderworld: A platform for understanding generalization via rich task distributions
Frans, K. and Isola, P. (2022) · 2022
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Growing Isotropic Neural Cellular Automata
Mordvintsev, A., Randazzo, E., and Fouts, C. (2022b) · 2022
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Flow-lenia: Towards open-ended evolution in cellular automata through mass conservation and parameter localization
Plantec, E., Hamon, G., Etcheverry, M., Oudeyer, P.-Y., Moulin-Frier, C., and Chan, B. W.-C. (2022) · 2022
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Deep transfer learning for image classification: a survey
Plested, J. and Gedeon, T. (2022) · 2022
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Towards large-scale simulations of open-ended evolution in continuous cellular automata
Chan, B. W.-C. (2023) · 2023
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Alien project
Heinemann, C. (2023) · 2023
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Summary of chatgpt/gpt-4 research and perspective towards the future of large language models
Liu, Y., Han, T., Ma, S., Zhang, J., Yang, Y., Tian, J., He, H., Li, A., He, M., Liu, Z., Wu, Z., Zhu, D., Li, X., Qiang, N., Shen, D., Liu, T., and Ge, B. (2023) · 2023
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Growing steerable neural cellular automata
Randazzo, E., Mordvintsev, A., and Fouts, C. (2023) · 2023
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The life engine
Robinson, M. (2023) · 2023
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Self-replication, spontaneous mutations, and exponential genetic drift in neural cellular automata
Sinapayen, L. (2023) · 2023
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Evolvability in dynamic fitness landscapes: a genetic algorithm approach
Grefenstette, J. (1999) · 2038
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