<span id="references-and-access-record" class="quantum-anchor"></span>

## 14 References and access record

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### 14.1 Programme publications

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**M.** Rodgers, J. (2026). *Shadow Theory and Consciousness: Awareness, Perspectival Realization, and the Source-to-Experience Problem*. SPC-2, version 2, publication edition, 20 September. Zenodo. [`doi:10.5281/zenodo.`22853774](https://doi.org/10.5281/zenodo.22853774).

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**P2.** Rodgers, J. (2026). *Relational Boundaries and Awareness Localization: Robustness, Composition, and Identification Limits*. Version 1.0, 29 September. Zenodo. [`doi:10.5281/zenodo.`23075822](https://doi.org/10.5281/zenodo.23075822). Relevant anchors: P2-16–P2-19, P2-21–P2-22, P2-32–P2-33 and the hierarchical relational construction.

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**P3.** Rodgers, J. (2026). *Learning Effective Interfaces from Opaque Stochastic Systems: Capacity, Selection, and Validation Limits*. Revised preprint version 2, 29 September. Zenodo. [`doi:10.5281/zenodo.`23075824](https://doi.org/10.5281/zenodo.23075824).

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**P4.** Rodgers, J. (2026). *Identifying Binary Realizations from Intervention Laws: Certificates, Recoding Obstructions, and a Bounded SPC-2/IIT Comparison*. Version 1.1-RC1, 30 September. Zenodo. [`doi:10.5281/zenodo.`23075828](https://doi.org/10.5281/zenodo.23075828). The cited source retains a separate pending supporting-archive reference; that historical archive is not reproduced here.

<span id="external-primary-sources" class="quantum-anchor"></span>

### 14.2 External primary sources

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**L1.** Tronick, E. Z., et al. (1998). Dyadically expanded states of consciousness and the process of therapeutic change. *Infant Mental Health Journal*, 19(3), 290–299. [Publisher record and abstract](https://onlinelibrary.wiley.com/doi/abs/10.1002/(SICI)1097-0355(199823)19:3%3C290::AID-IMHJ4%3E3.0.CO;2-Q). DOI: 10.1002/(SICI)1097-0355(199823)19:3\<290::AID-IMHJ4\>3.0.CO;2-Q. Scope: metadata and abstract, not full article.

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**L2.** De Jaegher, H., and Di Paolo, E. (2007). Participatory sense-making: An enactive approach to social cognition. *Phenomenology and the Cognitive Sciences*, 6, 485–507. DOI: 10.1007/s11097-007-9076-9. [Author-hosted full text](https://hannedejaegher.net/wp-content/uploads/2009/11/dejaegherdipaolo07participatorysensemaking.pdf). Scope: full text available; abstract and relevant autonomy, embodiment and interaction passages consulted.

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**L3.** Clark, A., and Chalmers, D. J. (1998). The extended mind. *Analysis*, 58(1), 7–19. DOI: [`10.1093/analys/58.1.7`](https://doi.org/10.1093/analys/58.1.7). [Author-hosted text](https://www.consc.net/papers/extended.html). Scope: full text consulted for external coupling and cognitive participation.

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**L4.** Littman, M. L., Sutton, R. S., and Singh, S. (2002; conference 2001). Predictive representations of state. *Advances in Neural Information Processing Systems*, 14. [Proceedings PDF](https://proceedings.neurips.cc/paper/2001/file/1e4d36177d71bbb3558e43af9577d70e-Paper.pdf). Scope: primary full text, predictive-test representation and linear-state results.

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**L5.** Tzeng, W.-G. (1992). A polynomial-time algorithm for the equivalence of probabilistic automata. *SIAM Journal on Computing*, 21(2), 216–227. [Publisher record](https://epubs.siam.org/doi/10.1137/0221017). DOI: 10.1137/0221017. Scope: metadata and abstract only.

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**L6.** Subramanian, J., Sinha, A., Seraj, R., and Mahajan, A. (2022). Approximate information state for approximate planning and reinforcement learning in partially observed systems. *Journal of Machine Learning Research*, 23(12), 1–83. [Journal PDF](https://www.jmlr.org/papers/volume23/20-1165/20-1165.pdf). Scope: primary full text, exact/approximate information-state definitions and performance-bound discussion.

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**L7.** Alver, S., and Precup, D. (2023). Minimal value-equivalent partial models for scalable and robust planning in lifelong reinforcement learning. *Proceedings of Machine Learning Research*, 232, 548–567. [Proceedings record](https://proceedings.mlr.press/v232/alver23a.html). Scope: metadata and abstract.

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**L8.** Russell, S., and Wefald, E. (1991). Principles of metareasoning. *Artificial Intelligence*, 49(1–3), 361–395. DOI: 10.1016/0004-3702(91)90015-C. [Archived opening page](https://iiif.library.cmu.edu/file/Newell_box00014_fld01011_doc0001/Newell_box00014_fld01011_doc0001.pdf). Scope: title, authors, abstract and opening discussion; complete article not retrieved.

<span id="ref-l9" class="quantum-anchor"></span>

**L9.** Rubenstein, P. K., Weichwald, S., Bongers, S., Mooij, J. M., Janzing, D., Grosse-Wentrup, M., and Schölkopf, B. (2017). Causal consistency of structural equation models. *UAI 2017*. [Author-deposited manuscript](https://arxiv.org/abs/1707.00819). Scope: primary abstract and full-text transformation discussion consulted. Interventions, rather than observational agreement alone, determine the relevant consistency target.

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**L10.** Kretch, K. S., Franchak, J. M., and Adolph, K. E. (2014). Crawling and walking infants see the world differently. *Child Development*, 85(4), 1503–1518. DOI: 10.1111/cdev.12206. [Author-hosted manuscript](https://johnfranchak.github.io/padlab/publications/2014-KretchFranchakAdolph-ChiDev.pdf). Scope: abstract, apparatus/design, selected results and discussion; no raw-data reanalysis. The PDF has 2013 advance-publication formatting.

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**L11.** Ellis, K., et al. (2021). DreamCoder: Bootstrapping inductive program synthesis with wake-sleep library learning. *Proceedings of the 42nd ACM SIGPLAN International Conference on Programming Language Design and Implementation (PLDI 2021)*, 835–850. DOI: 10.1145/3453483.3454080. [Primary manuscript](https://www.neurosymbolic.org/papers/EllisWNSMHCST21.pdf). Scope: abstract, architecture, component comparisons and training-cost discussion; no replication.
