Equation 2 · Every Test Changed the Scene and Kept the Chair Red
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reduces to a DCM whenever its learned function f satisfies three stated analytic conditions [ 1 , 2 ] . That is a real theorem about the architecture’s dynamical form, established independently of this drone task, and nothing in this article disputes it. What it does not supply, on its own, is a certificate that the specific f this paper’s networks actually learned from confounded pixel data recovers the task’s true cause — the target’s identity and position — rather than a merely convenient, shift-stable correlate of it. Judea Pearl’s formal treatment of causal inference is explicit that a causal claim is licensed by an intervention: showing that changing one variable while holding others…
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reduces to a DCM whenever its learned function f satisfies three stated analytic conditions [ 1 , 2 ] . That is a real theorem about the architecture’s dynamical form, established independently of this drone task, and nothing in this article disputes it. What it does not supply, on its own, is a certificate that the specific f this paper’s networks actually learned from confounded pixel data recovers the task’s true cause — the target’s identity and position — rather than a merely convenient, shift-stable correlate of it. Judea Pearl’s formal treatment of causal inference is explicit that a causal claim is licensed by an intervention: showing that changing one variable while holding others fixed changes the outcome in the way the causal story predicts, not by showing that an outcome remains stable under variables that were never the confound in question [ 8 ] . A theorem about the architecture’s capacity to represent interventions under training is not the same claim as a demonstration that this trained network used that capacity to separate the chair’s identity from the chair’s color, and the paper’s own evidence, read at the level of what was actually intervened on across all eight entries in its log, never performs the second demonstration.
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