Symbol Q_min
in is part of the quantity the equation computes from the expression on the right.
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A second, independent ceiling bounds not the rate of erasure but the total information a bounded system can hold at all: the Bekenstein bound limits the entropy of a system of effective size R and energy E to S 2 RE/( c) [ 8 ] . For a processor of size R=1\, holding E=1\, of available energy, this gives S27\, , equivalent to roughly 2.910^{24} bits of maximum distinguishable entropy — a static capacity ceiling, not a rate. Erasing that many bits at 10\, would cost at least =ST0.27\, , more than a quarter of the entire energy budget assumed available, entirely independent of any horizon.…
in is part of the quantity the equation computes from the expression on the right.
Read this term in its guide →S is an input to the expression that computes the quantity on the left.
Read this term in its guide →T is an input to the expression that computes the quantity on the left.
Read this term in its guide →J is an input to the expression that computes the quantity on the left.
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Equation 103 · Evolutionary Physics
This equation states an equality: the expressions on both sides have the same value under the article’s assumptions.
A second, independent ceiling bounds not the rate of erasure but the total information a bounded system can hold at all: the Bekenstein bound limits the entropy of a system of effective size R and energy E to S 2 RE/( c) [ 8 ] . For a processor of size R=1\, holding E=1\, of available energy, this gives S27\, , equivalent to roughly 2.910^{24} bits of maximum distinguishable entropy — a static capacity ceiling, not a rate. Erasing that many bits at 10\, would cost at least =ST0.27\, , more than a quarter of the entire energy budget assumed available, entirely independent of any horizon.…
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