A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechanics is the origin of the Born rule: why is the probability given by the square of the amplitude? Following Vaidman, we note that observers are in a position of self-locating uncertainty during the period between the branches of the wave function splitting via decoherence and the observer registering the outcome of the measurement. In this period it is tempting to regard each branch as equiprobable, but we argue that the temptation should be resisted. Applying lessons from this analysis, we demonstrate (using methods similar to those of Zurek's envariance-based derivation) that the Born rule is the uniquely rational way of apportioning credence...
We defend the many-worlds interpretation of quantum mechanics (MWI) against the objection that it ca...
We defend the many-worlds interpretation of quantum mechanics (MWI) against the objection that it ca...
We defend the many-worlds interpretation of quantum mechanics (MWI) against the objection that it ca...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We defend the many-worlds interpretation of quantum mechanics (MWI) against the objection that it ca...
We defend the many-worlds interpretation of quantum mechanics (MWI) against the objection that it ca...
We defend the many-worlds interpretation of quantum mechanics (MWI) against the objection that it ca...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
A longstanding issue in attempts to understand the Everett (Many-Worlds) approach to quantum mechani...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We provide a derivation of the Born Rule in the context of the Everett (Many-Worlds) approach to qua...
We defend the many-worlds interpretation of quantum mechanics (MWI) against the objection that it ca...
We defend the many-worlds interpretation of quantum mechanics (MWI) against the objection that it ca...
We defend the many-worlds interpretation of quantum mechanics (MWI) against the objection that it ca...