Inverse Problems
Mixing time is the time it takes for a Markov chain to converge to its stationary distribution, which means the distribution that the chain will eventually settle into after many transitions. This concept is crucial in assessing the efficiency of Markov Chain Monte Carlo methods, as it influences how quickly these algorithms can produce samples that accurately represent the desired distribution. A shorter mixing time indicates that the chain reaches equilibrium faster, making it more effective for applications in statistical sampling and computational statistics.
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