Chapter 7 · Book pp. 189–213 · August 9, 2026 edition
High-Accuracy Samplers
Use accept/reject correction and conductance tools to obtain exact-target chains.
Begin with 7.1 Open this chapter in the canonical August 9 source ↗Chapter route
This chapter develops proposal kernel, acceptance ratio, detailed balance, conductance. Its main destination is to connect the definitions below to the results that later chapters consume.
Core definitions
- A rejection sampler accepts a proposal using a density-envelope ratio.
- The Metropolis-Hastings filter corrects a proposal kernel through a reversible acceptance ratio.
- Conductance measures the one-step flow across measurable cuts.
- A warm start bounds the initial density ratio relative to stationarity.
Main results
- The Metropolis-Hastings correction preserves the target through detailed balance.
- Conductance and warmness convert local proposal quality into global mixing.
- MALA obtains high-accuracy guarantees from both cold and warm initializations under different smoothing arguments.
- Acceptance estimates determine the stable step-size and complexity regimes.
Contents
- 7.1Rejection SamplingBook p. 189
- 7.2The Metropolis-Hastings FilterBook p. 191
- 7.3An Overview of High-Accuracy SamplersBook p. 193
- 7.4Markov Chains in Discrete TimeBook p. 197
- 7.5Analysis of MALA for a Cold StartBook p. 203
- 7.6Analysis of MALA for a Warm StartBook p. 206
- 7.bibBibliographical NotesBook p. 209
- 7.exExercisesBook p. 211
Why is this chapter route valid?
Analytic contracts
- Kernel measurability and exceptional zero-density cases must be defined.
- Detailed balance is a measure identity, not merely a pointwise density calculation.
- Cold-start arguments require smoothing or explicit initialization bounds.
Open boundaries
- General accept/reject kernel
- Conductance-to-mixing theorem
- Cold-start MALA chain
View Lean formalization
These mappings are evidence links, not a claim that the entire chapter is formalized.
No declaration-level source block is mapped for this chapter yet.