Key Features:
- Introductory chapters on the various topics of the book, including HTA, R and statistical inference
- A wide range of common analytical tools used in HTA, from modelling for individual-level data, missing data, survival analysis, decision-modelling and network meta-analysis
- More advanced and increasingly popular tools, such as those for population adjustment, discrete event simulation and the use of web applications as front-end for the overall statistical modelling
- Many detailed worked examples and case studies using real data to illustrate the methodology
- Fully integrated R code gives detailed guidance on implementation of the techniques
- Supplemented by a website with additional resources, including annotated code and data
This text is primarily aimed at modellers working in the field of HTA, regulators and reviewers of reimbursement dossiers and cost-effectiveness analyses. It also complements a wide range of undergraduate and graduate programmes in HTA, health and public health economics, as well as academic researchers in the field of statistical modelling for HTA.
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