Community Ecology -  Mark Gardener

Community Ecology (eBook)

Analytical Methods Using R and Excel
eBook Download: EPUB
2014
425 Seiten
Pelagic Publishing (Verlag)
978-1-907807-63-3 (ISBN)
Systemvoraussetzungen
52,99 inkl. MwSt
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Covers many of the mainstays of community analysis including: diversity, similarity and cluster analysis, ordination and multivariate analyses. Aimed at undergraduate and postgraduate students and researchers seeking a step-by-step methodology for analysing plant and animal communities using R and Excel.


Interactions between species are of fundamental importance to all living systems and the framework we have for studying these interactions is community ecology. This is important to our understanding of the planets biological diversity and how species interactions relate to the functioning of ecosystems at all scales. Species do not live in isolation and the study of community ecology is of practical application in a wide range of conservation issues.The study of ecological community data involves many methods of analysis. In this book you will learn many of the mainstays of community analysis including: diversity, similarity and cluster analysis, ordination and multivariate analyses. This book is for undergraduate and postgraduate students and researchers seeking a step-by-step methodology for analysing plant and animal communities using R and Excel.Microsoft's Excel spreadsheet is virtually ubiquitous and familiar to most computer users. It is a robust program that makes an excellent storage and manipulation system for many kinds of data, including community data. The R program is a powerful and flexible analytical system able to conduct a huge variety of analytical methods, which means that the user only has to learn one program to address many research questions. Its other advantage is that it is open source and therefore completely free. Novel analytical methods are being added constantly to the already comprehensive suite of tools available in R.Mark Gardener is both an ecologist and an analyst. He has worked in a range of ecosystems around the world and has been involved in research across a spectrum of community types. His knowledge of R is largely self-taught and this gives him insight into the needs of students learning to use R for complicated analyses.

lt;p>Mark Gardener (www.gardenersown.co.uk) is an ecologist, lecturer, and writer working in the UK. His primary area of research was in pollination ecology and he has worked in the UK and around the word (principally Australia and the United States). Since his doctorate he has worked in many areas of ecology, often as a teacher and supervisor. He believes that ecological data, especially community data, is the most complicated and ill-behaved and is consequently the most fun to work with. He was introduced to R by a like-minded pedant whilst working in Australia during his doctorate. Learning R was not only fun but opened up a new avenue, making the study of community ecology a whole lot easier. He is currently self-employed and runs courses in ecology, data analysis, and R for a variety of organizations. Mark lives in rural Devon with his wife Christine, a biochemist who consequently has little need of statistics.

1. Starting to look at communities

2. Software tools for community ecology

3. Recording your data

4. Beginning data exploration: using software tools

5. Exploring data: choosing your analytical method

6. Exploring data: getting insights

7. Diversity: species richness

8. Diversity: indices

9. Diversity: comparing

10. Diversity: sampling scale

11. Rank abundance or dominance models

12. Similarity and cluster analysis

13. Association analysis: identifying communities

14. Ordination

Appendices

Bibliography

Index

Erscheint lt. Verlag 1.2.2014
Reihe/Serie Data in the Wild
Verlagsort Exeter
Sprache englisch
Themenwelt Informatik Office Programme Excel
Mathematik / Informatik Mathematik
Naturwissenschaften Biologie Ökologie / Naturschutz
Schlagworte community ecology • conservation • Data Analysis • ecosystem • multivariate • Statistics
ISBN-10 1-907807-63-2 / 1907807632
ISBN-13 978-1-907807-63-3 / 9781907807633
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