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					Data Visualisation / Astronomy Challenges to commonality  How does Astronomical visualisation differ from others?  Infrastructure Requirements  Grid Requirements  Nature of Astronomical Data & Visualisation Largely Static  2d tables (catalogues)  pixel images  Metadata (some)  Exploration – largely visual  Hypothesis testing – largely mining  Challenges Lots of loud astronomers  Hard to Normalise, esp between disciplines. Yet need to retain access to ‘raw’ data.  Objects move…  Large images / tables Æ sample, aggregate  Finding out about existing tools  More Challenges       Special Science Requirements for tools (eg finding distances on images) Æ plugins Noisy data (but bio / meteo have same problem) Incomplete/high error models (bio / meteo again) Inherent Mk 1 eyeball limitations. Solid cubes. Make use of colours, shapes, movies. 7d on paper. Need pre-visualisation methods AND retain access to raw data. Grid Requirements Reliability – the right data to the right machine!  Speed & Latency (for visualisation)  Collaboration (not yet)  Integration – access to eg stats services  Easy / simple controls – focus on science not infrastructure.  Summary Tools exist  ‘generalising’ + ‘modularisation’  Expertise exists – ‘synergy’ with professional visualisors  Astronomy data not unique – ‘synergy’ with other disciplines 
 
									 
									 
									 
									 
									 
									 
                                             
                                             
                                             
                                             
                                             
                                             
                                             
                                             
                                             
                                             
                                            