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Constellation: A Visualization Tool for Linguistic Queries from MindNet Tamara Munzner François Guimbretière Stanford University George Robertson Microsoft.

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Presentation on theme: "Constellation: A Visualization Tool for Linguistic Queries from MindNet Tamara Munzner François Guimbretière Stanford University George Robertson Microsoft."— Presentation transcript:

1 Constellation: A Visualization Tool for Linguistic Queries from MindNet Tamara Munzner François Guimbretière Stanford University George Robertson Microsoft Research

2 Overview solve specific problem –help linguists improve MindNet algorithms chosen techniques –custom semantic layout –perceptual channels –interaction as first-class citizen

3 Definition Graph dictionary entry sentence nodes: word senses links: relation types

4 Semantic Network definition graphs as building blocks unify shared words large network –millions of nodes –global structure known: dense probes return local info uses –grammar checking, automatic translation

5 Path Query best N paths between two words words on path itself definition graphs used in computation

6 Task: Plausibility Checking paths ordered by computed plausibility researcher hand-checks results –high-ranking paths believable? –believable paths high-ranked? –gross polluters (stop words)

7 Top 10 Paths: kangaroo - tail

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9 Goal create unified view of relationships between paths and definition graphs –shared words are key –thousands of words (not millions) special-purpose algorithm debugging tool –not understand the structure of English

10 Semantic Layout reflect dataset characteristics path ordering as backbone fill in definition graphs

11 Semantic Layout “plausibility gradient”

12 Semantic Layout “plausibility gradient” –horizontal position

13 Semantic Layout “plausibility gradient” –horizontal position – size

14 Semantic Layout edge crossings not minimized

15 Semantic Layout edge crossings not minimized –false attachment solved with interactive selective emphasis

16 Perceptual Channels redundant combinations –synergy from multiple codings layout gradient –spatial position, word size –quantitative

17 Perceptual Channels highlighting: visual popout –saturation –brightness –linewidth ordered –although binary

18 Perceptual Channels highlighting: visual popout –saturation –brightness –linewidth ordered –although binary

19 Perceptual Channels hue –relation types green: part-of red: is-a cyan: modifier –word types yellow: path green: definition graph blue: leaf –selective (nominal)

20 Perceptual Channels orientation –relation types axis-aligned: local slanted: long distance –between instances of same word –selective (nominal)

21 Perceptual Channels enclosure –definition graphs associated with path word –hierarchy

22 Interaction see video

23 Video zoom –software vs. video

24 Semantic Layout Challenges spatial position encodes path ordering –edge crossings not minimized –clutter reduction: interaction, perceptual channels tradeoffs –spatial encoding vs. information density navigation: intelligent zooming –global, intermediate, local

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27 Semantic Layout Challenges navigation intelligent zooming –global path structure overview –intermediate association of path word and definition graphs –local read single definition graph

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30 Color Scheme [Reynolds94] hues –maximally separated on color wheel saturation/brightness –low for unobtrusive, high for emphasis maximal CRT legibility –black text on colored background

31 Conclusion targeted case study –small user community techniques –encode dataset structure spatially –multiple perceptual channels –interactive selective emphasis, navigation approach broadly applicable

32 Acknowledgements MSR linguists –Lucy Vanderwende, Bill Dolan, Mo Corston-Oliver iterative design techniques –Mary Czerwinski discussion –Maneesh Agrawala, Pat Hanrahan, Chris Stolte, Terry Winograd funding –Microsoft Graduate Research Fellowship, Interval Research –http://graphics.stanford.edu/papers/const –http://graphics.stanford.edu/~munzner/talks/vis99

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