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space-time matrix: based on Berry’s conceptualization of time, where by the x and y axes correspond to a location and attributes, and the z-dimension represents time slices relating to the location and its attributes.space-time cube: based on work by Hägerstrand on time geography, where locations are represented on the x and y axes and the z-axis is reserved for representing the temporal attribute.
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congruency principle: the ability of some graphics to represent abstract concepts that are cognitively suggestive between cognitive space and real space in terms of time, this means using display time to represent time as is possible through the use of animation.change maps: maps that illustrate the difference between two time slices by subtracting the older time slice from the newer.attribute change: changes to the character or quality of an event or object change over time.animated map: a map that uses display time to illustrate change in location, attributes, or existence over real time.Cartographic Decisions for Representing Spatiotemporal Data.
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However, each of these different mapping techniques offers its own advantages and disadvantages to the cartographer and the map reader. For cartographers, identifying the audience and purpose, medium, available data, and available time to design the map are vital aspects to deciding between the different spatiotemporal mapping techniques. The advantages and limitations of these static and dynamic methods are discussed in this entry. Four broad types of mapping techniques allow for a variety of representations of spatiotemporal data: (1) single static maps, (2) multiple static maps, (3) single dynamic maps, and (4) multiple dynamic maps.
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Cartographers and geovisualization experts alike have grappled with how to represent spatiotemporal data visually. There are many ways in which to conceptualize space and time in the geographic realm that stem from time geography research in the 1960s. Space and time are integral components of geographic information.