Difference between revisions of "Cartography" - New World Encyclopedia

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[[Image:Planisphæri cœleste.jpg|thumb|350px|A celestial map from the 17th century, by the Dutch cartographer Frederik de Wit.]]
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[[Image:Planisphæri cœleste.jpg|thumb|350px|A celestial map from the seventeenth century, by the Dutch cartographer Frederik de Wit.]]
  
'''Cartography''' or '''mapmaking''' (in [[Greek language|Greek]] ''chartis'' - map and ''graphein'' - write) is the study and practice of making representations of the [[Earth]] on a flat surface. The discipline of cartography combines [[science]], [[aesthetics]], and technical ability to create a balanced and readable representation that is capable of communicating information effectively and quickly.   
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'''Cartography''' or '''mapmaking''' (in [[Greek language|Greek]] ''chartis'' - map and ''graphein'' - write) is the study and practice of making representations of the [[Earth]] on a flat surface. The discipline of cartography combines [[science]], [[aesthetics]], and technical ability to create a balanced and readable representation that is capable of communicating information effectively and quickly.   
  
Cartography, however mechanized it becomes, remains both a science and an art. The aesthetics of any given map will always be a critical component essential to the conveyance of information. A map must provide accuracy and in the best of solutions, an inventive presentation of data or analysis of data, but always in a form that is readily comprehensible and inviting to the reader. A map is both more, and less, than simply geographical or physical space. And it is always a result of artistic and technical judgments, creating something both useful and, occasionally, beautiful.  
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Cartography, however mechanized it becomes, remains both a science and an art. The aesthetics of any given map will always be a critical component essential to the conveyance of information. A map must provide accuracy and in the best of solutions, an inventive presentation of data or analysis of data, but always in a form that is readily comprehensible and inviting to the reader. A map is both more, and less, than simply geographical or physical space. And it is always a result of artistic and technical judgments, creating something both useful and, occasionally, beautiful.  
  
One problem in creating maps is the simple reality that the surface of the Earth, a curved surface in three-dimensional space, must be represented in two dimensions as a flat surface. This necessarily entails some degree of distortion, which can be dealt with by utilizing [[map projection|projections]] that minimize distortion in certain areas. Furthermore, the Earth is not a regular [[sphere]], but its shape is instead known as a [[geoid]], which is a highly irregular but exactly knowable and calculable shape.
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One problem in creating maps is the simple reality that the surface of the Earth, a curved surface in three-dimensional space, must be represented in two dimensions as a flat surface. This necessarily entails some degree of distortion, which can be dealt with by utilizing [[map projection|projections]] that minimize distortion in certain areas. Furthermore, the Earth is not a regular [[sphere]], but its shape is instead known as a [[geoid]], which is a highly irregular but exactly knowable and calculable shape.
  
 
Maps of all [[scale]]s have traditionally been drawn and made by hand, but the use of [[computer]]s has revolutionized cartography. Most commercial-quality maps are now made with [[software]] that falls into one of three main types: [[computer-aided design|CAD]], [[geographic information systems|GIS]], and specialized illustration software.
 
Maps of all [[scale]]s have traditionally been drawn and made by hand, but the use of [[computer]]s has revolutionized cartography. Most commercial-quality maps are now made with [[software]] that falls into one of three main types: [[computer-aided design|CAD]], [[geographic information systems|GIS]], and specialized illustration software.
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Functioning as tools, maps communicate spatial [[information]] by making it visible. Spatial information is acquired from [[measurement]] of space and can be stored in a [[database]], from which it can be extracted for a variety of purposes. Current trends in this field are moving away from analog methods of mapmaking and toward the creation of increasingly dynamic, [[interactive maps]] that can be manipulated digitally.
  
Functioning as tools, maps communicate spatial [[information]] by making it visible.  Spatial information is acquired from [[measurement]] of space and can be stored in a [[database]], from which it can be extracted for a variety of purposes. Current trends in this field are moving away from analog methods of mapmaking and toward the creation of increasingly dynamic, [[interactive maps]] that can be manipulated digitally.
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Cartographic representation involves the use of symbols and lines to illustrate geographic phenomena. This can aid in visualizing space in an abstract and portable format. The cartographic process rests on the premise that the [[world]] is measurable and that we can make reliable representations or models of that reality.  
 
 
Cartographic representation involves the use of symbols and lines to illustrate geographic phenomena. This can aid in visualizing space in an abstract and portable format. The cartographic process rests on the premise that the [[world]] is measurable and that we can make reliable representations or models of that reality.  
 
  
 
==Etymology==
 
==Etymology==
The term "Cartography" was coined in 1859, from the French, ''carta'' meaning card and -''graphie'', from the Greek, meaning to write, or to draw. <ref> ''Online Etymoligical Dictionary''. [http://www.etymonline.com/index.php?term=cartography Cartography] Retrieved December 21, 2007.</ref>  A slightly different version finds the term deriving from Old French ''carte'', or map, with its roots in Latin ''charta'', or ''carta'', meaning paper made from papyrus. ''Graphie'' is the French for ''graphia'', from the Greek for writing.   <ref>''The American Heritage® Dictionary of the English Language'', Fourth Edition Copyright © 2006 by Houghton Mifflin Company</ref>
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The term "Cartography" was coined in 1859, from the French, ''carta'' meaning card and -''graphie,'' from the Greek, meaning to write, or to draw.<ref> ''Online Etymological Dictionary''. [http://www.etymonline.com/index.php?term=cartography Cartography] Retrieved December 21, 2007.</ref>  A slightly different version finds the term deriving from Old French ''carte,'' or map, with its roots in Latin ''charta,'' or ''carta,'' meaning paper made from papyrus. ''Graphie'' is the French for ''graphia,'' from the Greek for writing. <ref>''The American Heritage® Dictionary of the English Language,'' Fourth Ed. (Houghton Mifflin Company, 2006) </ref>
  
 
== History ==  
 
== History ==  
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Maps have been a large part of the human story for a long time (perhaps 8,000 years - nobody knows exactly, but longer than written words). They were known to have existed in societies of [[Europe]], the [[Middle East]], [[China]], [[India]], and others.
 
Maps have been a large part of the human story for a long time (perhaps 8,000 years - nobody knows exactly, but longer than written words). They were known to have existed in societies of [[Europe]], the [[Middle East]], [[China]], [[India]], and others.
  
The earliest known map to date is a wall painting of the ancient Turkish city of [[Catal Huyuk|Çatal Hüyük]] which has been dated to the late 7th millennium B.C.E. <ref> ''Ataman Ministry of Culture''. [http://www.atamanhotel.com/catalhoyuk/oldest-map.html The Oldest Map of the World] Retrieved December 21, 2007. </ref> Other known maps of the ancient world include the [[Minoan]] “House of the Admiral” wall painting from c. 1600 B.C.E. showing a seaside community in an oblique perspective, and an engraved map of the holy [[Babylonian]] city of [[Nippur]], from the Kassite period (14th 12th centuries B.C.E.). <ref> ''Oriental Institute, University of Chicago''. [http://www-oi.uchicago.edu/OI/PROJ/NIP/PUB93/NSC/NSCFIG7.html Nippur - Sacred City Of Enlil] Retrieved December 21, 2007. </ref> The [[Ancient Greece|ancient Greeks]] and [[Roman Empire|Romans]] created maps beginning with [[Anaximander]] in the 6th century B.C.E. In [[ancient China]], although geographical literature spans back to the 5th century B.C.E., the drawing of true geographical maps was not begun in earnest until the first half of the [[Han Dynasty]] (202 B.C.E.-202 C.E.), with the works of Prince [[Liu An]] (179 B.C.E.-122 B.C.E.).
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The earliest known map to date is a wall painting of the ancient Turkish city of [[Catal Huyuk|Çatal Hüyük]] which has been dated to the late seventh millennium B.C.E. <ref> ''Ataman Ministry of Culture''. [http://www.atamanhotel.com/catalhoyuk/oldest-map.html The Oldest Map of the World]. Retrieved December 21, 2007. </ref> Other known maps of the ancient world include the [[Minoan]] “House of the Admiral” wall painting from c. 1600 B.C.E. showing a seaside community in an oblique perspective, and an engraved map of the holy [[Babylonian]] city of [[Nippur]], from the Kassite period (fourteenth twelfth centuries B.C.E.). <ref> ''Oriental Institute, University of Chicago''. [http://www-oi.uchicago.edu/OI/PROJ/NIP/PUB93/NSC/NSCFIG7.html Nippur - Sacred City Of Enlil] Retrieved December 21, 2007. </ref> The [[Ancient Greece|ancient Greeks]] and [[Roman Empire|Romans]] created maps beginning with [[Anaximander]] in the sixth century B.C.E. In [[ancient China]], although geographical literature spans back to the fifth century B.C.E., the drawing of true geographical maps was not begun in earnest until the first half of the [[Han Dynasty]] (202 B.C.E.-202 C.E.), with the works of Prince [[Liu An]] (179 B.C.E.-122 B.C.E.).
  
[[Mappa mundi]] is the general term used to describe Medieval European maps of the world. Approximately 1,100 mappae mundi are known to have survived from the [[Middle Ages]]. Of these, some 900 are found illustrating manuscripts and the remainder exist as stand-alone documents (Woodward, p. 286).
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[[Mappa mundi]] is the general term used to describe Medieval European maps of the world. Approximately 1,100 mappae mundi are known to have survived from the [[Middle Ages]]. Of these, some 900 are found illustrating manuscripts and the remainder exist as stand-alone documents <ref>J. B. Harley, and David Woodward (eds.) ''The History of Cartography Volume 1: Cartography in Prehistoric, Ancient, and Medieval Europe and the Mediterranean.'' (Chicago and London: University of Chicago Press, 1987), 286</ref>.
  
In the [[Age of Exploration]] from the 15th century to the 17th century, cartographers copied earlier maps (some of which had been passed down for centuries) and drew their own based on explorers' observations and new [[surveying]] techniques. The invention of the [[magnetic compass]], [[telescope]], and [[sextant]] increased accuracy.
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In the [[Age of Exploration]] from the fifteenth century to the seventeenth century, cartographers copied earlier maps (some of which had been passed down for centuries) and drew their own based on explorers' observations and new [[surveying]] techniques. The invention of the [[magnetic compass]], [[telescope]], and [[sextant]] increased accuracy.
  
Due to the sheer physical difficulties inherent in cartography, map-makers frequently lifted material from earlier works without giving credit to the original cartographer. For example, one of the most famous early maps of [[North America]] is unofficially known as the [[Beaver Map]], published in 1715 by [[Herman Moll]]. This map is an exact reproduction of a 1698 work by [[Nicolas de Fer]]. De Fer in turn had copied images that were first printed in books by [[Louis Hennepin]], published in 1697, and [[François Du Creux]], in 1664. By the 1700s, map-makers started to give credit to the original engraver by printing the phrase "After [the original cartographer]" on the work. <ref> ''Detecting the Truth''. [http://www.collectionscanada.ca/forgery/002035-300-e.html? Map Imitations] Retrieved December 21, 2007. </ref>
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Due to the sheer physical difficulties inherent in cartography, map-makers frequently lifted material from earlier works without giving credit to the original cartographer. For example, one of the most famous early maps of [[North America]] is unofficially known as the [[Beaver Map]], published in 1715 by [[Herman Moll]]. This map is an exact reproduction of a 1698 work by [[Nicolas de Fer]]. De Fer in turn had copied images that were first printed in books by [[Louis Hennepin]], published in 1697, and [[François Du Creux]], in 1664. By the 1700s, map-makers started to give credit to the original engraver by printing the phrase "After [the original cartographer]" on the work. <ref> ''Detecting the Truth: Fakes, Forgeries and Trickery''. [http://www.collectionscanada.ca/forgery/002035-300-e.html? Map Imitations] ''www.collectionscanada.ca''. Retrieved December 21, 2007. </ref>
  
Not all maps were drawn on paper. Well researched examples include the navigational stick charts of the Marshall Islanders, interwoven sticks arranged to depict distances across seas, wave fronts, and elevations of islands. Native Alaskans carved intricate [[sculpture]]s that recreated coastlines and elevations in a portable, and quite accurate, three dimensional form. <ref> Southworth, Michael, and Susan Southworth. 1982. ''Maps, a visual survey and design guide''. Boston: Little Brown. ISBN 0821215035 </ref>
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Not all maps were drawn on paper. Well researched examples include the navigational stick charts of the Marshall Islanders, interwoven sticks arranged to depict distances across seas, wave fronts, and elevations of islands. Native Alaskans carved intricate [[sculpture]]s that recreated coastlines and elevations in a portable, and quite accurate, three dimensional form. <ref>Michael Southworth, and Susan Southworth. ''Maps, a visual survey and design guide.'' (Boston: Little Brown, 1982. ISBN 0821215035) </ref>
  
 
== Technological changes ==
 
== Technological changes ==
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Advances in photochemical technology, such as the [[lithography|lithographic]] and [[photography|photochemical processes]], have allowed for the creation of maps that are finely detailed, do not distort in shape, and resist moisture and wear. These advances eliminated the need for engraving, further shortening the time it takes to make and reproduce maps.  
 
Advances in photochemical technology, such as the [[lithography|lithographic]] and [[photography|photochemical processes]], have allowed for the creation of maps that are finely detailed, do not distort in shape, and resist moisture and wear. These advances eliminated the need for engraving, further shortening the time it takes to make and reproduce maps.  
  
In the late 20th century and early 21st century, advances in electronic technology led to another revolution in cartography. Specifically, [[computer hardware]] devices such as computer screens, plotters, printers, scanners (remote and document), and analytic stereo plotters along with visualization, image processing, spatial analysis and database software, have democratized and greatly expanded the making of maps. The ability to superimpose spatially located variables onto existing maps created new uses for maps and new industries to explore and exploit these potentials.
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In the late twentieth century and early twenty-first century, advances in electronic technology led to another revolution in cartography. Specifically, [[computer hardware]] devices such as computer screens, plotters, printers, scanners (remote and document), and analytic stereo plotters along with visualization, image processing, spatial analysis and database software, have democratized and greatly expanded the making of maps. The ability to superimpose spatially located variables onto existing maps created new uses for maps and new industries to explore and exploit these potentials.
  
 
== Map types ==
 
== Map types ==
  
The field of cartography can be divided into two broad categories: general cartography and thematic cartography. General cartography involves those maps that are constructed for a general audience and thus contain a variety of features, like topographic maps. [[Topography|Topographic]] maps depict natural and built features of a place, with relief and elevation shown by drawn contours or shading techniques. These relatively general maps exhibit many reference and location systems and often are produced in a series. For example, [[United States Geological Survey]] (USGS) has produced a full series of 1:24,000 scale topographic maps; Canada has the same, at 1:50,000 scale. The government of the UK produces 1:63,360 (1 inch to 1 mile) "Ordnance Survey" maps of the entire UK and a range of correlated larger- and smaller-scale maps of great detail.
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The field of cartography can be divided into two broad categories: general cartography and thematic cartography. General cartography involves those maps that are constructed for a general audience and thus contain a variety of features, like topographic maps. [[Topography|Topographic]] maps depict natural and built features of a place, with relief and elevation shown by drawn contours or shading techniques. These relatively general maps exhibit many reference and location systems and often are produced in a series. For example, [[United States Geological Survey]] (USGS) has produced a full series of 1:24,000 scale topographic maps; Canada has the same, at 1:50,000 scale. The government of the UK produces 1:63,360 (1 inch to 1 mile) "Ordnance Survey" maps of the entire UK and a range of correlated larger- and smaller-scale maps of great detail.
  
[[Thematic map|Thematic cartography]] involves maps of specific geographic themes oriented toward specific audiences. Examples might be a [[Thematic_map#Dot|dot map]] showing corn production in Indiana or a shaded area map of Ohio counties divided into numerical [[Choropleth map|choropleth]] classes. As the volume of geographic data has exploded over the last century, thematic cartography has become increasingly useful and necessary to interpret spatial cultural and social data. Epidemiological data are represented on specialized maps, a particularly useful way to illustrate exposure patterns, or occurrence. Most applied cartography could be well be described as thematic mapping. Points of view can be represented thematically as well, and the user of a given map must be informed of the objectives of the cartographer in order to judge the value of the presentation.
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[[Thematic map|Thematic cartography]] involves maps of specific geographic themes oriented toward specific audiences. Examples might be a [[Thematic_map#Dot|dot map]] showing corn production in Indiana or a shaded area map of Ohio counties divided into numerical [[Choropleth map|choropleth]] classes. As the volume of geographic data has exploded over the last century, thematic cartography has become increasingly useful and necessary to interpret spatial cultural and social data. Epidemiological data are represented on specialized maps, a particularly useful way to illustrate exposure patterns, or occurrence. Most applied cartography could be well be described as thematic mapping. Points of view can be represented thematically as well, and the user of a given map must be informed of the objectives of the cartographer in order to judge the value of the presentation.
  
 
== Map design ==
 
== Map design ==
 
[[Image:Livingston-Greenwich-map.jpg|thumb|270px|right|Illustrated map]]
 
[[Image:Livingston-Greenwich-map.jpg|thumb|270px|right|Illustrated map]]
  
[[Arthur H. Robinson]], an American cartographer influential in thematic cartography, stated that a poorly designed map "will be a cartographic failure." He also declared that "map design is perhaps the most complex" aspect of cartography. <ref> Robinson, Arthur Howard. 1995. ''Elements of cartography''. New York: Wiley. ISBN 0471555797 </ref> Robinson codified the mapmaker's understanding that a map must be designed with consideration of the audience and its needs foremost. A well designed map would address each of these basic elements:   
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[[Arthur H. Robinson]], an American cartographer influential in thematic cartography, stated that a poorly designed map "will be a cartographic failure." He also declared that "map design is perhaps the most complex" aspect of cartography. <ref>Arthur Howard Robinson. ''Elements of cartography.'' (New York: Wiley, 1995. ISBN 0471555797) </ref> Robinson codified the mapmaker's understanding that a map must be designed with consideration of the audience and its needs foremost. A well designed map would address each of these basic elements:   
 
*ease of use, with respect to the intended audience, both physically and cognitively; *accuracy, meaning a minimum amount of distortion or errors;  
 
*ease of use, with respect to the intended audience, both physically and cognitively; *accuracy, meaning a minimum amount of distortion or errors;  
 
*strong relationship between the object and the map, meaning that the translation of physical space to a different medium should be readily recognizable;  
 
*strong relationship between the object and the map, meaning that the translation of physical space to a different medium should be readily recognizable;  
 
*appropriate labeling and symbol use;   
 
*appropriate labeling and symbol use;   
*legibility and clarity - very important points. <ref> Southworth, Michael, and Susan Southworth. 1982. ''Maps, a visual survey and design guide''. Boston: Little Brown. ISBN 0821215035 </ref>
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*legibility and clarity - very important points. <ref> Southworth and Southworth </ref>
  
From the very beginning of mapmaking, maps "have been made for some particular purpose or set of purposes". <ref> Robinson, Arthur Howard. 1982. ''Early thematic mapping in the history of cartograph''y. Chicago: University of Chicago Press. ISBN 0226722856 </ref> The intent of the map should be illustrated in a manner in which the 'percipient' acknowledges its purpose in a timely fashion. The term ''percipient'' refers to the person receiving information and was used by Robinson. The figure-ground principle refers to this notion of engaging the user by clear presentation, leaving no confusion concerning the purpose of the map. Clear presentation enhances the user’s experience and keeps his attention. If the user is unable to identify what is being demonstrated, the map may be useless.
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From the very beginning of mapmaking, maps "have been made for some particular purpose or set of purposes." <ref>Arthur Howard Robinson. ''Early thematic mapping in the history of cartography.'' (Chicago: University of Chicago Press, 1982. ISBN 0226722856) </ref> The intent of the map should be illustrated in a manner in which the 'percipient' acknowledges its purpose in a timely fashion. The term ''percipient'' refers to the person receiving information and was used by Robinson. The figure-ground principle refers to this notion of engaging the user by clear presentation, leaving no confusion concerning the purpose of the map. Clear presentation enhances the user’s experience and keeps his attention. If the user is unable to identify what is being demonstrated, the map may be useless.
  
Making a meaningful map is the ultimate goal. MacEachren explains that a well designed map "is convincing because it implies authenticity" (1994, pp. 9). A thoughtfully designed, interesting map engages a reader. Information richness or a map that is multivariate will show relationships within the map. Showing several variables allows comparison, adding to the meaningfulness of the map. This also generates hypotheses, stimulates ideas, and perhaps, further research.   
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Making a meaningful map is the ultimate goal. MacEachren explains that a well designed map "is convincing because it implies authenticity" <ref>A.M. MacEachren. ''Some Truth with Maps: A Primer on Symbolization & Design.'' (University Park: The Pennsylvania State University, 1994), 9</ref>. A thoughtfully designed, interesting map engages a reader. Information richness or a map that is multivariate will show relationships within the map. Showing several variables allows comparison, adding to the meaningfulness of the map. This also generates hypotheses, stimulates ideas, and perhaps, further research.   
  
In order to convey the message of the map, the creator must design it in a manner that will facilitate the overall understanding of its purpose. The title of a map may provide the "needed link" necessary for communicating that message, but the overall design of the map fosters the manner in which the reader interprets it (Monmonier, 1993, pp. 93).
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In order to convey the message of the map, the creator must design it in a manner that will facilitate the overall understanding of its purpose. The title of a map may provide the "needed link" necessary for communicating that message, but the overall design of the map fosters the manner in which the reader interprets it <ref>Mark Monmonier. ''Mapping It Out.'' (Chicago: University of Chicago Press, 1993), 93</ref>).
  
 
=== Naming conventions ===
 
=== Naming conventions ===
  
Most maps use text to label places and for such things as a map title, legend, and other information. Maps are typically created in specific [[language]]s, though names of places often differ among languages. So a map made in English may use the name ''Germany'' for that country, where a German map would use ''Deutschland'', and a French map ''Allemagne''A word that describes a place using a non-native terminology or language is referred to as an [[exonym]].
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Most maps use text to label places and for such things as a map title, legend, and other information. Maps are typically created in specific [[language]]s, though names of places often differ among languages. So a map made in English may use the name ''Germany'' for that country, where a German map would use ''Deutschland,'' and a French map ''Allemagne.'' A word that describes a place using a non-native terminology or language is referred to as an [[exonym]].
  
In some cases, the 'correct' name is unclear. For example, the nation of Burma officially changed its name to [[Myanmar]], but many nations do not recognize the ruling junta and continue to use ''Burma''. Sometimes an official name change is resisted in other languages and the older name may remain in common use. Examples include the use of ''Saigon'' for [[Ho Chi Minh City]], ''Bangkok'' for [[Bangkok|Krung Thep]], and ''Ivory Coast'' for [[Côte d'Ivoire]].
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In some cases, the 'correct' name is unclear. For example, the nation of Burma officially changed its name to [[Myanmar]], but many nations do not recognize the ruling junta and continue to use ''Burma.'' Sometimes an official name change is resisted in other languages and the older name may remain in common use. Examples include the use of ''Saigon'' for [[Ho Chi Minh City]], ''Bangkok'' for [[Bangkok|Krung Thep]], and ''Ivory Coast'' for [[Côte d'Ivoire]].
  
 
Difficulties arise when [[transliteration]] or [[Transcription (linguistics)|transcription]] between [[writing systems]] is required. National names tend to have well established names in other languages and writing systems, such as ''Russia'' for Росси́я, but for many placenames a system of transliteration or transcription is required. In transliteration the symbols of one language are represented by symbols in another. For example, the [[Cyrillic alphabet|Cyrillic]] letter ''Р'' is traditionally written as ''R'' in the [[Latin alphabet]]. Systems exist for transliteration of [[Arabic language|Arabic]], but the results may vary. For example, the Yemeni city of [[Mocha, Yemen|Mocha]] is written variously in English as Mocha, Al Mukha, al-Mukhā, Mocca, and Moka. Transliteration systems are based on relating written symbols to one another, while transcription is the attempt to spell the phonetic sounds of one language in another. Chinese writing is transformed into the Latin alphabet through the [[Pinyin]] phonetic transcription systems, for example. Other systems were used in the past, such as [[Wade-Giles]], resulting in the city being spelled ''Beijing'' on newer English maps and ''Peking'' on older ones.
 
Difficulties arise when [[transliteration]] or [[Transcription (linguistics)|transcription]] between [[writing systems]] is required. National names tend to have well established names in other languages and writing systems, such as ''Russia'' for Росси́я, but for many placenames a system of transliteration or transcription is required. In transliteration the symbols of one language are represented by symbols in another. For example, the [[Cyrillic alphabet|Cyrillic]] letter ''Р'' is traditionally written as ''R'' in the [[Latin alphabet]]. Systems exist for transliteration of [[Arabic language|Arabic]], but the results may vary. For example, the Yemeni city of [[Mocha, Yemen|Mocha]] is written variously in English as Mocha, Al Mukha, al-Mukhā, Mocca, and Moka. Transliteration systems are based on relating written symbols to one another, while transcription is the attempt to spell the phonetic sounds of one language in another. Chinese writing is transformed into the Latin alphabet through the [[Pinyin]] phonetic transcription systems, for example. Other systems were used in the past, such as [[Wade-Giles]], resulting in the city being spelled ''Beijing'' on newer English maps and ''Peking'' on older ones.
  
Further difficulties arise when countries, especially former colonies, do not have a strong national geographic naming standard. In such cases cartographers may have to choose between various phonetic spellings of local names versus older imposed, sometimes resented, colonial names. Some countries have multiple official languages, resulting in multiple official placenames. For example, the capital of [[Belgium]] is both ''Brussels'' and ''Bruxelles''. In [[Canada]], [[English language|English]] and [[French language|French]] are official languages and places are named in both languages. [[British Columbia]] is also officially named ''la Colombie-Britannique''. English maps rarely show the French names outside [[Quebec]], which itself is spelled ''Québec'' in French. <ref> This section based on: Illustrated Atlas of the World. 1992. ''Transliteration Systems''. pages A16-A17. Rand McNally. ISBN 0528834924 </ref>
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Further difficulties arise when countries, especially former colonies, do not have a strong national geographic naming standard. In such cases cartographers may have to choose between various phonetic spellings of local names versus older imposed, sometimes resented, colonial names. Some countries have multiple official languages, resulting in multiple official placenames. For example, the capital of [[Belgium]] is both ''Brussels'' and ''Bruxelles.'' In [[Canada]], [[English language|English]] and [[French language|French]] are official languages and places are named in both languages. [[British Columbia]] is also officially named ''la Colombie-Britannique.'' English maps rarely show the French names outside [[Quebec]], which itself is spelled ''Québec'' in French. <ref> This section based on: "Transliteration Systems." ''Illustrated Atlas of the World.'' (Rand McNally, 1992. ISBN 0528834924), A16-A17 </ref>
  
 
The study of placenames is called [[toponymy]], while that of the origin and historical usage of placenames as words is [[etymology]].
 
The study of placenames is called [[toponymy]], while that of the origin and historical usage of placenames as words is [[etymology]].
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When examining a landscape, scale can be intuited from trees, houses, and cars. Not so with a map. Thus a simple thing as a north arrow can be crucial; the top of a map does not necessarily indicate north.  
 
When examining a landscape, scale can be intuited from trees, houses, and cars. Not so with a map. Thus a simple thing as a north arrow can be crucial; the top of a map does not necessarily indicate north.  
  
Color is equally important. How the cartographer uses color to display the data can greatly affect the clarity or intent of the map. Different intensities of hue portray the cartographer's various objectives . Computers can display up to 16 million distinct colors at a time even though the human eye can distinguish only a minimum number of these (Jeer, 1997). This allows for a multitude of color options for even for the most complex maps. Moreover, computers can easily hatch patterns in colors to give even more options. This can be very useful when symbolizing data in categories like quintile and equal interval classifications.
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Color is equally important. How the cartographer uses color to display the data can greatly affect the clarity or intent of the map. Different intensities of hue portray the cartographer's various objectives. Computers can display up to 16 million distinct colors at a time even though the human eye can distinguish only a minimum number of these (Jeer, 1997). This allows for a multitude of color options for even for the most complex maps. Moreover, computers can easily hatch patterns in colors to give even more options. This can be very useful when symbolizing data in categories like quintile and equal interval classifications.
  
Quantitative symbols give a visual measure of the relative size/importance/number that a symbol represents. There are two major classes of symbols used for portraying quantitative properties on a map: Proportional symbols change their visual weight according to a quantitative property. These are appropriate for extensive statistics. [[Choropleth map]]s portray data collection areas (such as counties, or census tracts) with color. Using color this way, the darkness and intensity (or value) of the color is evaluated by the eye as a measure of intensity or concentration (Harvard Graduate School of Design, 2005).
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Quantitative symbols give a visual measure of the relative size/importance/number that a symbol represents. There are two major classes of symbols used for portraying quantitative properties on a map: Proportional symbols change their visual weight according to a quantitative property. These are appropriate for extensive statistics. [[Choropleth map]]s portray data collection areas (such as counties, or census tracts) with color. Using color this way, the darkness and intensity (or value) of the color is evaluated by the eye as a measure of intensity or concentration <ref> Harvard Graduate School of Design, 2005. [http://www.gsd.harvard.edu/gis/manual/style/index.htm].Retrieved February 29, 2008.
 +
</ref>.
  
 
=== Map generalization ===
 
=== Map generalization ===
  
A good map is a compromise between portraying the items of interest (or [[thematic map|themes]]) in the ''right place'' for the map [[scale (map)|scale]] used, and the need to annotate that item with text or a symbol, taking up space on the map medium and very likely causing some other item of interest to be displaced. The cartographer is thus constantly making judgments about what to include, what to leave out, and what to show in a ''slightly'' incorrect place - because of the demands of the annotation. This issue assumes more importance as the scale of the map gets smaller (i.e the map shows a larger area), because relatively, the annotation on the map takes up more space ''on the ground''A good example from the late 1980's was the British Government [[Ordnance Survey]]'s first digital maps, where the ''absolute'' positions of major roads shown at scales of 1:1250 and 1:2500 were sometimes a scale distance of hundreds of meters away from [[ground truth]], when shown on digital maps at scales of 1:250000 and 1:625000, because of the overriding need to annotate the features.
+
A good map is a compromise between portraying the items of interest (or [[thematic map|themes]]) in the ''right place'' for the map [[scale (map)|scale]] used, and the need to annotate that item with text or a symbol, taking up space on the map medium and very likely causing some other item of interest to be displaced. The cartographer is thus constantly making judgments about what to include, what to leave out, and what to show in a ''slightly'' incorrect place - because of the demands of the annotation. This issue assumes more importance as the scale of the map gets smaller (i.e., the map shows a larger area), because relatively, the annotation on the map takes up more space ''on the ground.'' A good example from the late 1980s was the British Government [[Ordnance Survey]]'s first digital maps, where the ''absolute'' positions of major roads shown at scales of 1:1250 and 1:2500 were sometimes a scale distance of hundreds of meters away from [[ground truth]], when shown on digital maps at scales of 1:250000 and 1:625000, because of the overriding need to annotate the features.
  
 
==Notes==
 
==Notes==
Line 94: Line 95:
 
==References==
 
==References==
  
*Belyea, B. 1992. Amerindian Maps: the Explorer as Translator. ''Journal of Historical Geography'' 18, no.3 :267-277.
+
*Belyea, B. 1992. Amerindian Maps: the Explorer as Translator. ''Journal of Historical Geography'' 18(3) :267-277.
*Bender, B. 1999. Subverting the Western Gaze: mapping alternative worlds. In The Archaeology and Anthropology of Landscape: Shaping your landscape (eds) P.J. Ucko & R. Layton. London: Routledge.
+
*Bender, B. 1999. Subverting the Western Gaze: mapping alternative worlds. In ''The Archaeology and Anthropology of Landscape: Shaping your landscape,'' (eds) P.J. Ucko & R. Layton. London: Routledge.
*Crawford, P.V. 1973. The perception of graduated squares as cartographic symbols. ''Cartographic Journal'' 10, no.2:85-88.
+
*Crawford, P.V. 1973. The perception of graduated squares as cartographic symbols. ''Cartographic Journal'' 10(2):85-88.
* {{cite book | author=J. B. Harley and [[David Woodward]] (eds) | title=The History of Cartography Volume 1: Cartography in Prehistoric, Ancient, and Medieval Europe and the Mediterranean. | location=Chicago and London | publisher=University of Chicago Press | year=1987 | id=ISBN 0-226-31633-5}}
+
* Harley, J. B. and [[David Woodward]] (eds) ''The History of Cartography Volume 1: Cartography in Prehistoric, Ancient, and Medieval Europe and the Mediterranean.'' Chicago and London: University of Chicago Press, 1987. ISBN 0226316335
* {{cite book | author=J. B. Harley and David Woodward (eds) | title=The History of Cartography Volume 2, Book 1: Cartography in the Traditional Islamic and South Asian Societies. | location=Chicago and London | publisher=University of Chicago Press | year=1992| id=ISBN 0-226-31635-1}}
+
* Harley, J. B. and David Woodward (eds) ''The History of Cartography Volume 2, Book 1: Cartography in the Traditional Islamic and South Asian Societies.'' Chicago and London: University of Chicago Press, 1992. ISBN 0226316351
* {{cite book | author=J. B. Harley and David Woodward (eds) | title=The History of Cartography Volume 2, Book 2: Cartography in the Traditional East and Southeast Asian Societies. | location=Chicago and London | publisher=University of Chicago Press | year=1994| id=ISBN 0-226-31637-8}}
+
* Harley, J. B. and David Woodward (eds) ''The History of Cartography Volume 2, Book 2: Cartography in the Traditional East and Southeast Asian Societies.'' Chicago and London: University of Chicago Press, 1994. ISBN 0226316378
* {{cite book | author=J. B. Harley and David Woodward (eds) | title=The History of Cartography Volume 2, Book 3: Cartography in the Traditional African, American, Arctic, Australian, and Pacific Societies. [Full text of the Introduction by David Woodward and G. Malcolm Lewis]| location=Chicago and London | publisher=University of Chicago Press | year=1998| id=ISBN 0-226-90728-7}}
+
* Harley, J. B. and David Woodward (eds) ''The History of Cartography Volume 2, Book 3: Cartography in the Traditional African, American, Arctic, Australian, and Pacific Societies.'' Full text of the Introduction by David Woodward and G. Malcolm Lewis. Chicago and London: University of Chicago Press, 1998. ISBN 0226907287
* {{cite book | author=J. B. Harley and David Woodward (eds) | title=The History of Cartography Volume 3 (in press, 2005): Cartography in the European Renaissance. | location=Chicago and London | publisher=University of Chicago Press | year=2005| id=ISBN 0-226-90733-3}}
+
* Harley, J. B. and David Woodward (eds) ''The History of Cartography Volume 3 : Cartography in the European Renaissance.'' Chicago and London: University of Chicago Press, 2005. ISBN 0226907333
* {{cite book | author=J. B. Harley and David Woodward (eds) | title=The History of Cartography Volume 4 (edited by D. Graham Burnett, Matthew Edney, and Mary G. Sponberg Pedley with Founding Editor David Woodward): Cartography in the European Enlightenment. | location=Chicago and London | publisher=University of Chicago Press | year=1987| id=ISBN 0-226-31633-5}}
+
* Harley, J.B. and David Woodward (eds) ''The History of Cartography Volume 4, edited by D. Graham Burnett, Matthew Edney, and Mary G. Sponberg Pedley with Founding Editor David Woodward: Cartography in the European Enlightenment.'' Chicago and London: University of Chicago Press, 1987. ISBN 0226316335
* {{cite book | author=J. B. Harley and David Woodward (eds) | title=The History of Cartography Volume 5: Cartography in the Nineteenth Century | location=Chicago and London | publisher=University of Chicago Press | id=ISBN}}
+
* Harley, J. B. and David Woodward (eds) ''The History of Cartography Volume 5: Cartography in the Nineteenth Century.'' Chicago and London: University of Chicago Press.
* {{cite book | author=J. B. Harley and David Woodward (eds) | title=The History of Cartography Volume 4: Cartography in the Twentieth Century | location=Chicago and London | publisher=University of Chicago Press | id=ISBN}}
+
* Harley, J.B. and David Woodward (eds) ''The History of Cartography Volume 4: Cartography in the Twentieth Century.'' Chicago and London: University of Chicago Press.
* {{cite book | author=MacEachren, A.M. | title=Some Truth with Maps: A Primer on Symbolization & Design | location=University Park | publisher=The Pennsylvania State University | year=1994 | id=ISBN}}
+
* MacEachren, A.M. ''Some Truth with Maps: A Primer on Symbolization & Design.'' University Park: The Pennsylvania State University, 1994.
* {{cite book | author=Monmonier, Mark | title=How to Lie with Maps | location=Chicago | publisher=University of Chicago Press | year=1991 | id=ISBN 0-226-53421-9}}
+
* Monmonier, Mark. ''How to Lie with Maps.'' Chicago: University of Chicago Press, 1991. ISBN 0226534219
* {{cite book | author=Monmonier, Mark | title=Mapping It Out | location=Chicago | publisher=University of Chicago Press | year=1993 | id=ISBN}}
+
* Monmonier, Mark. ''Mapping It Out.'' Chicago: University of Chicago Press, 1993.
*ESRI. 2004. ESRI Cartography: ''Capabilities and Trends''. Redlands, CA. White Paper
+
*ESRI. 2004. ESRI Cartography: ''Capabilities and Trends.'' Redlands, CA: White Paper
*Harvard Graduate School of Design, 2005. http://www.gsd.harvard.edu/gis/manual/style/index.htm
+
*Harvard Graduate School of Design, 2005. [http://www.gsd.harvard.edu/gis/manual/style/index.htm Elements of Cartographic Style]
 
*Jeer, S. 1997. Traditional Color Coding for Land Uses. ''American Planning Association''. pp. 4-5
 
*Jeer, S. 1997. Traditional Color Coding for Land Uses. ''American Planning Association''. pp. 4-5
*Kent, A.J. 2005. "Aesthetics: A Lost Cause in Cartographic Theory?" The Cartographic Journal 42(2) pp.182-188
+
*Kent, A. J. 2005. "Aesthetics: A Lost Cause in Cartographic Theory?" The Cartographic Journal 42(2): 182-188
*Imus, D. and Dunlavey, P. 2002. ''Back to the Drawing Board: Cartography vs the Digital Workflow''. MT. Hood, Oregon.
+
*Imus, D. and Dunlavey, P. 2002. ''Back to the Drawing Board: Cartography vs the Digital Workflow.'' MT. Hood, Oregon.
 
*Oliver, J. 2007. The Paradox of Progress: Land Survey and the Making of Agrarian Society in Colonial British Columbia. In Contemporary and Historical Archaeology in Theory (eds) L. McAtackney, M. Palus & A. Piccini. Oxford: BAR, International Series.
 
*Oliver, J. 2007. The Paradox of Progress: Land Survey and the Making of Agrarian Society in Colonial British Columbia. In Contemporary and Historical Archaeology in Theory (eds) L. McAtackney, M. Palus & A. Piccini. Oxford: BAR, International Series.
 
*Olson, Judy M. 1975. Experience and the improvement of cartographic communication. ''Cartographic Journal'' 12, no. 2:94-108  
 
*Olson, Judy M. 1975. Experience and the improvement of cartographic communication. ''Cartographic Journal'' 12, no. 2:94-108  
 
*Phillips, R., De Lucia, A., and Skelton, A. 1975. Some Objective Tests of the Legibility of Relief Maps. ''The Cartographic Journal''. 12, pp. 39-46
 
*Phillips, R., De Lucia, A., and Skelton, A. 1975. Some Objective Tests of the Legibility of Relief Maps. ''The Cartographic Journal''. 12, pp. 39-46
 
*Phillips, R. 1980. A Comparison of Color and Visual Texture as Codes for use as Area Symbols on Relief Maps. ''Ergonomics''. 23, pp. 1117-1128.
 
*Phillips, R. 1980. A Comparison of Color and Visual Texture as Codes for use as Area Symbols on Relief Maps. ''Ergonomics''. 23, pp. 1117-1128.
* {{cite book | author=Pickles, John | title=A History of Spaces: Cartographic Reason, Mapping, and the Geo-Coded World | publisher=Taylor & Francis | year=2003 | id=ISBN 0-415-14497-3}}
+
* Pickles, John. ''A History of Spaces: Cartographic Reason, Mapping, and the Geo-Coded World.'' Taylor & Francis, 2003. ISBN 0415144973
*Rice, M., Jacobson, R., Jones. D. 2003. ''Object Size Discrimination and Non-visual Cartographic Symbolization''. CA. pp. 1-12.
+
* Rand McNally. ''Illustrated Atlas of the World.'' Rand McNally, 1992. ISBN 0528834924
 +
*Rice, M., Jacobson, R., Jones. D. 2003. ''Object Size Discrimination and Non-visual Cartographic Symbolization.'' CA. pp. 1-12.
 
*Robinson, A. R. Sale, J. Morrison. 1978. Elements of Cartography. John Wiley and Sons: New York. ISBN 0-471-01781-7.
 
*Robinson, A. R. Sale, J. Morrison. 1978. Elements of Cartography. John Wiley and Sons: New York. ISBN 0-471-01781-7.
* {{cite book | author=Slocum, T. | title=Thematic Cartography and Geographic Visualization | location=Upper Saddle River, New Jersey | publisher=Prentice Hall | year=2003 | id=ISBN 0-130-35123-7}}
+
* Slocum, T. ''Thematic Cartography and Geographic Visualization.'' Upper Saddle River, New Jersey: Prentice Hall, 2003. ISBN 0130351237
*Southworth, M. and Southworth, S. 1982. Maps: A Visual Survey and Design Guide. Little, Brown and Co: Boston. ISBN 0-8212-1503-5
+
* Southworth, M. and Southworth, S. 1982. ''Maps: A Visual Survey and Design Guide.'' Boston: Little, Brown and Co. ISBN 0821215035
* {{cite book | author=Wilford, John Noble | title=The Mapmakers | publisher=Vintage Books | year=2000 | id=ISBN 0-375-70850-2}}
+
* Wilford, John Noble. ''The Mapmakers.'' Vintage Books, 2000. ISBN 0375708502
*"Map Imitations" in [http://www.collectionscanada.ca/forgery/ Detecting the Truth: Fakes, Forgeries and Trickery], a virtual museum exhibition at Library and Archives Canada
+
* "Map Imitations" in [http://www.collectionscanada.ca/forgery/ Detecting the Truth: Fakes, Forgeries and Trickery], a virtual museum exhibition at Library and Archives Canada
*Wood, D. 1992. The Power of Maps. Guilford Press: New York. ISBN 0-89862-492-4
+
*Wood, D. ''The Power of Maps.'' New York: Guilford Press, 1992. ISBN 0898624924
  
 
== External links ==
 
== External links ==
All Links Retrieved December 21, 2007.
+
All links retrieved November 28, 2023.
* [http://www.ncc.org.ir/ National Cartographic Center of Iran (NCC), Tehran]
 
 
* [http://www.cartography.org.uk/ British Cartographic Society]
 
* [http://www.cartography.org.uk/ British Cartographic Society]
* [http://www.bl.uk/learning/artimages/maphist/mappinghistory.html Mapping History] - a learning resource from the British Library
+
* [http://www.loc.gov/rr/geogmap/guide/gmilltoc.html Geography and Maps, an Illustrated Guide], by the staff of the US Library of Congress.
* [http://www.loc.gov/rr/geogmap/guide/gmilltoc.html Geography and Maps, an Illustrated Guide], by the staff of the US [[Library of Congress]].
 
* [http://www-gap.dcs.st-and.ac.uk/~history/HistTopics/Cartography.html The history of cartography] at the School of Mathematics and Statistics, University of St. Andrews, Scotland
 
 
* [http://www.nacis.org/ North American Cartographic Information Society]
 
* [http://www.nacis.org/ North American Cartographic Information Society]
* [http://www.soc.org.uk/ Society of Cartographers]supports the practicing cartographer and encourages and maintains a high standard of cartographic illustration
+
*[http://openstreetmap.org OpenStreetMap] : project aimed at creating and providing free geographic data such as street maps to anyone who wants them.
* [http://www.newberry.org/collections/conbib.html Concise Bibliography of the History of Cartography], Newberry Library
 
* [http://www.upct.org/ UPCT] : project aimed at creating a world map (a French map to begin) with voluntaries using [[Global positioning system|GPS]]
 
*[http://openstreetmap.org OpenStreetMap] : project aimed squarely at creating and providing free geographic data such as street maps to anyone who wants them.
 
 
*[http://www.gitta.info/website/en/html/index.html GITTA] - A webbased open content eLearning course with basic and intermediate cartography lessons based on the [[eLML]] XML framework.
 
*[http://www.gitta.info/website/en/html/index.html GITTA] - A webbased open content eLearning course with basic and intermediate cartography lessons based on the [[eLML]] XML framework.
 
See [[Maps#External links|Maps]] for more links to modern and historical maps; however, most of the largest sites are listed at the sites linked below.
 
 
 
* [http://www.maphistory.info/index.html Map history] has extensive links to online map resources, including several large [http://www.maphistory.info/webimages.html collections of images online] and articles on the [http://www.maphistory.info/webtexts.html history of cartography].
 
* [http://www.maphistory.info/index.html Map history] has extensive links to online map resources, including several large [http://www.maphistory.info/webimages.html collections of images online] and articles on the [http://www.maphistory.info/webtexts.html history of cartography].
* [http://oddens.geog.uu.nl/index.php Odden's fascinating world of maps and mapping] has a huge database of links on maps and cartography (under "Literature").
 
* [http://www.sunysb.edu/libmap/libcats.htm  Online map catalogs in North America and Europe] lists some good places to search for online maps.
 
* [http://www.uidaho.edu/special-collections/Other.Repositories.html  A listing of over 5000 websites] describing holdings of manuscripts, archives, rare books, historical photographs, and other primary sources for the research scholar
 
 
* [http://www.mapref.org MapRef] A collection of map projections and reference systems for Europe - Zusammenstellung Europäischer Referenzsysteme und Kartenprojektionen
 
* [http://www.mapref.org MapRef] A collection of map projections and reference systems for Europe - Zusammenstellung Europäischer Referenzsysteme und Kartenprojektionen
*[http://maps.grida.no UNEP/GRID-Arendal Maps and Graphics Library], web-site from the UN Environment Programme with hundreds of examples of thematic maps
 
*[http://compsoc.bandungfe.net/kartografi-indonesia/ Kartografi-Indonesia] A website displaying cartograms of various Indonesian-related data made by the Dept. Computational Sociology of Bandung Fe Institute.
 
*[http://islamic-cartography.blogspot.com/ IslamicCartography] A weblog on Islamic cartography by Tarek Kahlaoui a PhD student in the University of Pennsylvania
 
*[http://www.photoshoproadmap.com/Photoshop-blog/2006/07/17/rendering-a-map-using-relief-shading-technique-in-photoshop/ Rendering a map using relief shading technique in Photoshop]
 
 
*[http://www.oxfam.org.uk/education/resources/mapping_our_world/ Mapping Our World]  Oxfam's interactive site to help pupils develop geography skills through activities all about maps, globes and how we view the world
 
*[http://www.oxfam.org.uk/education/resources/mapping_our_world/ Mapping Our World]  Oxfam's interactive site to help pupils develop geography skills through activities all about maps, globes and how we view the world
*[http://www.platial.com/ Platial, The People's Atlas]  User-created maps
 
  
  

Latest revision as of 00:45, 29 November 2023

A celestial map from the seventeenth century, by the Dutch cartographer Frederik de Wit.

Cartography or mapmaking (in Greek chartis - map and graphein - write) is the study and practice of making representations of the Earth on a flat surface. The discipline of cartography combines science, aesthetics, and technical ability to create a balanced and readable representation that is capable of communicating information effectively and quickly.

Cartography, however mechanized it becomes, remains both a science and an art. The aesthetics of any given map will always be a critical component essential to the conveyance of information. A map must provide accuracy and in the best of solutions, an inventive presentation of data or analysis of data, but always in a form that is readily comprehensible and inviting to the reader. A map is both more, and less, than simply geographical or physical space. And it is always a result of artistic and technical judgments, creating something both useful and, occasionally, beautiful.

One problem in creating maps is the simple reality that the surface of the Earth, a curved surface in three-dimensional space, must be represented in two dimensions as a flat surface. This necessarily entails some degree of distortion, which can be dealt with by utilizing projections that minimize distortion in certain areas. Furthermore, the Earth is not a regular sphere, but its shape is instead known as a geoid, which is a highly irregular but exactly knowable and calculable shape.

Maps of all scales have traditionally been drawn and made by hand, but the use of computers has revolutionized cartography. Most commercial-quality maps are now made with software that falls into one of three main types: CAD, GIS, and specialized illustration software.

Functioning as tools, maps communicate spatial information by making it visible. Spatial information is acquired from measurement of space and can be stored in a database, from which it can be extracted for a variety of purposes. Current trends in this field are moving away from analog methods of mapmaking and toward the creation of increasingly dynamic, interactive maps that can be manipulated digitally.

Cartographic representation involves the use of symbols and lines to illustrate geographic phenomena. This can aid in visualizing space in an abstract and portable format. The cartographic process rests on the premise that the world is measurable and that we can make reliable representations or models of that reality.

Etymology

The term "Cartography" was coined in 1859, from the French, carta meaning card and -graphie, from the Greek, meaning to write, or to draw.[1] A slightly different version finds the term deriving from Old French carte, or map, with its roots in Latin charta, or carta, meaning paper made from papyrus. Graphie is the French for graphia, from the Greek for writing. [2]

History

Copy (1475) of St. Isidore's TO map of the world

Maps have been a large part of the human story for a long time (perhaps 8,000 years - nobody knows exactly, but longer than written words). They were known to have existed in societies of Europe, the Middle East, China, India, and others.

The earliest known map to date is a wall painting of the ancient Turkish city of Çatal Hüyük which has been dated to the late seventh millennium B.C.E. [3] Other known maps of the ancient world include the Minoan “House of the Admiral” wall painting from c. 1600 B.C.E. showing a seaside community in an oblique perspective, and an engraved map of the holy Babylonian city of Nippur, from the Kassite period (fourteenth – twelfth centuries B.C.E.). [4] The ancient Greeks and Romans created maps beginning with Anaximander in the sixth century B.C.E. In ancient China, although geographical literature spans back to the fifth century B.C.E., the drawing of true geographical maps was not begun in earnest until the first half of the Han Dynasty (202 B.C.E.-202 C.E.), with the works of Prince Liu An (179 B.C.E.-122 B.C.E.).

Mappa mundi is the general term used to describe Medieval European maps of the world. Approximately 1,100 mappae mundi are known to have survived from the Middle Ages. Of these, some 900 are found illustrating manuscripts and the remainder exist as stand-alone documents [5].

In the Age of Exploration from the fifteenth century to the seventeenth century, cartographers copied earlier maps (some of which had been passed down for centuries) and drew their own based on explorers' observations and new surveying techniques. The invention of the magnetic compass, telescope, and sextant increased accuracy.

Due to the sheer physical difficulties inherent in cartography, map-makers frequently lifted material from earlier works without giving credit to the original cartographer. For example, one of the most famous early maps of North America is unofficially known as the Beaver Map, published in 1715 by Herman Moll. This map is an exact reproduction of a 1698 work by Nicolas de Fer. De Fer in turn had copied images that were first printed in books by Louis Hennepin, published in 1697, and François Du Creux, in 1664. By the 1700s, map-makers started to give credit to the original engraver by printing the phrase "After [the original cartographer]" on the work. [6]

Not all maps were drawn on paper. Well researched examples include the navigational stick charts of the Marshall Islanders, interwoven sticks arranged to depict distances across seas, wave fronts, and elevations of islands. Native Alaskans carved intricate sculptures that recreated coastlines and elevations in a portable, and quite accurate, three dimensional form. [7]

Technological changes

In cartography, new technology has been incorporated into the production of the maps of new generations of mapmakers and map users. The first maps were manually constructed with brushes and parchment, were varied in quality and of limited distribution. The advent of magnetic devices, like the compass and, much later, magnetic storage devices, led to the creation of far more accurate maps and the ability to store and manipulate those maps digitally.

Advances in mechanical devices such as the printing press, quadrant, and vernier calipers allowed for the mass production of maps and the ability to make accurate reproductions from more accurate data. Optical technology, such as the telescope, sextant, and other devices that use telescopes, allowed for accurate surveying of land and gave the mapmakers and navigators the ability to find their latitude by measuring angles to the North Star at night or the sun at noon.

Advances in photochemical technology, such as the lithographic and photochemical processes, have allowed for the creation of maps that are finely detailed, do not distort in shape, and resist moisture and wear. These advances eliminated the need for engraving, further shortening the time it takes to make and reproduce maps.

In the late twentieth century and early twenty-first century, advances in electronic technology led to another revolution in cartography. Specifically, computer hardware devices such as computer screens, plotters, printers, scanners (remote and document), and analytic stereo plotters along with visualization, image processing, spatial analysis and database software, have democratized and greatly expanded the making of maps. The ability to superimpose spatially located variables onto existing maps created new uses for maps and new industries to explore and exploit these potentials.

Map types

The field of cartography can be divided into two broad categories: general cartography and thematic cartography. General cartography involves those maps that are constructed for a general audience and thus contain a variety of features, like topographic maps. Topographic maps depict natural and built features of a place, with relief and elevation shown by drawn contours or shading techniques. These relatively general maps exhibit many reference and location systems and often are produced in a series. For example, United States Geological Survey (USGS) has produced a full series of 1:24,000 scale topographic maps; Canada has the same, at 1:50,000 scale. The government of the UK produces 1:63,360 (1 inch to 1 mile) "Ordnance Survey" maps of the entire UK and a range of correlated larger- and smaller-scale maps of great detail.

Thematic cartography involves maps of specific geographic themes oriented toward specific audiences. Examples might be a dot map showing corn production in Indiana or a shaded area map of Ohio counties divided into numerical choropleth classes. As the volume of geographic data has exploded over the last century, thematic cartography has become increasingly useful and necessary to interpret spatial cultural and social data. Epidemiological data are represented on specialized maps, a particularly useful way to illustrate exposure patterns, or occurrence. Most applied cartography could be well be described as thematic mapping. Points of view can be represented thematically as well, and the user of a given map must be informed of the objectives of the cartographer in order to judge the value of the presentation.

Map design

Illustrated map

Arthur H. Robinson, an American cartographer influential in thematic cartography, stated that a poorly designed map "will be a cartographic failure." He also declared that "map design is perhaps the most complex" aspect of cartography. [8] Robinson codified the mapmaker's understanding that a map must be designed with consideration of the audience and its needs foremost. A well designed map would address each of these basic elements:

  • ease of use, with respect to the intended audience, both physically and cognitively; *accuracy, meaning a minimum amount of distortion or errors;
  • strong relationship between the object and the map, meaning that the translation of physical space to a different medium should be readily recognizable;
  • appropriate labeling and symbol use;
  • legibility and clarity - very important points. [9]

From the very beginning of mapmaking, maps "have been made for some particular purpose or set of purposes." [10] The intent of the map should be illustrated in a manner in which the 'percipient' acknowledges its purpose in a timely fashion. The term percipient refers to the person receiving information and was used by Robinson. The figure-ground principle refers to this notion of engaging the user by clear presentation, leaving no confusion concerning the purpose of the map. Clear presentation enhances the user’s experience and keeps his attention. If the user is unable to identify what is being demonstrated, the map may be useless.

Making a meaningful map is the ultimate goal. MacEachren explains that a well designed map "is convincing because it implies authenticity" [11]. A thoughtfully designed, interesting map engages a reader. Information richness or a map that is multivariate will show relationships within the map. Showing several variables allows comparison, adding to the meaningfulness of the map. This also generates hypotheses, stimulates ideas, and perhaps, further research.

In order to convey the message of the map, the creator must design it in a manner that will facilitate the overall understanding of its purpose. The title of a map may provide the "needed link" necessary for communicating that message, but the overall design of the map fosters the manner in which the reader interprets it [12]).

Naming conventions

Most maps use text to label places and for such things as a map title, legend, and other information. Maps are typically created in specific languages, though names of places often differ among languages. So a map made in English may use the name Germany for that country, where a German map would use Deutschland, and a French map Allemagne. A word that describes a place using a non-native terminology or language is referred to as an exonym.

In some cases, the 'correct' name is unclear. For example, the nation of Burma officially changed its name to Myanmar, but many nations do not recognize the ruling junta and continue to use Burma. Sometimes an official name change is resisted in other languages and the older name may remain in common use. Examples include the use of Saigon for Ho Chi Minh City, Bangkok for Krung Thep, and Ivory Coast for Côte d'Ivoire.

Difficulties arise when transliteration or transcription between writing systems is required. National names tend to have well established names in other languages and writing systems, such as Russia for Росси́я, but for many placenames a system of transliteration or transcription is required. In transliteration the symbols of one language are represented by symbols in another. For example, the Cyrillic letter Р is traditionally written as R in the Latin alphabet. Systems exist for transliteration of Arabic, but the results may vary. For example, the Yemeni city of Mocha is written variously in English as Mocha, Al Mukha, al-Mukhā, Mocca, and Moka. Transliteration systems are based on relating written symbols to one another, while transcription is the attempt to spell the phonetic sounds of one language in another. Chinese writing is transformed into the Latin alphabet through the Pinyin phonetic transcription systems, for example. Other systems were used in the past, such as Wade-Giles, resulting in the city being spelled Beijing on newer English maps and Peking on older ones.

Further difficulties arise when countries, especially former colonies, do not have a strong national geographic naming standard. In such cases cartographers may have to choose between various phonetic spellings of local names versus older imposed, sometimes resented, colonial names. Some countries have multiple official languages, resulting in multiple official placenames. For example, the capital of Belgium is both Brussels and Bruxelles. In Canada, English and French are official languages and places are named in both languages. British Columbia is also officially named la Colombie-Britannique. English maps rarely show the French names outside Quebec, which itself is spelled Québec in French. [13]

The study of placenames is called toponymy, while that of the origin and historical usage of placenames as words is etymology.

Map symbolization

The quality of a map’s design affects its reader’s ability to comprehend and extract information from the map. Cartographic symbolization has been developed in an effort to portray the world accurately and effectively convey information to the map reader. A legend explains the pictorial language of the map, or its symbolization. The title indicates the region the map portrays or the map's intent; the map image portrays the region and so on. Although every map element serves some purpose, convention dictates inclusion of only certain elements while others are considered optional. A menu of map elements includes the neatline (border), compass rose or north arrow, overview map, scale bar, projection, and information about the map sources, accuracy, and publication.

When examining a landscape, scale can be intuited from trees, houses, and cars. Not so with a map. Thus a simple thing as a north arrow can be crucial; the top of a map does not necessarily indicate north.

Color is equally important. How the cartographer uses color to display the data can greatly affect the clarity or intent of the map. Different intensities of hue portray the cartographer's various objectives. Computers can display up to 16 million distinct colors at a time even though the human eye can distinguish only a minimum number of these (Jeer, 1997). This allows for a multitude of color options for even for the most complex maps. Moreover, computers can easily hatch patterns in colors to give even more options. This can be very useful when symbolizing data in categories like quintile and equal interval classifications.

Quantitative symbols give a visual measure of the relative size/importance/number that a symbol represents. There are two major classes of symbols used for portraying quantitative properties on a map: Proportional symbols change their visual weight according to a quantitative property. These are appropriate for extensive statistics. Choropleth maps portray data collection areas (such as counties, or census tracts) with color. Using color this way, the darkness and intensity (or value) of the color is evaluated by the eye as a measure of intensity or concentration [14].

Map generalization

A good map is a compromise between portraying the items of interest (or themes) in the right place for the map scale used, and the need to annotate that item with text or a symbol, taking up space on the map medium and very likely causing some other item of interest to be displaced. The cartographer is thus constantly making judgments about what to include, what to leave out, and what to show in a slightly incorrect place - because of the demands of the annotation. This issue assumes more importance as the scale of the map gets smaller (i.e., the map shows a larger area), because relatively, the annotation on the map takes up more space on the ground. A good example from the late 1980s was the British Government Ordnance Survey's first digital maps, where the absolute positions of major roads shown at scales of 1:1250 and 1:2500 were sometimes a scale distance of hundreds of meters away from ground truth, when shown on digital maps at scales of 1:250000 and 1:625000, because of the overriding need to annotate the features.

Notes

  1. Online Etymological Dictionary. Cartography Retrieved December 21, 2007.
  2. The American Heritage® Dictionary of the English Language, Fourth Ed. (Houghton Mifflin Company, 2006)
  3. Ataman Ministry of Culture. The Oldest Map of the World. Retrieved December 21, 2007.
  4. Oriental Institute, University of Chicago. Nippur - Sacred City Of Enlil Retrieved December 21, 2007.
  5. J. B. Harley, and David Woodward (eds.) The History of Cartography Volume 1: Cartography in Prehistoric, Ancient, and Medieval Europe and the Mediterranean. (Chicago and London: University of Chicago Press, 1987), 286
  6. Detecting the Truth: Fakes, Forgeries and Trickery. Map Imitations www.collectionscanada.ca. Retrieved December 21, 2007.
  7. Michael Southworth, and Susan Southworth. Maps, a visual survey and design guide. (Boston: Little Brown, 1982. ISBN 0821215035)
  8. Arthur Howard Robinson. Elements of cartography. (New York: Wiley, 1995. ISBN 0471555797)
  9. Southworth and Southworth
  10. Arthur Howard Robinson. Early thematic mapping in the history of cartography. (Chicago: University of Chicago Press, 1982. ISBN 0226722856)
  11. A.M. MacEachren. Some Truth with Maps: A Primer on Symbolization & Design. (University Park: The Pennsylvania State University, 1994), 9
  12. Mark Monmonier. Mapping It Out. (Chicago: University of Chicago Press, 1993), 93
  13. This section based on: "Transliteration Systems." Illustrated Atlas of the World. (Rand McNally, 1992. ISBN 0528834924), A16-A17
  14. Harvard Graduate School of Design, 2005. [1].Retrieved February 29, 2008.

References
ISBN links support NWE through referral fees

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External links

All links retrieved November 28, 2023.



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