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Map Projection § Curved surface (3D) 2D Flat Surface § Approaches to transfer the spherical earth on a two dimensional surface § Some distortions will always occur

Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

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Page 1: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Map Projection

§Curved surface (3D) 2D Flat Surface§Approaches to transfer the spherical earth on

a two dimensional surface§Some distortions will always occur

Page 2: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Projection cont.

n Visualize a light shining through the Earth onto a surface

Page 3: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Distortionsn Fitting sphere to plane causes

stretching or shrinking of features

Page 4: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Types of Distortion

nShape nAreanDistancenDirection

Page 5: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Projection propertiesn Conformal

n maintains shapen Equal- area

n maintains arean Equidistant

n maintains distancen Azimuthal (Planar)

n maintains some directions

Page 6: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Example

Page 7: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Mercator Projection (Shape Preserved)

Page 8: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Mollweide Projection (Area preserved)

Page 9: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Developable Surfacesn Can be flattened without distortion

n Cylindersn Cones n Planesn Other

n A point or line of contact is created when surface is combined with a sphere

Page 10: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Developable surfaces contacting spheres

n Tangentn projection surface touches sphere

n Secantn surface cuts through sphere

n No distortion at contact pointsn Increases away from contact points

Page 11: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

ExampleLambert’s Conformal Conic

From James R. Smith,page 194

Page 12: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

n Projecting a spherical surface onto a cylinder

• Longitudes equally spaced • Latitudes unequally spaced• Scale is true along equator• Shape and scale distortions increase near poles

•Best for equatorial or low latitudes

Cylindrical Projection

Page 13: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Rotate cylinder to reduce distortion along a line- UTM is based on this- Cylinder right angles to the pole

Cylinder touches sphere alongtwo lines - both small circles

Page 14: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Conic projections- result from projecting a spherical surface onto a cone.

Best for mid- latitudes with an East- West orientation

like Canada

Page 15: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Azimuthal (Planar) projections- result from projecting a spherical surface onto a plane.

•Best for polar or circular regions•Direction always true from center

Page 16: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Common Projections

n Mercatorn Universal Transverse Mercatorn Albers Equal Arean Lambert’s Conformal Conicn Azimuthal Equidistant

Page 17: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

-Projected on a cylinder -Any straight line is a line of constant direction (rhumb line)-Used for navigation-True Directions,-Conformal (angles and shapes true in small areas) but not equal area or equidistant-Cylindrical

Mercator Projection

Page 18: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

§Divides the earth from latitudes 84N to 80S in 60 vertical zones that are 6 deg wide.

§ Zones are numbered starting at 180th

meridian in eastward direction

§ Each zone is divided into sections of 8 deg latitude each§ Eastings (from Central meridian) and

Northings(from equator) can be designated for each zone§UTM preserves Area, Distance and Shape

well.

Universal Transverse Mercator

Page 19: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Universal Transverse Mercator

Page 20: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Albers Equal Area

• Conic (Secant case)• Well-suited for areas that

are mainly east-west in extent

• Areas - True• Directions - Reasonably

accurate in limited regions• Distances and Scale True

only along standard parallels

• Map - not conformal• Used for Thematic maps

Page 21: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Lambert Conformal Conic

• Conic (Secant case)• Distances - True only along

standard parallels• Map - Conformal but not equal

area or equidistant• Area and Shape - Distortion

minimal at std. parallels• Directions - Reasonably

accurate• Shape - True for small areas• To map large ocean Areas and

regions in E-W extent

Page 22: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Different map projections result in different spatial relationships between regions.

Page 23: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

• Extent - World; Eq/mid-lat/Polar

• Distances measured from centre are true; Distortion of other properties increases from centre point

• Useful for showing airline distances from centre point

• Useful for seismic & radio work

Azimuthal Equidistant

Page 24: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Choosing a projection

n Often mandated by organizationn Or intended use:

n Thematic = equal- arean Presentation = conformal (also equal- area)n Navigation = Mercator, true direction or

equidistant

Page 25: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Choosing, cont.

n Extentn Locationn Predominant extentn Projection supports spheroid/

datums?

Page 26: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

Combining data

n Data must be in common coordinate system

n Must know projection AND GCS (datum)

n Ex. Both in UTM, zone 10,n 1 is NAD27, 1 is NAD83 --n Y coordinates up to 200 meters off

Page 27: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

COMMON MAP PROJECTIONSEqual Area – Goode’s Homolosine

From Robinson, Sixth Edition, page 81

Page 28: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

COMMON MAP PROJECTIONSSpecial Purpose

Equidistant Cylindrical/Plane Chart

From Robinson, Sixth Edition, page 86

Page 29: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

COMMON MAP PROJECTIONSSpecial Purpose – Simple Conic

From Robinson, Sixth Edition, page 87

Page 30: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

COMMON MAP PROJECTIONSSpecial Purpose - Polyconic

From Robinson, Sixth Edition, page 88, 89

The distribution of scale factors on a polyconicprojection in the vacinity of 40° latitude. N-S SF values away from the central meridian are approximate. Note that the section of the projection which is used for a standard 7.5-minute quadrangle map would be 1/8 degree E-W and N-S along the central meridian.

Page 31: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth

COMMON MAP PROJECTIONSSpecial Purpose

Robinson’s

Space

Oblique

Mercator

Page 32: Map Projection - University of Nebraska Omahamaps.unomaha.edu/Peterson/carta/PowerPoints/Projection.pdf · COMMON MAP PROJECTIONS Special Purpose - Polyconic From Robinson, Sixth