WKT
Returns a WKT (Well Known Text) geometric object from various Geo Data Types. Supported WKT objects are:
- POINT
- MULTIPOINT
- POLYGON
- MULTIPOLYGON
- LINESTRING
- MULTILINESTRING
Syntax
WKT(geo_data)Parameters
geo_data can be one of the following Geo Data Types or their underlying primitive types:
Returned value
- WKT geometric object
POINTis returned for a Point. - WKT geometric object
MULTIPOINTis returned for a MultiPoint. - WKT geometric object
POLYGONis returned for a Polygon - WKT geometric object
MULTIPOLYGONis returned for a MultiPolygon. - WKT geometric object
LINESTRINGis returned for a LineString. - WKT geometric object
MULTILINESTRINGis returned for a MultiLineString.
Examples
POINT from tuple:
SELECT wkt((0., 0.));POINT(0 0)POLYGON from an array of tuples or an array of tuple arrays:
SELECT wkt([(0., 0.), (10., 0.), (10., 10.), (0., 10.)]);POLYGON((0 0,10 0,10 10,0 10))MULTIPOLYGON from an array of multi-dimensional tuple arrays:
SELECT wkt([[[(0., 0.), (10., 0.), (10., 10.), (0., 10.)], [(4., 4.), (5., 4.), (5., 5.), (4., 5.)]], [[(-10., -10.), (-10., -9.), (-9., 10.)]]]);MULTIPOLYGON(((0 0,10 0,10 10,0 10,0 0),(4 4,5 4,5 5,4 5,4 4)),((-10 -10,-10 -9,-9 10,-10 -10)))readWKTMultiPolygon
Converts a WKT (Well Known Text) MultiPolygon into a MultiPolygon type.
Example
SELECT
toTypeName(readWKTMultiPolygon('MULTIPOLYGON(((2 0,10 0,10 10,0 10,2 0),(4 4,5 4,5 5,4 5,4 4)),((-10 -10,-10 -9,-9 10,-10 -10)))')) AS type,
readWKTMultiPolygon('MULTIPOLYGON(((2 0,10 0,10 10,0 10,2 0),(4 4,5 4,5 5,4 5,4 4)),((-10 -10,-10 -9,-9 10,-10 -10)))') AS output FORMAT Markdown| type | output |
|---|---|
| MultiPolygon | [[[(2,0),(10,0),(10,10),(0,10),(2,0)],[(4,4),(5,4),(5,5),(4,5),(4,4)]],[[(-10,-10),(-10,-9),(-9,10),(-10,-10)]]] |
Input parameters
String starting with MULTIPOLYGON
Returned value
MultiPolygon
readWKTPolygon
Converts a WKT (Well Known Text) MultiPolygon into a Polygon type.
Example
SELECT
toTypeName(readWKTPolygon('POLYGON((2 0,10 0,10 10,0 10,2 0))')) AS type,
readWKTPolygon('POLYGON((2 0,10 0,10 10,0 10,2 0))') AS output
FORMAT Markdown| type | output |
|---|---|
| Polygon | [[(2,0),(10,0),(10,10),(0,10),(2,0)]] |
Input parameters
String starting with POLYGON
Returned value
Polygon
readWKTPoint
The readWKTPoint function in ClickHouse parses a Well-Known Text (WKT) representation of a Point geometry and returns a point in the internal ClickHouse format.
Syntax
readWKTPoint(wkt_string)Arguments
wkt_string: The input WKT string representing a Point geometry.
Returned value
The function returns a ClickHouse internal representation of the Point geometry.
Example
SELECT readWKTPoint('POINT (1.2 3.4)');(1.2,3.4)readWKTLineString
Parses a Well-Known Text (WKT) representation of a LineString geometry and returns it in the internal ClickHouse format.
Syntax
readWKTLineString(wkt_string)Arguments
wkt_string: The input WKT string representing a LineString geometry.
Returned value
The function returns a ClickHouse internal representation of the linestring geometry.
Example
SELECT readWKTLineString('LINESTRING (1 1, 2 2, 3 3, 1 1)');[(1,1),(2,2),(3,3),(1,1)]readWKTMultiLineString
Parses a Well-Known Text (WKT) representation of a MultiLineString geometry and returns it in the internal ClickHouse format.
Syntax
readWKTMultiLineString(wkt_string)Arguments
wkt_string: The input WKT string representing a MultiLineString geometry.
Returned value
The function returns a ClickHouse internal representation of the multilinestring geometry.
Example
SELECT readWKTMultiLineString('MULTILINESTRING ((1 1, 2 2, 3 3), (4 4, 5 5, 6 6))');[[(1,1),(2,2),(3,3)],[(4,4),(5,5),(6,6)]]readWKTMultiPoint
Parses a Well-Known Text (WKT) representation of a MultiPoint geometry and returns it in the internal ClickHouse format.
Syntax
readWKTMultiPoint(wkt_string)Arguments
wkt_string: The input WKT string representing a MultiPoint geometry.
Returned value
The function returns a ClickHouse internal representation of the multipoint geometry.
Example
SELECT readWKTMultiPoint('MULTIPOINT (1 1, 2 2, 3 3)');[(1,1),(2,2),(3,3)]readWKTRing
Parses a Well-Known Text (WKT) representation of a Polygon geometry and returns a ring (closed linestring) in the internal ClickHouse format.
Syntax
readWKTRing(wkt_string)Arguments
wkt_string: The input WKT string representing a Polygon geometry.
Returned value
The function returns a ClickHouse internal representation of the ring (closed linestring) geometry.
Example
SELECT readWKTRing('POLYGON ((1 1, 2 2, 3 3, 1 1))');[(1,1),(2,2),(3,3),(1,1)]polygonsWithinSpherical
Returns true or false depending on whether or not one polygon lies completely inside another polygon. Reference https://www.boost.org/doc/libs/1_62_0/libs/geometry/doc/html/geometry/reference/algorithms/within/within_2.html
Example
SELECT polygonsWithinSpherical([[[(4.3613577, 50.8651821), (4.349556, 50.8535879), (4.3602419, 50.8435626), (4.3830299, 50.8428851), (4.3904543, 50.8564867), (4.3613148, 50.8651279)]]], [[[(4.346693, 50.858306), (4.367945, 50.852455), (4.366227, 50.840809), (4.344961, 50.833264), (4.338074, 50.848677), (4.346693, 50.858306)]]]);0readWKBMultiPolygon
Converts a WKB (Well Known Binary) MultiPolygon into a MultiPolygon type.
Example
SELECT
toTypeName(readWKBMultiPolygon(unhex('0106000000020000000103000000020000000500000000000000000000400000000000000000000000000000244000000000000000000000000000002440000000000000244000000000000000000000000000002440000000000000004000000000000000000500000000000000000010400000000000001040000000000000144000000000000010400000000000001440000000000000144000000000000010400000000000001440000000000000104000000000000010400103000000010000000400000000000000000024c000000000000024c000000000000024c000000000000022c000000000000022c0000000000000244000000000000024c000000000000024c0'))) AS type,
readWKBMultiPolygon(unhex('0106000000020000000103000000020000000500000000000000000000400000000000000000000000000000244000000000000000000000000000002440000000000000244000000000000000000000000000002440000000000000004000000000000000000500000000000000000010400000000000001040000000000000144000000000000010400000000000001440000000000000144000000000000010400000000000001440000000000000104000000000000010400103000000010000000400000000000000000024c000000000000024c000000000000024c000000000000022c000000000000022c0000000000000244000000000000024c000000000000024c0')) AS output FORMAT Markdown| type | output |
|---|---|
| MultiPolygon | [[[(2,0),(10,0),(10,10),(0,10),(2,0)],[(4,4),(5,4),(5,5),(4,5),(4,4)]],[[(-10,-10),(-10,-9),(-9,10),(-10,-10)]]] |
Input parameters
String starting with MULTIPOLYGON
Returned value
MultiPolygon
readWKBPolygon
Converts a WKB (Well Known Binary) MultiPolygon into a Polygon type.
Example
SELECT
toTypeName(readWKBPolygon(unhex('010300000001000000050000000000000000000040000000000000000000000000000024400000000000000000000000000000244000000000000024400000000000000000000000000000244000000000000000400000000000000000'))) AS type,
readWKBPolygon(unhex('010300000001000000050000000000000000000040000000000000000000000000000024400000000000000000000000000000244000000000000024400000000000000000000000000000244000000000000000400000000000000000')) AS output
FORMAT Markdown| type | output |
|---|---|
| Polygon | [[(2,0),(10,0),(10,10),(0,10),(2,0)]] |
Input parameters
String starting with POLYGON
Returned value
Polygon
readWKBPoint
The readWKBPoint function in ClickHouse parses a Well-Known Binary (WKB) representation of a Point geometry and returns a point in the internal ClickHouse format.
Syntax
readWKBPoint(wkb_string)Arguments
wkb_string: The input WKB string representing a Point geometry.
Returned value
The function returns a ClickHouse internal representation of the Point geometry.
Example
SELECT readWKBPoint(unhex('0101000000333333333333f33f3333333333330b40'));(1.2,3.4)readWKBLineString
Parses a Well-Known Binary (WKB) representation of a LineString geometry and returns it in the internal ClickHouse format.
Syntax
readWKBLineString(wkb_string)Arguments
wkb_string: The input WKB string representing a LineString geometry.
Returned value
The function returns a ClickHouse internal representation of the linestring geometry.
Example
SELECT readWKBLineString(unhex('010200000004000000000000000000f03f000000000000f03f0000000000000040000000000000004000000000000008400000000000000840000000000000f03f000000000000f03f'));[(1,1),(2,2),(3,3),(1,1)]readWKBMultiLineString
Parses a Well-Known Binary (WKB) representation of a MultiLineString geometry and returns it in the internal ClickHouse format.
Syntax
readWKBMultiLineString(wkb_string)Arguments
wkb_string: The input WKB string representing a MultiLineString geometry.
Returned value
The function returns a ClickHouse internal representation of the multilinestring geometry.
Example
SELECT readWKBMultiLineString(unhex('010500000002000000010200000003000000000000000000f03f000000000000f03f0000000000000040000000000000004000000000000008400000000000000840010200000003000000000000000000104000000000000010400000000000001440000000000000144000000000000018400000000000001840'));[[(1,1),(2,2),(3,3)],[(4,4),(5,5),(6,6)]]Input parameters
Returned value
UInt8, 0 for false, 1 for true
readWKBMultiPoint
Parses a Well-Known Binary (WKB) representation of a MultiPoint geometry and returns it in the internal ClickHouse format.
Syntax
readWKBMultiPoint(wkb_string)Arguments
wkb_string: The input WKB string representing a MultiPoint geometry.
Returned value
The function returns a ClickHouse internal representation of the multipoint geometry.
Example
SELECT readWKBMultiPoint(unhex('0104000000020000000101000000000000000000f03f000000000000f03f010100000000000000000000400000000000000040'));[(1,1),(2,2)]polygonsDistanceSpherical
Calculates the minimal distance between two points where one point belongs to the first polygon and the second to another polygon. Spherical means that coordinates are interpreted as coordinates on a pure and ideal sphere, which is not true for the Earth. Using this type of coordinate system speeds up execution, but of course is not precise.
Example
SELECT polygonsDistanceSpherical([[[(0, 0), (0, 0.1), (0.1, 0.1), (0.1, 0)]]], [[[(10., 10.), (10., 40.), (40., 40.), (40., 10.), (10., 10.)]]])0.24372872211133834Input parameters
Two polygons
Returned value
Float64
polygonsDistanceCartesian
Calculates distance between two polygons
Example
SELECT polygonsDistanceCartesian([[[(0, 0), (0, 0.1), (0.1, 0.1), (0.1, 0)]]], [[[(10., 10.), (10., 40.), (40., 40.), (40., 10.), (10., 10.)]]])14.000714267493642Input parameters
Two polygons
Returned value
Float64
polygonsEqualsCartesian
Returns true if two polygons are equal
Example
SELECT polygonsEqualsCartesian([[[(1., 1.), (1., 4.), (4., 4.), (4., 1.)]]], [[[(1., 1.), (1., 4.), (4., 4.), (4., 1.), (1., 1.)]]])1Input parameters
Two polygons
Returned value
UInt8, 0 for false, 1 for true
polygonsSymDifferenceSpherical
Calculates the spatial set theoretic symmetric difference (XOR) between two polygons
Example
SELECT wkt(arraySort(polygonsSymDifferenceSpherical([[(50., 50.), (50., -50.), (-50., -50.), (-50., 50.), (50., 50.)], [(10., 10.), (10., 40.), (40., 40.), (40., 10.), (10., 10.)], [(-10., -10.), (-10., -40.), (-40., -40.), (-40., -10.), (-10., -10.)]], [[(-20., -20.), (-20., 20.), (20., 20.), (20., -20.), (-20., -20.)]])));MULTIPOLYGON(((-20 -10.3067,-10 -10,-10 -20.8791,-20 -20,-20 -10.3067)),((10 20.8791,20 20,20 10.3067,10 10,10 20.8791)),((50 50,50 -50,-50 -50,-50 50,50 50),(20 10.3067,40 10,40 40,10 40,10 20.8791,-20 20,-20 -10.3067,-40 -10,-40 -40,-10 -40,-10 -20.8791,20 -20,20 10.3067)))Input parameters
Polygons
Returned value
MultiPolygon
polygonsSymDifferenceCartesian
The same as polygonsSymDifferenceSpherical, but the coordinates are in the Cartesian coordinate system; which is more close to the model of the real Earth.
Example
SELECT wkt(polygonsSymDifferenceCartesian([[[(0, 0), (0, 3), (1, 2.9), (2, 2.6), (2.6, 2), (2.9, 1), (3, 0), (0, 0)]]], [[[(1., 1.), (1., 4.), (4., 4.), (4., 1.), (1., 1.)]]]))MULTIPOLYGON(((1 2.9,1 1,2.9 1,3 0,0 0,0 3,1 2.9)),((1 2.9,1 4,4 4,4 1,2.9 1,2.6 2,2 2.6,1 2.9)))Input parameters
Polygons
Returned value
MultiPolygon
polygonsIntersectionSpherical
Calculates the intersection (AND) between polygons, coordinates are spherical.
Example
SELECT wkt(arrayMap(a -> arrayMap(b -> arrayMap(c -> (round(c.1, 6), round(c.2, 6)), b), a), polygonsIntersectionSpherical([[[(4.3613577, 50.8651821), (4.349556, 50.8535879), (4.3602419, 50.8435626), (4.3830299, 50.8428851), (4.3904543, 50.8564867), (4.3613148, 50.8651279)]]], [[[(4.346693, 50.858306), (4.367945, 50.852455), (4.366227, 50.840809), (4.344961, 50.833264), (4.338074, 50.848677), (4.346693, 50.858306)]]])))MULTIPOLYGON(((4.3666 50.8434,4.36024 50.8436,4.34956 50.8536,4.35268 50.8567,4.36794 50.8525,4.3666 50.8434)))Input parameters
Polygons
Returned value
MultiPolygon
polygonsWithinCartesian
Returns true if the second polygon is within the first polygon.
Example
SELECT polygonsWithinCartesian([[[(2., 2.), (2., 3.), (3., 3.), (3., 2.)]]], [[[(1., 1.), (1., 4.), (4., 4.), (4., 1.), (1., 1.)]]])1Input parameters
Two polygons
Returned value
UInt8, 0 for false, 1 for true
polygonsIntersectCartesian
Returns true if the two polygons intersect (share any common area or boundary).
Example
SELECT polygonsIntersectCartesian([[[(2., 2.), (2., 3.), (3., 3.), (3., 2.)]]], [[[(1., 1.), (1., 4.), (4., 4.), (4., 1.), (1., 1.)]]])1Input parameters
Two polygons
Returned value
UInt8, 0 for false, 1 for true
polygonsIntersectSpherical
Returns true if the two polygons intersect (share any common area or boundary). Reference https://www.boost.org/doc/libs/1_62_0/libs/geometry/doc/html/geometry/reference/algorithms/intersects.html
Example
SELECT polygonsIntersectSpherical([[[(4.3613577, 50.8651821), (4.349556, 50.8535879), (4.3602419, 50.8435626), (4.3830299, 50.8428851), (4.3904543, 50.8564867), (4.3613148, 50.8651279)]]], [[[(4.346693, 50.858306), (4.367945, 50.852455), (4.366227, 50.840809), (4.344961, 50.833264), (4.338074, 50.848677), (4.346693, 50.858306)]]]);1Input parameters
Two polygons
Returned value
UInt8, 0 for false, 1 for true
geometryIntersectCartesian
Returns true if two geometries intersect (share any common point, line or area).
Unlike polygonsIntersectCartesian, it accepts any geometry data type
(Point, MultiPoint, LineString, MultiLineString, Ring, Polygon, MultiPolygon), including the common
Geometry type, and the two arguments may be of different types.
Coordinates are in the Cartesian coordinate system.
Example
SELECT geometryIntersectCartesian([(2., 2.), (2., 3.), (3., 3.), (3., 2.)]::Ring, [(1., 1.), (1., 4.), (4., 4.), (4., 1.)]::Ring)1Input parameters
Two geometries of any geometry data type (or Geometry).
Returned value
UInt8, 0 for false, 1 for true
geometryIntersectSpherical
Returns true if two geometries intersect (share any common point, line or area).
Unlike polygonsIntersectSpherical, it accepts any geometry data type
(Point, MultiPoint, LineString, MultiLineString, Ring, Polygon, MultiPolygon), including the common
Geometry type, and the two arguments may be of different types.
Coordinates are interpreted as being on an ideal sphere.
Example
SELECT geometryIntersectSpherical([[[(4.3613577, 50.8651821), (4.349556, 50.8535879), (4.3602419, 50.8435626), (4.3830299, 50.8428851), (4.3904543, 50.8564867), (4.3613148, 50.8651279)]]]::MultiPolygon, (4.36, 50.85)::Point)1Input parameters
Two geometries of any geometry data type (or Geometry).
Returned value
UInt8, 0 for false, 1 for true
polygonConvexHullCartesian
Calculates a convex hull. Reference
Coordinates are in Cartesian coordinate system.
Example
SELECT wkt(polygonConvexHullCartesian([[[(0., 0.), (0., 5.), (5., 5.), (5., 0.), (2., 3.)]]]))POLYGON((0 0,0 5,5 5,5 0,0 0))Input parameters
MultiPolygon
Returned value
Polygon
polygonAreaSpherical
Calculates the surface area of a polygon.
Example
SELECT round(polygonAreaSpherical([[[(4.346693, 50.858306), (4.367945, 50.852455), (4.366227, 50.840809), (4.344961, 50.833264), (4.338074, 50.848677), (4.346693, 50.858306)]]]), 14)9.387704e-8Input parameters
Polygon
Returned value
Float
polygonsUnionSpherical
Calculates a union (OR).
Example
SELECT wkt(polygonsUnionSpherical([[[(4.3613577, 50.8651821), (4.349556, 50.8535879), (4.3602419, 50.8435626), (4.3830299, 50.8428851), (4.3904543, 50.8564867), (4.3613148, 50.8651279)]]], [[[(4.346693, 50.858306), (4.367945, 50.852455), (4.366227, 50.840809), (4.344961, 50.833264), (4.338074, 50.848677), (4.346693, 50.858306)]]]))MULTIPOLYGON(((4.36661 50.8434,4.36623 50.8408,4.34496 50.8333,4.33807 50.8487,4.34669 50.8583,4.35268 50.8567,4.36136 50.8652,4.36131 50.8651,4.39045 50.8565,4.38303 50.8429,4.36661 50.8434)))Input parameters
Polygons
Returned value
MultiPolygon
polygonPerimeterSpherical
Calculates the perimeter of the polygon.
Example
Polygon representing Zimbabwe
This is the polygon representing Zimbabwe:
POLYGON((30.0107 -15.6462,30.0502 -15.6401,30.09 -15.6294,30.1301 -15.6237,30.1699 -15.6322,30.1956 -15.6491,30.2072 -15.6532,30.2231 -15.6497,30.231 -15.6447,30.2461 -15.6321,30.2549 -15.6289,30.2801 -15.6323,30.2962 -15.639,30.3281 -15.6524,30.3567 -15.6515,30.3963 -15.636,30.3977 -15.7168,30.3993 -15.812,30.4013 -15.9317,30.4026 -16.0012,30.5148 -16.0004,30.5866 -16,30.7497 -15.9989,30.8574 -15.9981,30.9019 -16.0071,30.9422 -16.0345,30.9583 -16.0511,30.9731 -16.062,30.9898 -16.0643,31.012 -16.0549,31.0237 -16.0452,31.0422 -16.0249,31.0569 -16.0176,31.0654 -16.0196,31.0733 -16.0255,31.0809 -16.0259,31.089 -16.0119,31.1141 -15.9969,31.1585 -16.0002,31.26 -16.0235,31.2789 -16.0303,31.2953 -16.0417,31.3096 -16.059,31.3284 -16.0928,31.3409 -16.1067,31.3603 -16.1169,31.3703 -16.1237,31.3746 -16.1329,31.3778 -16.1422,31.384 -16.1488,31.3877 -16.1496,31.3956 -16.1477,31.3996 -16.1473,31.4043 -16.1499,31.4041 -16.1545,31.4027 -16.1594,31.4046 -16.1623,31.4241 -16.1647,31.4457 -16.165,31.4657 -16.1677,31.4806 -16.178,31.5192 -16.1965,31.6861 -16.2072,31.7107 -16.2179,31.7382 -16.2398,31.7988 -16.3037,31.8181 -16.3196,31.8601 -16.3408,31.8719 -16.3504,31.8807 -16.368,31.8856 -16.4063,31.8944 -16.4215,31.9103 -16.4289,32.0141 -16.4449,32.2118 -16.4402,32.2905 -16.4518,32.3937 -16.4918,32.5521 -16.5534,32.6718 -16.5998,32.6831 -16.6099,32.6879 -16.6243,32.6886 -16.6473,32.6987 -16.6868,32.7252 -16.7064,32.7309 -16.7087,32.7313 -16.7088,32.7399 -16.7032,32.7538 -16.6979,32.7693 -16.6955,32.8007 -16.6973,32.862 -16.7105,32.8934 -16.7124,32.9096 -16.7081,32.9396 -16.6898,32.9562 -16.6831,32.9685 -16.6816,32.9616 -16.7103,32.9334 -16.8158,32.9162 -16.8479,32.9005 -16.8678,32.8288 -16.9351,32.8301 -16.9415,32.8868 -17.0382,32.9285 -17.1095,32.9541 -17.1672,32.9678 -17.2289,32.9691 -17.2661,32.9694 -17.2761,32.9732 -17.2979,32.9836 -17.3178,32.9924 -17.3247,33.0147 -17.3367,33.0216 -17.3456,33.0225 -17.3615,33.0163 -17.3772,33.0117 -17.384,32.9974 -17.405,32.9582 -17.4785,32.9517 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(29.648505, -15.666588), (29.672793, -15.663281), (29.73005, -15.644677), (29.773252, -15.638062), (29.814283, -15.619666), (29.837331, -15.614808), (29.881773, -15.618839), (29.967504, -15.641473), (30.010654, -15.646227)]), 6)0.45539Input parameters
Returned value
polygonsIntersectionCartesian
Calculates the intersection of polygons.
Example
SELECT wkt(polygonsIntersectionCartesian([[[(0., 0.), (0., 3.), (1., 2.9), (2., 2.6), (2.6, 2.), (2.9, 1.), (3., 0.), (0., 0.)]]], [[[(1., 1.), (1., 4.), (4., 4.), (4., 1.), (1., 1.)]]]))MULTIPOLYGON(((1 2.9,2 2.6,2.6 2,2.9 1,1 1,1 2.9)))Input parameters
Polygons
Returned value
MultiPolygon
polygonAreaCartesian
Calculates the area of a polygon
Example
SELECT polygonAreaCartesian([[[(0., 0.), (0., 5.), (5., 5.), (5., 0.)]]])25Input parameters
Polygon
Returned value
Float64
polygonPerimeterCartesian
Calculates the perimeter of a polygon.
Example
SELECT polygonPerimeterCartesian([[[(0., 0.), (0., 5.), (5., 5.), (5., 0.)]]])15Input parameters
Polygon
Returned value
Float64
polygonsUnionCartesian
Calculates the union of polygons.
Example
SELECT wkt(polygonsUnionCartesian([[[(0., 0.), (0., 3.), (1., 2.9), (2., 2.6), (2.6, 2.), (2.9, 1), (3., 0.), (0., 0.)]]], [[[(1., 1.), (1., 4.), (4., 4.), (4., 1.), (1., 1.)]]]))MULTIPOLYGON(((1 2.9,1 4,4 4,4 1,2.9 1,3 0,0 0,0 3,1 2.9)))Input parameters
Polygons
Returned value
MultiPolygon
For more information on geometry systems, see this presentation about the Boost library, which is what ClickHouse uses.