intrinsic Font - ορισμός. Τι είναι το intrinsic Font
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Τι (ποιος) είναι intrinsic Font - ορισμός

EQUATION WHICH DEFINES A CURVE INDEPENDENTLY OF A COORDINATE SYSTEM
Intrinsic curve; Intrinsic coordinates

raster font         
  • A bitmap color font for the [[Amiga OS]]
  • Perpetua]]
  • With stroke-based fonts, the same stroke paths can be filled with different stroke profiles resulting in different visual shapes without the need to specify the vertex positions of each outline, as is the case with outline fonts.
  • Macintosh operating system]]
DIGITAL DESCRIPTION OF A TYPOGRAPHICAL FONT
Bitmap font; Vector fonts; Vector font; Raster font; Digital font; Bit-Mapped Font; Bitmapped font; Pixel font; Scalable font; Bitmap fonts; Digital typeface; .fon; Outline typeface; Computer fonts; Font file; Stroke font; Virtual typeface; Screen font; Stroke-based font; Digital fonts; Raster fonts; Outline font; Computer typeface
outline font         
  • A bitmap color font for the [[Amiga OS]]
  • Perpetua]]
  • With stroke-based fonts, the same stroke paths can be filled with different stroke profiles resulting in different visual shapes without the need to specify the vertex positions of each outline, as is the case with outline fonts.
  • Macintosh operating system]]
DIGITAL DESCRIPTION OF A TYPOGRAPHICAL FONT
Bitmap font; Vector fonts; Vector font; Raster font; Digital font; Bit-Mapped Font; Bitmapped font; Pixel font; Scalable font; Bitmap fonts; Digital typeface; .fon; Outline typeface; Computer fonts; Font file; Stroke font; Virtual typeface; Screen font; Stroke-based font; Digital fonts; Raster fonts; Outline font; Computer typeface
<text> (Or "vector font") A font defined as a set of lines and curves as opposed to a bitmap font. An outline font (e.g. PostScript, TrueType, RISC OS) can be scaled to any size and otherwise transformed more easily than a bitmap font, and with more attractive results, though this requires a lot of numerical processing. The result of transforming a character in an outline font in a particular way is often saved as a bitmap in a font cache to avoid repeating the calculations if that character is to be drawn again. (1995-03-16)
vector font         
  • A bitmap color font for the [[Amiga OS]]
  • Perpetua]]
  • With stroke-based fonts, the same stroke paths can be filled with different stroke profiles resulting in different visual shapes without the need to specify the vertex positions of each outline, as is the case with outline fonts.
  • Macintosh operating system]]
DIGITAL DESCRIPTION OF A TYPOGRAPHICAL FONT
Bitmap font; Vector fonts; Vector font; Raster font; Digital font; Bit-Mapped Font; Bitmapped font; Pixel font; Scalable font; Bitmap fonts; Digital typeface; .fon; Outline typeface; Computer fonts; Font file; Stroke font; Virtual typeface; Screen font; Stroke-based font; Digital fonts; Raster fonts; Outline font; Computer typeface

Βικιπαίδεια

Intrinsic equation

In geometry, an intrinsic equation of a curve is an equation that defines the curve using a relation between the curve's intrinsic properties, that is, properties that do not depend on the location and possibly the orientation of the curve. Therefore an intrinsic equation defines the shape of the curve without specifying its position relative to an arbitrarily defined coordinate system.

The intrinsic quantities used most often are arc length s {\displaystyle s} , tangential angle θ {\displaystyle \theta } , curvature κ {\displaystyle \kappa } or radius of curvature, and, for 3-dimensional curves, torsion τ {\displaystyle \tau } . Specifically:

  • The natural equation is the curve given by its curvature and torsion.
  • The Whewell equation is obtained as a relation between arc length and tangential angle.
  • The Cesàro equation is obtained as a relation between arc length and curvature.

The equation of a circle (including a line) for example is given by the equation κ ( s ) = 1 r {\displaystyle \kappa (s)={\tfrac {1}{r}}} where s {\displaystyle s} is the arc length, κ {\displaystyle \kappa } the curvature and r {\displaystyle r} the radius of the circle.

These coordinates greatly simplify some physical problem. For elastic rods for example, the potential energy is given by

E = 0 L B κ 2 ( s ) d s {\displaystyle E=\int _{0}^{L}B\kappa ^{2}(s)ds}

where B {\displaystyle B} is the bending modulus E I {\displaystyle EI} . Moreover, as κ ( s ) = d θ / d s {\displaystyle \kappa (s)=d\theta /ds} , elasticity of rods can be given a simple variational form.