Chapter 11: Text

11.1. Introduction

Text that is to be rendered as part of an SVG document fragment is specified using the text element. The text within a text element can be rendered:

The section Text layout gives an introduction to text layout. It is followed by sections covering content areas and the algorithm for laying out text within a content area. The specialized layout rules corresponding to text that is pre-formatted, auto-wrapped, and on a path are then addressed in individual sections.

Rules for text layout in SVG 1.1 are mostly defined within the SVG 1.1 specification. The rules mirror to a large extent those found in CSS. In SVG 2, the dependence on CSS is more explicit. In practice the resulting layout is the same. The change to directly relying on CSS specifications simplifies the SVG specification while making it more obvious that rendering agents can use the same code to render both text in HTML and in SVG. In particular, SVG 2 auto-wrapped text is based on CSS text layout.

SVG's text elements are rendered like other graphics elements. Thus, coordinate system transformations, painting, clipping and masking features apply to text elements in the same way as they apply to shapes such as paths and rectangles.

SVG text supports advanced typographic features including:

SVG text supports international text processing needs such as:

Multi-language SVG content is possible by substituting different text strings based on the user's preferred language.

The characters to be drawn are expressed as character data ([xml], section 2.4) inside the text element. As a result:

For accessibility reasons, it is recommended that text that is included in a document have appropriate semantic markup to indicate its function. For example, a text element that provides a visible label for part of a diagram should have an id that is referenced by an aria-labelledby attribute on the relevant group or path element. See SVG accessibility guidelines for more information.

11.1.1. Definitions

character
A character is an atomic unit of text as defined in XML [XML].

Essentially, a Unicode code point. A character may be a control instruction (such as a tab, carriage return, or line feed), a renderable mark (letter, digit, punctuation or other symbol), or a modifier (such as a combining accent).

addressable character
A character that is addressable by text positioning attributes and SVG DOM text methods. Characters discarded during layout such as collapsed white space characters are not addressable, neither are characters within an element with a value of none for the display property. Addressable characters are addressed by their index. Indexes are determined prior to applying any text-transform conversions, as described for the methods in the SVGTextContentElement interface. There are two methods to map an index to a character; the choice of which to use depends on purpose:
  1. For the purposes of mapping text positioning attributes, the index is measured in Unicode code points (thus a 'u' followed by the combining diaeresis ' ̈' is counted as two characters while the precomposed character 'ü' is counted as one character).
  2. For the purposes of SVG DOM text methods, the index is measured in UTF-16 code units (thus, a single Unicode code point above U+FFFF will map to two addressable characters as a UTF-16 code unit consists of 16 bits).

The different methods are backwards compatible with SVG 1.1. The use of UTF-16 code units for SVG DOM text methods is required from the definition of DOMString in the DOM 2 specification.

The SVG working group is interested in implementer feedback on the possibility of using grapheme clusters as defined by the Unicode Standard Annex #29 to replace Unicode code points in mapping text positioning attributes. Note, the use of the CSS typographic character is not appropriate as what constitutes a character can depend on context (line-breaking, word-breaking, etc.).

If support for CSS generated-content text is introduced in the future, it would be included in the array of addressable characters.

typographic character
A unit of a writing system— such as a Latin alphabetic letter (including its diacritics), Hangul syllable, Chinese ideographic character, Myanmar syllable cluster— that is indivisible with respect to a particular typographic operation (line-breaking, first-letter effects, tracking, justification, vertical arrangement, etc.). For the normative definition and the relationship between this and a Unicode grapheme cluster, see CSS Text Module Level 3, ([css-text-3]).
font
A font represents an organized collection of glyphs in which the various glyph representations will share a particular appearance or styling.
glyph
A glyph represents a unit of rendered content within a font. Often, there is a one-to-one correspondence between characters to be drawn and corresponding glyphs (e.g., usually the character "A" is rendered using a single glyph), but other times multiple glyphs are used to render a single character (e.g., characters with accents) or a single glyph can be used to render multiple characters (e.g., ligatures). Typically, a glyph is defined by one or more shapes such as a path, possibly with additional information such as rendering hints that help a font engine to produce legible text in small sizes.
text content element
A text content element is an SVG element that causes a text string to be rendered onto the canvas. The SVG text content elements are: text, textPath and tspan.
text content child element
A text content child element is a text content element that is allowed as a descendant of another text content element. In SVG the text content child elements are: textPath and tspan.
text content block element
A text content block element is a text content element that serves as a standalone element for a unit of text, and which may optionally contain certain child text content elements (e.g. ‘tspan’). SVG 2 defines a single text content block element: text.
content area
The area in which the text is laid out. This is equivalent to the CSS content area.
wrapping area
The area in which the text is laid out. This is the same as the content area.
line box
The rectangular area containing all the content used to layout a single line of text. This is the same as the CSS line box.

Although various CSS 3 text layout specs use the term, none current establish a formal definition. The link is therefore to CSS 2.1, and an issue has been filed with CSS WG.

inline-base direction
The primary direction in which content is ordered within a line or part of a line of text. It defines the start and end sides of a line or part of a line of text (relevant, for example to how the text-anchor property is applied). It is determined by the direction property. (Note: the ordering of characters in a line of text is primary controlled by the Unicode bidi algorithm and not the inline-base direction.)
block-flow direction
The direction in which line boxes are stacked. It is determined by the writing-mode property.
alignment point
The point on a typographic character that should be aligned with the current text position. It is determined by the glyph cell metrics and may depend on the script and inline-base direction.
current text position
The point in the current user space where the alignment point of the next typographic character to be rendered should be placed.
text chunk
An independent block of text in which all characters are positioned together. Each new absolute positioning adjustment (due to an x or y attribute, or forced line break) creates a new text chunk. Ligature substitution and bidi-reordering only occur within a text chunk. Text chunks are only relevant to pre-formatted text.
white space characters
The following characters are considered white space characters: U+0009 CHARACTER TABULATION, U+000C FORM FEED (FF), U+000D CARRIAGE RETURN (CR), U+000A LINE FEED (LF) and U+0020 SPACE.

11.1.2. Fonts and glyphs

A font consists of a collection of glyphs together with other information (collectively, the font tables) necessary to use those glyphs to present characters on some visual medium. The combination of the collection of glyphs and the font tables is called the font data.

A font may supply substitution and positioning tables that can be used by a formatter (text shaper) to re-order, combine and position a sequence of glyphs to form one or more composite glyphs. The combining may be as simple as a ligature, or as complex as an indic syllable which combines, usually with some re-ordering, multiple consonants and vowel glyphs. The tables may be language dependent, allowing the use of language appropriate letter forms.

When a glyph, simple or composite, represents an indivisible unit for typesetting purposes, it is know as a typographic character.

Ligatures are an important feature of advance text layout. Some ligatures are discretionary while others (e.g. in Arabic) are required. The following explicit rules apply to ligature formation:

SVG 2 Requirement: Include explicit support for Web Open Font Format (WOFF).
Resolution: We will mandate WOFF support in SVG 2.
Purpose: To allow access to full OpenType features for internationalization and advanced typography.
Owner: Chris (no action)
Status: Done

Proper text rendering may depend on using the same font as used during authoring. For this reason SVG requires support for downloadable fonts as defined in the Font Resources section of the CSS Fonts Module. In particular, support for the Web Open Font Format [WOFF] is required.

New in SVG 2, WOFF allows authors to provide the fonts needed to properly render their content. This includes ensuring that the fonts have the proper OpenType tables to support complex scripts, discretionary ligatures, swashes, old-style numbers, and so on. WOFF also allows the fonts to be compressed, subsetted, and include licensing information.

11.1.3. Glyph metrics and layout

Glyph selection and positioning is normally handled according to the rules of CSS. In some cases, however, the final layout of text in SVG requires knowledge of the geometry properties of individual glyphs.

The geometric font characteristics are expressed in a coordinate system based on the EM box. (The EM is a relative measure of the height of the glyphs in the font.) The box 1 EM high and 1 EM wide is called the design space. This space is given a geometric coordinates by sub-dividing the EM into a number of units per em.

Units per em is a font characteristic. A typical value for units per em is 1000 or 2048.

The coordinate space of the EM box is called the design space coordinate system. For scalable fonts, the curves and lines that are used to draw a glyph are represented using this coordinate system.

Most often, the (0,0) point in this coordinate system is positioned on the left edge of the EM box, but not at the bottom left corner. The Y coordinate of the bottom of a roman capital letter is usually zero. The descenders on lowercase roman letters have negative coordinate values.

An 'M' inside an EM box showing the coordinate system, baseline,
	      ascent and descent.

An 'M' inside an Em box (blue square). The 'M' sits on the baseline (blue line). The origin of the coordinate system is shown by the small black circle.

SVG assumes that the font tables will provide at least three font characteristics: an ascent, a descent and a set of baseline-tables. The ascent is the distance to the top of the EM box from the (0,0) point of the font; the descent is the distance to the bottom of the EM box from the (0.0) point of the font. The baseline-table is explained below.

Within an OpenType font ([OPENTYPE]), for horizontal writing-modes, the ascent and descent are given by the sTypoAscender and sTypoDescender entries in the OS/2 table. For vertical writing-modes, the descent (the distance, in this case from the (0,0) point to the left edge of the glyph) is normally zero because the (0,0) point is on the left edge. The ascent for vertical writing-modes is either 1 em or is specified by the ideographic top baseline value in the OpenType Base table for vertical writing-modes.

Glyphs are positioned relative to a particular point on each glyph known as the alignment point. For horizontal writing-modes, the glyphs' alignment points are vertically aligned while for vertical writing-modes, they are horizontally aligned. The position of the alignment point depends on the script. For example, Western glyphs are aligned at the bottom of capital letters, northern Indic glyphs are aligned at the top of a horizontal stroke near the top of the glyphs, and far-eastern glyphs are aligned either at the bottom or center of the glyph.

Within a script and within a line of text having a single font-size, the sequence of alignment points defines, in the inline-base direction, a geometric line called a baseline. Western and most other alphabetic and syllabic glyphs are aligned to an "alphabetic" baseline, the northern Indic glyphs are aligned to a "hanging" baseline and the far-eastern glyphs are aligned to an "ideographic" baseline.

Baseline example in three different scripts.

Example baselines (red lines) in three different scripts. From left to right: alphabetic, hanging, ideographic. The EM box is shown in blue for the ideographic script.

As glyphs are sequentially placed along a baseline, the alignment point of a glyph is typically positioned at the current text position (some properties such as vertical-align may alter the positioning). After each glyph is placed, the current text position is advanced by the glyph's advance value (typically the width for horizontal text or height for vertical text) with any correction for kerning or other spacing adjustment as well as for new lines in pre-formatted or auto-wrapped text. The initial and final current text positions are used for alignment (e.g. when the text-anchor value is either 'middle' or 'end'). The glyph's advance is needed when placing text along a path.

Baseline example in three different scripts.

Example of font metrics. The blue boxes show the geometric boxes for the three glyphs. The labeled small circles show the current text position before glyph placement. The small square shows the final current text position after placing the last glyph. Note that the left side of the 'a' glyph's box is not aligned with the right side of the 'V' glyph's box due to kerning.

If a glyph does not provide explicit advance values corresponding to the current glyph orientation, then an appropriate approximation should be used. For vertical text, a suggested approximation is the em size.

The initial current text position is established by the x and y attributes on the text element or first rendered tspan element for pre-formatted text, or auto-wrapped text when the content area is determined by the inline-size property. For other auto-wrapped text, the initial current text position is determined by the position of the first rendered glyph after applying the CSS line wrapping algorithm.

A baseline-table specifies the position of one or more baselines in the design space coordinate system. The function of the baseline table is to facilitate the alignment of different scripts with respect to each other when they are mixed on the same text line. Because the desired relative alignments may depend on which script is dominant in a line (or block), there may be a different baseline table for each script. In addition, different alignment positions are needed for horizontal and vertical writing modes. Therefore, the font may have a set of baseline tables: typically, one or more for horizontal writing-modes and zero or more for vertical writing-modes.

Some fonts may not have values for the baseline tables. Heuristics are suggested for approximating the baseline tables in CSS Inline Layout Module Level 3 [css-inline-3] when a given font does not supply baseline tables.

When a different font (or change in font size) is specified in the middle of a run of text, the dominant baseline determines the baseline used to align glyphs in the new font (new size) to those in the previous font. The dominant-baseline property is used to set the dominant baseline.

Alignment between an object relative to its parent is determined by the alignment baseline. It is normally the same baseline as the dominant baseline but by using the shorthand vertical-align property (preferred) or the longhand alignment-baseline another baseline can be chosen.

The dominant baseline can be temporarily shifted (as needed for superscripts or subscripts) by using either the shorthand vertical-align property (preferred) or the longhand baseline-shift property. Note that shifts can be nested, each shift added to the previous shift.

Examples of using the 'vertical-align' property. Left shows '[[z]]' where the inner brackets are smaller. Right shows 'x2' where the '2' is a superscript.

Examples of using the 'vertical-align' property. Left: 'vertical-align:mathematical' ('alignment-baseline:mathematical') is applied to the tspan containing '[z]'. The light-blue line shows the position of the mathematical baseline. Right: 'vertical-align:super' ('baseline-shift:super') applied to the tspan containing '2'. The light-blue lines indicate the shift in baseline.

SVG further assumes that for each glyph in the font data for a font, there are two width values, two alignment-baselines and two alignment points, one each for horizontal writing-modes and the other for vertical writing-modes. (Even though it is specified as a width, for vertical writing-modes the width is used in the vertical direction.) The inline-base direction position of the alignment point is on the start-edge of the glyph.

Additional information on baselines can be found in the CSS Inline Layout Module Level 3 specification. [css-inline-3] (Also see: CSS Writing Modes Level 3 specification. [css-writing-modes-3])

SVG 2 Requirement: Support text aligned to different baselines.
Resolution: SVG 2 will support glyphs being aligned to different baselines, perhaps by using existing or improved CSS properties.
Purpose: To allow glyphs in horizontal text to have different vertical alignments for stylistic effects.
Owner: Chris (no action)
Status: Done

A single line of text is laid out inside a line box. Multi-line text is produced by stacking these boxes. The height of a line box is determined by finding the maximum ascent and the maximum descent of all the glyphs in a line of text after applying the effect of the line-height property. The width of a line box is normally the width of the containing text block. In SVG, when the containing text block does not have a fixed geometry (as with pre-formatted text), the line box tightly wraps the glyph boxes within the box.

The sentence 'A big word.' where 'big' is in a larger font.

Example of determining the height of a line box. First each glyph box (small light-blue boxes) is extended vertically above and below according to the line-height property. In this case the line-height property is 125%. The larger glyphs have a font-size of 96px so their extra height is 24px (25% of 96px). The extra height is evenly divided above and below resulting in the red boxes. (For clarity, all glyphs in the same inline element have been grouped together). The final line box (large light-blue box) is then found using the maximum extents of the red boxes above and below the baseline.

In order to support various international writing systems, line boxes may be orientated in a horizontal or vertical direction. Text within a vertical line box flows from top to bottom. Text within a horizontal line box may flow left-to-right (e.g., modern Latin scripts), right-to-left (e.g., Hebrew or Arabic), or a mixture of left-to-right and right-to-left (bidirectional text).

The processing model for bidirectional text is as follows:

While kerning or ligature processing might be font-specific, the preferred model is that kerning and ligature processing occurs between combinations of characters or glyphs after the characters have been re-ordered.

The orientation of line boxes as well as the direction in which they are stacked (block-flow direction) is determined by the writing-mode property. For horizontal text (writing-mode value horizontal-tb) line boxes are stacked from top to bottom. For vertical text, line boxes are stacked from right-to-left (writing-mode value vertical-rl) or left-to-right (writing-mode value vertical-lr).

11.2. The ‘text’ and ‘tspan’ elements

The text element defines a graphics element consisting of text. The tspan element within a text or another tspan element, allows one to switch the style and/or adjust the position of the rendered text inside the tspan element relative to the parent element.

The character data within the text and tspan elements, along with relevant attributes and properties, and character-to-glyph mapping tables within the font itself, define the glyphs to be rendered. The attributes and properties on the text and tspan elements indicate such things as the writing direction, font specification, and painting attributes which describe how exactly to render the characters. Subsequent sections of this chapter describe the relevant text-specific attributes and properties.

Since text and tspan elements are rendered using the same rendering methods as other graphics elements, all of the same painting features that apply to shapes such as paths and rectangles also apply to text and tspan elements, except for markers. In addition, coordinate system transformations, clipping, and masking can be applied to the text element as a whole.

In CSS terms, the text element acts as a block element. The tspan, textPath, and a elements that are descended from text content elements act as inline elements.

It is possible to apply a gradient, pattern, clipping path, mask or filter to text. When one of these facilities is applied to text and keyword 'objectBoundingBox' is used (see Object bounding box units) to specify a graphical effect relative to the "object bounding box", then the object bounding box units are computed relative to the entire text element in all cases, even when different effects are applied to different tspan or textPath elements within the same text element.

The text element renders its first glyph (after bidirectionality reordering) at the initial current text position (with possible adjustments due to the value of the text-anchor property or the text-align property). For pre-formatted text and for auto-wrapped text where the content area is determined by the inline-size property, the initial current text position is determined by the x and y values of the text or tspan element which contains the first rendered character. For auto-wrapped text in a shape or text on a path see the Auto-wrapped text or Text on a path sections, respectively, to determine the initial current text position. After the glyph(s) corresponding to the given character is (are) rendered, the current text position is updated for the next character. In the simplest case, the new current text position is the previous current text position plus the glyphs' advance value (horizontal or vertical). See text layout for a description of glyph placement and glyph advance.

The text string Hello, out there! is rendered onto the canvas using the Verdana font family with the glyphs filled with the color blue.

<?xml version="1.0" standalone="no"?>
<svg width="10cm" height="3cm" viewBox="0 0 1000 300"
     xmlns="http://www.w3.org/2000/svg" version="1.1">

  <text x="250" y="180"
        font-family="Verdana" font-size="64" fill="blue" >
    Hello, out there!
  </text>

</svg>
Image showing the blue text.

A tspan is used to change the styling of the word not.

<?xml version="1.0" standalone="no"?>
<svg width="10cm" height="3cm" viewBox="0 0 1000 300"
     xmlns="http://www.w3.org/2000/svg" version="1.1">

  <g font-family="Verdana" font-size="64" >
    <text x="160" y="180" fill="blue" >
      You are
      <tspan font-weight="bold" fill="red" >not</tspan>
      a banana.
    </text>
  </g>

</svg>
Blue text except the word 'not' is red.

Two tspan elements are repositioned horizontally and vertically using the x and y attributes. Because all the text is within a single text element, a user will be able to select through all the text and copy it to the system clipboard in user agents that support text selection and clipboard operations.

<?xml version="1.0" standalone="no"?>
<svg width="10cm" height="3cm" viewBox="0 0 1000 300"
     xmlns="http://www.w3.org/2000/svg" version="1.1">

  <g font-family="Verdana" font-size="64" >
    <text x="100" y="180" fill="blue" >
      But you
      <tspan dx="2em" dy="-50" font-weight="bold" fill="red" >
        are
      </tspan>
      <tspan dy="100">
        a peach!
      </tspan>
    </text>
  </g>

</svg>
A sentence with several shifted words.
text
Categories:
Graphics element, renderable element, text content element
Content model:
Any number of the following elements or character data, in any order:a, clipPath, marker, mask, script, style
Attributes:
DOM Interfaces:
SVG 2 Requirement: Allow transforms on tspan.
Resolution: SVG 2 will allow transforms on ‘tspan’.
Purpose: Align with other elements such as a which already allow transforms.
Owner: Cameron (no action)
Status: Done

This decision was reversed. See GitHub Issue 210. CSS/HTML does not allow transforms on inline elements and no renderer supports transforms on the a element when inline (in both SVG and HTML).

tspan
Categories:
Graphics element, renderable element, text content element, text content child element
Content model:
Any number of the following elements or character data, in any order:a, animate, script, set, style, tspan
Attributes:
DOM Interfaces:

11.2.1. Attributes

Name Value Initial value Animatable
x, y [ [ <length-percentage> | <number> ]+ ]# 0 for text;
(none) for tspan
yes

If a single <length> is provided, then the value represents the new absolute X (Y) coordinate for the current text position for rendering the glyphs that correspond to the first character within this element or any of its descendants.

If a comma- or space-separated list of n <length>s is provided, then the values represent new absolute X (Y) coordinates for the current text position for rendering the glyphs corresponding to each of the first n addressable characters within this element or any of its descendants.

If more <length>s are provided than characters, then the extra <length>s will have no effect on glyph positioning.

If more characters exist than <length>s, or if the attribute is not specified on a tspan, then for each additional character:

  1. if an ancestor text or tspan element specifies an absolute X (Y) coordinate for the given character via an ‘x’ (‘y’) attribute (nearest ancestor has precedence), then that absolute X (Y) coordinate is used as the starting X (Y) coordinate for that character, else
  2. the starting X (Y) coordinate for rendering the glyphs corresponding to the given character is the X (Y) coordinate of the resulting current text position from the most recently rendered glyph for the current text element.

In SVG 2, the text and tspan x and y attributes are not presentation attributes and cannot be set via CSS. This may change in a future version of SVG.

Name Value Initial value Animatable
dx, dy [ [ <length-percentage> | <number> ]+ ]# (none) yes

If a single <length> is provided, this value represents the new relative X (Y) coordinate for the current text position for rendering the glyphs corresponding to the first character within this element or any of its descendants. The current text position is shifted along the x-axis (y-axis) of the current user coordinate system by <length> before the first character's glyphs are rendered.

If a comma- or space-separated list of n <length>s is provided, then the values represent incremental shifts along the x-axis (y-axis) for the current text position before rendering the glyphs corresponding to the first n addressable characters within this element or any of its descendants. Thus, before the glyphs are rendered corresponding to each character, the current text position resulting from drawing the glyphs for the previous character within the current text element is shifted along the x-axis (y-axis) of the current user coordinate system by <length>.

If more <length>s are provided than characters, then any extra <length>s will have no effect on glyph positioning.

If more characters exist than <length>s, or if the attribute is not specified, then for each additional character:

  1. if an ancestor text or tspan element specifies a relative X (Y) coordinate for the given character via a ‘dx’ (‘dy’) attribute (nearest ancestor has precedence), then the current text position is shifted along the x-axis (y-axis) of the current user coordinate system by that amount, else
  2. no extra shift along the x-axis (y-axis) occurs.
Name Value Initial value Animatable
rotate [ <number>+ ]# (none) yes (non-additive).

The supplemental rotation, in degrees, about the current text position that will be applied to all of the glyphs corresponding to each character within this element.

If a comma- or space-separated list of <number>s is provided, then the first <number> represents the supplemental rotation for the glyphs corresponding to the first character within this element or any of its descendants, the second <number> represents the supplemental rotation for the glyphs that correspond to the second character, and so on.

If more <number>s are provided than there are characters, then the extra <number>s will be ignored.

If more characters are provided than <number>s, then for each of these extra characters the rotation value specified by the last number must be used.

If the attribute is not specified and if an ancestor of a tspan element specifies a supplemental rotation for a given character via a rotate attribute (nearest ancestor has precedence), then the given supplemental rotation is applied to the given character. If there are more characters than <number>s specified in the ancestor's rotate attribute, then for each of these extra characters the rotation value specified by the last number must be used.

This supplemental rotation has no impact on the rules by which current text position is modified as glyphs get rendered and is supplemental to any rotation due to text on a path and to text-orientation, glyph-orientation-horizontal, or glyph-orientation-vertical.

Name Value Initial value Animatable
textLength <length-percentage> | <number> See below yes

The author's computation of the total sum of all of the advance values that correspond to character data within this element, including the advance value on the glyph (horizontal or vertical), the effect of properties letter-spacing and word-spacing and adjustments due to attributes dx and dy on this text or tspan element or any descendants. This value is used to calibrate the user agent's own calculations with that of the author.

The purpose of this attribute is to allow the author to achieve exact alignment, in visual rendering order after any bidirectional reordering, for the first and last rendered glyphs that correspond to this element; thus, for the last rendered character (in visual rendering order after any bidirectional reordering), any supplemental inter-character spacing beyond normal glyph advances are ignored (in most cases) when the user agent determines the appropriate amount to expand/compress the text string to fit within a length of textLength.

If attribute textLength is specified on a given element and also specified on an ancestor, the adjustments on all character data within this element are controlled by the value of textLength on this element exclusively, with the possible side-effect that the adjustment ratio for the contents of this element might be different than the adjustment ratio used for other content that shares the same ancestor. The user agent must assume that the total advance values for the other content within that ancestor is the difference between the advance value on that ancestor and the advance value for this element.

This attribute is not intended for use to obtain effects such as shrinking or expanding text.

A negative value is an error (see Error processing).

The textLength attribute is only applied when the wrapping area is not defined by the inline-size property. It is also not applied for any text or tspan element that has forced line breaks (due to a white-space value of pre or pre-line).

If the attribute is not specified anywhere within a text element, the effect is as if the author's computation exactly matched the value calculated by the user agent; thus, no advance adjustments are made. For the purpose of reflecting the attribute in the DOM, the initial value is the current user-agent calculated length, expressed in implicit user units.

Name Value Initial value Animatable
lengthAdjust spacing | spacingAndGlyphs spacing yes
spacing
Indicates that only the advance values are adjusted. The glyphs themselves are not stretched or compressed.
spacingAndGlyphs
Indicates that the advance values are adjusted and the glyphs themselves stretched or compressed in one axis (i.e., a direction parallel to the inline-base direction).

The user agent is required to achieve correct start and end positions for the text strings, but the locations of intermediate glyphs are not predictable because user agents might employ advanced algorithms to stretch or compress text strings in order to balance correct start and end positioning with optimal typography.

Note that, for a text string that contains n characters, the adjustments to the advance values often occur only for n−1 characters (see description of attribute textLength), whereas stretching or compressing of the glyphs will be applied to all n characters.

11.2.2. Notes on 'x', 'y', 'dx', 'dy' and 'rotate'

The x, y, dx, dy, and rotate on the text and tspan elements are useful in high-end typography scenarios where individual glyphs require exact placement. These attributes are useful for minor positioning adjustments between characters or for major positioning adjustments, such as moving a section of text to a new location to achieve the visual effect of a new line of text (compatible with SVG 1.1). Note that the x, y, dx, dy, and rotate attributes are ignored for auto-wrapped text (except for the initial current text position when the content area is specified by the inline-size property).

It was decided at the 2015 Sydney F2F that 'dx', 'dy', and 'rotate' would be ignored for auto-wrapped text. (Technically, it is not difficult to apply them but it was not seen as being really useful.)

In situations where micro-level positioning adjustment are necessary for advanced typographic control, the SVG content designer needs to ensure that the necessary font will be available for all viewers of the document (e.g., package up the necessary font data in the form of an SVG font or an alternative WebFont format which is stored at the same Web site as the SVG content) and that the viewing software will process the font in the expected way (the capabilities, characteristics and font layout mechanisms vary greatly from system to system). If the SVG content contains x, y, dx, or dy attribute values which are meant to correspond to a particular font processed by a particular set of viewing software and either of these requirements is not met, then the text might display with poor quality.

The following additional rules apply to attributes x, y, dx, dy, and rotate when they contain a list of numbers:

Example tspan04 uses the rotate attribute on the tspan element to rotate the glyphs to be rendered. This example shows a single text string in a tspan element that contains more characters than the number of values specified in the rotate attribute. In this case the last value specified in the rotate attribute of the tspan must be applied to the remaining characters in the string.

<?xml version="1.0" standalone="no"?>
<svg width="10cm" height="3cm" viewBox="0 0 1000 300"
  xmlns="http://www.w3.org/2000/svg" version="1.1">
  <desc>
    Example tspan04 - The number of rotate values is less than the number of
    characters in the string.
  </desc>
  <text font-family="Verdana" font-size="55" fill="blue" >
    <tspan x="250" y="150" rotate="-30,0,30">
      Hello, out there
    </tspan>
  </text>
  <!-- Show outline of viewport using 'rect' element -->
  <rect x="1" y="1" width="998" height="298"
  fill="none" stroke="blue" stroke-width="2" />
</svg>
Example tspan04 — simple rotation of characters in a tspan element

Example tspan04

View this example as SVG (SVG-enabled browsers only)

Example tspan05 specifies the rotate attribute on the text element and on all but one of the child tspan elements to rotate the glyphs to be rendered. The example demonstrates the propagation of the rotate attribute.

<?xml version="1.0" standalone="no"?>
<svg width="100%" height="100%" viewBox="0 0 500 120"
  xmlns="http://www.w3.org/2000/svg" version="1.1">
  <desc>
    Example tspan05 - propagation of rotation values to nested tspan elements.
  </desc>
  <text id="parent" font-family="Arial, sans-serif" font-size="32" fill="red" x="40" y="40"
    rotate="5,15,25,35,45,55">
    Not

    <tspan id="child1" rotate="-10,-20,-30,-40" fill="orange">
      all characters

      <tspan id="child2" rotate="70,60,50,40,30,20,10" fill="yellow">
        in
        
        <tspan id="child3">
          the
        </tspan>
      </tspan>

      <tspan id="child4" fill="orange" x="40" y="90">
        text
      </tspan>

      have a
    </tspan>

    <tspan id="child5" rotate="-10" fill="blue">
      specified
    </tspan>

    rotation
  </text>

  <!-- Show outline of viewport using 'rect' element -->
  <rect x="1" y="1" width="498" height="118" fill="none"
        stroke="blue" stroke-width="2" />
</svg>
Example tspan05 — propagation of rotation values to nested tspan elements

Example tspan05

View this example as SVG (SVG-enabled browsers only)

Rotation of red text inside the text element:

Rotation of the orange text inside the "child1" tspan element:

Rotation of the yellow text inside the "child2" tspan element:

Rotation of the blue text inside the "child5" tspan element:

The following diagram illustrates how the rotation values propagate to tspan elements nested withing a text element:

Image that shows propagation of rotation values

11.3. Text layout – Introduction

SVG 2 Requirement: Include text layout improvements from SVG Tiny 1.2.
Resolution: SVG 2 will include the improved text from SVG Tiny 1.2 on characters and glyphs, text layout, text selection, text search.
Purpose: To include clearer descriptions of text layout; no functional change.
Owner: Chris (ACTION-3236)
SVG 2 Requirement: Support text in shapes.
Resolution: SVG 2 will require automatic text wrapping compatible with CSS.
Purpose: Text in flow charts, etc.
Owner: Tav (no action)

This section gives a short overview of SVG text layout. It is followed by sections that cover different aspects of text layout in more detail.

Text layout in SVG is a multi-stage process that takes as input a text element subtree and its property values and produces a sequence of glyphs to render and their positions in each text content element's coordinate system.

First, a text element and its descendants are laid out inside a content area or wrapping area according to CSS, as if the text were a block element and any tspan, textPath, and a descendants were inline elements. This layout takes into account all paragraph level and font related CSS properties described in this chapter.

The content area may be explicitly declared by setting the inline-size property. If a content area is not declared, it defaults to a rectangle of infinite width and height.

Second, any positioning given by x, y, dx and dy attributes are applied to the resulting glyph positions from the CSS layout process. The rules for which transforms are allowed depend on if the content area was explicitly declared or not. If not explicitly declared, the rules define the layout of pre-formatted text. If declared, the rules define the layout of auto-wrapped text.

Third, the effect of the text-anchor property is applied if necessary.

Finally, layout of glyphs for any textPath elements is performed, converting pre-formatted text to text-on-a-path.

Examples of the different types of text layout:

Pre-formatted:
For short strings of text (e.g. labels) or where exact placement of glyphs is required (e.g. hand-kerned titles).

An example of multi-line pre-formatted text.

<svg xmlns="http://www.w3.org/2000/svg"
     width="300" height="100" viewBox="0 0 300 100">

     <text x="20" y="45" style="font: 24px sans-serif;">
       Example of multi-line,
       <tspan x="20" y="75">pre-formatted text.</tspan>
     </text>

</svg>
Image showing two lines of pre-formatted text.

Pre-formatted text where a tspan element has been used to create multi-line text.

Wrapped text:
For long strings of text where automatic text wrapping is required.

An example of auto-wrapped text.

<svg xmlns="http://www.w3.org/2000/svg"
     width="300" height="100" viewBox="0 0 300 100">

  <text x="20" y="45" style="font: 24px sans-serif; inline-size: 250px;">
    Example of text auto-wrapped.</text>

</svg>
Image showing auto-wrapped text on two lines.

Auto-wrapped text. The inline-size property defines a rectangular content area of infinite height (shown in light blue).

Text on path:
For text that follows a specified path.

An example of text on a path.

<svg xmlns="http://www.w3.org/2000/svg"
     width="300" height="100" viewBox="0 0 300 100">

  <path id="MyPath" stroke="light