mirror of
https://github.com/excalidraw/excalidraw.git
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e957c8e9ee
Co-authored-by: dwelle <5153846+dwelle@users.noreply.github.com>
149 lines
3.9 KiB
TypeScript
149 lines
3.9 KiB
TypeScript
import type { GlobalPoint, LocalPoint, Vector } from "./types";
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/**
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* Create a vector from the x and y coordiante elements.
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*
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* @param x The X aspect of the vector
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* @param y T Y aspect of the vector
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* @returns The constructed vector with X and Y as the coordinates
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*/
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export function vector(
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x: number,
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y: number,
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originX: number = 0,
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originY: number = 0,
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): Vector {
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return [x - originX, y - originY] as Vector;
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}
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/**
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* Turn a point into a vector with the origin point.
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*
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* @param p The point to turn into a vector
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* @param origin The origin point in a given coordiante system
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* @returns The created vector from the point and the origin
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*/
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export function vectorFromPoint<Point extends GlobalPoint | LocalPoint>(
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p: Point,
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origin: Point = [0, 0] as Point,
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): Vector {
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return vector(p[0] - origin[0], p[1] - origin[1]);
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}
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/**
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* Cross product is a binary operation on two vectors in 2D space.
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* It results in a vector that is perpendicular to both vectors.
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*
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* @param a One of the vectors to use for the directed area calculation
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* @param b The other vector to use for the directed area calculation
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* @returns The directed area value for the two vectos
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*/
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export function vectorCross(a: Vector, b: Vector): number {
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return a[0] * b[1] - b[0] * a[1];
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}
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/**
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* Dot product is defined as the sum of the products of the
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* two vectors.
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*
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* @param a One of the vectors for which the sum of products is calculated
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* @param b The other vector for which the sum of products is calculated
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* @returns The sum of products of the two vectors
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*/
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export function vectorDot(a: Vector, b: Vector) {
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return a[0] * b[0] + a[1] * b[1];
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}
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/**
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* Determines if the value has the shape of a Vector.
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*
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* @param v The value to test
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* @returns TRUE if the value has the shape and components of a Vectors
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*/
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export function isVector(v: unknown): v is Vector {
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return (
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Array.isArray(v) &&
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v.length === 2 &&
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typeof v[0] === "number" &&
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!isNaN(v[0]) &&
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typeof v[1] === "number" &&
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!isNaN(v[1])
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);
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}
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/**
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* Add two vectors by adding their coordinates.
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*
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* @param a One of the vectors to add
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* @param b The other vector to add
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* @returns The sum vector of the two provided vectors
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*/
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export function vectorAdd(a: Readonly<Vector>, b: Readonly<Vector>): Vector {
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return [a[0] + b[0], a[1] + b[1]] as Vector;
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}
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/**
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* Add two vectors by adding their coordinates.
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*
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* @param start One of the vectors to add
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* @param end The other vector to add
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* @returns The sum vector of the two provided vectors
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*/
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export function vectorSubtract(
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start: Readonly<Vector>,
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end: Readonly<Vector>,
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): Vector {
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return [start[0] - end[0], start[1] - end[1]] as Vector;
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}
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/**
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* Scale vector by a scalar.
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*
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* @param v The vector to scale
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* @param scalar The scalar to multiply the vector components with
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* @returns The new scaled vector
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*/
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export function vectorScale(v: Vector, scalar: number): Vector {
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return vector(v[0] * scalar, v[1] * scalar);
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}
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/**
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* Calculates the sqare magnitude of a vector. Use this if you compare
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* magnitudes as it saves you an SQRT.
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*
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* @param v The vector to measure
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* @returns The scalar squared magnitude of the vector
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*/
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export function vectorMagnitudeSq(v: Vector) {
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return v[0] * v[0] + v[1] * v[1];
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}
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/**
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* Calculates the magnitude of a vector.
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*
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* @param v The vector to measure
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* @returns The scalar magnitude of the vector
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*/
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export function vectorMagnitude(v: Vector) {
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return Math.sqrt(vectorMagnitudeSq(v));
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}
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/**
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* Normalize the vector (i.e. make the vector magnitue equal 1).
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*
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* @param v The vector to normalize
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* @returns The new normalized vector
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*/
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export const vectorNormalize = (v: Vector): Vector => {
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const m = vectorMagnitude(v);
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return vector(v[0] / m, v[1] / m);
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};
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/**
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* Project the first vector onto the second vector
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*/
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export const vectorProjection = (a: Vector, b: Vector) => {
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return vectorScale(b, vectorDot(a, b) / vectorDot(b, b));
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};
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