grid-apps-cmms/src/kiri/widget.js

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/** Copyright Stewart Allen <sa@grid.space> -- All Rights Reserved */
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"use strict";
// dep: geo.base
// dep: geo.mesh
// dep: geo.point
// dep: geo.points
// dep: geo.polygons
// dep: kiri.utils
// use: kiri.codec
// use: mesh.util
gapp.register("kiri.widget", [], (root, exports) => {
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const { base, kiri } = root;
const { api, driver, utils } = kiri;
const { util, polygons } = base;
const { Mesh, newPoint, verticesToPoints } = base;
const { inRange, time } = util;
const { avgc } = utils;
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const solid_opacity = 1.0;
const groups = [];
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let nextId = 0;
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function newWidget(id,group) { return new Widget(id,group) }
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function catalog() { return kiri.catalog }
function index() { return catalog().index }
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class Widget {
constructor(id, group) {
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this.id = id || new Date().getTime().toString(36)+(nextId++);
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this.grouped = group ? true : false;
this.group = group || [];
this.group.push(this);
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if (!this.group.id) {
this.group.id = this.id;
}
if (groups.indexOf(this.group) < 0) {
groups.push(this.group);
}
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// rotation stack (for undo)
this.roto = [];
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// added meshes (supports, tabs, etc)
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this.adds = [];
// persisted client annotations (cam tabs, fdm supports)
this.anno = {};
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// THREE Mesh and points
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this.mesh = null;
this.points = null;
// todo resolve use of this vs. mesh.bounds
this.bounds = null;
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// wireframe
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this.wire = null;
this.slices = null;
this.settings = null;
this.modified = true;
this.track = {
// box size for packer
box: {
w: 0,
h: 0,
d: 0
},
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scale: {
x: 1.0,
y: 1.0,
z: 1.0
},
rot: {
x: 0,
y: 0,
z: 0
},
pos: {
x: 0,
y: 0,
z: 0
},
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top: 0, // z top
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mirror: false
},
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this.cache = {};
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this.stats = {
slice_time: 0,
load_time: 0,
progress: 0
};
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this.meta = {
url: null,
file: null,
saved: false
};
// if this is a synthesized support widget
this.support = false;
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}
saveToCatalog(filename) {
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if (this.grouped) {
return this;
}
const widget = this;
const mark = time();
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widget.meta.file = filename;
widget.meta.save = mark;
catalog().putFile(filename, this.getGeoVertices(true), vertices => {
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if (vertices && vertices.length) {
console.log("saving decimated mesh ["+vertices.length+"] time ["+(time()-mark)+"]");
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widget.loadVertices(vertices);
}
});
return this;
}
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saveState(ondone) {
if (!ondone) {
clearTimeout(this._save_timer);
this._save_timer = setTimeout(() => {
this._save_timer = undefined;
this.saveState(() => {});
}, 1500);
return;
}
const widget = this;
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index().put('ws-save-'+this.id, {
geo: widget.getGeoVertices(false),
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track: widget.track,
group: this.group.id,
meta: this.meta,
anno: this.annotations()
}, result => {
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widget.meta.saved = time();
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if (ondone) ondone();
});
}
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annotations() {
let o = Object.clone(this.anno);
if (o.support) {
// clear out THREE.Box temps
for (let s of o.support) {
delete s.box;
}
}
return o;
}
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/**
*
* @param {Float32Array} vertices
* @returns {Widget}
*/
loadVertices(data, options = { index: false }) {
let vertices,
autoscale = false;
if (ArrayBuffer.isView(data) || typeof(data) != 'object') {
vertices = data;
} else {
vertices = data.vertices;
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throw "deprecated vertex data format";
}
// will not serialize into indexeddb -- need a performance sensitive workaround
// if (window.SharedArrayBuffer) {
// let newvert = new Float32Array(new SharedArrayBuffer(vertices.buffer.byteLength));
// newvert.set(vertices);
// vertices = newvert;
// }
switch (typeof(autoscale)) {
case 'boolean':
autoscale = options;
break;
case 'object':
autoscale = options.autoscale;
break;
}
if (!vertices) {
console.log('missing vertices', {data, options});
return;
}
if (autoscale === true) {
// onshape exports obj in meters by default :/
let maxv = 0;
for (let i=0; i<vertices.length; i++) {
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maxv = Math.max(maxv,Math.abs(vertices[i]));
}
if (maxv < 1) {
for (let i=0; i<vertices.length; i++) {
vertices[i] *= 1000;
}
}
}
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if (this.mesh) {
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let geo = this.mesh.geometry;
geo.setAttribute('position', new THREE.BufferAttribute(vertices, 3));
// geo.setAttribute('normal', undefined);
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geo.attributes.position.needsUpdate = true;
// geo.computeVertexNormals();
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this.meta.vertices = vertices.length / 3;
this.points = null;
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return this;
} else {
let geo = new THREE.BufferGeometry();
geo.setAttribute('position', new THREE.BufferAttribute(vertices, 3));
// geo.setAttribute('normal', undefined);
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this.meta.vertices = vertices.length / 3;
this.points = null;
return this.loadGeometry(geo);
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}
}
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loadData() {
return this.loadVertices(...arguments);
}
setModified() {
this.modified = true;
if (this.mesh && this.mesh.geometry) {
// this fixes ray intersections after the mesh is modified
this.mesh.geometry.boundingSphere = null;
}
}
heal(debug, refresh) {
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if (debug) {
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let mesh = this.debugMesh().heal();
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let verts = mesh.vertices;
let edges = mesh.edges;
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let split = mesh.edges.filter(l => l.split);
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let layrz = new kiri.Layers();
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layrz.setLayer("edges", {line: 0});
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for (let line of edges) {
layrz.addLine(
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newPoint(verts[line.v1], verts[line.v1+1], verts[line.v1+2]),
newPoint(verts[line.v2], verts[line.v2+1], verts[line.v2+2])
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);
}
for (let l=0; l<mesh.loops.length; l++) {
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layrz.setLayer(`loop ${l}`, {line: [ 0xff0000, 0x00ff00, 0x0000ff ][l % 3]});
let zo = [0.15, 0.3, 0.45][l % 3];
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for (let line of mesh.loops[l]) {
layrz.addLine(
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newPoint(verts[line.v1], verts[line.v1+1], verts[line.v1+2] - zo),
newPoint(verts[line.v2], verts[line.v2+1], verts[line.v2+2] - zo)
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);
}
}
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layrz.setLayer("split", {line: 0xff00ff});
for (let line of split) {
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layrz.addLine(
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newPoint(verts[line.v1], verts[line.v1+1], verts[line.v1+2] - 0.6),
newPoint(verts[line.v2], verts[line.v2+1], verts[line.v2+2] - 0.6)
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);
}
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let stack = new kiri.Stack(this.mesh);
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stack.addLayers(layrz);
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return { mesh, layrz, stack };
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}
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return new Promise((resolve, reject) => {
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kiri.client.heal(this.getVertices().array, data => {
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if (data.vertices) {
this.loadVertices(data.vertices);
this.modified = true;
} else {
this.modified = false;
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}
resolve(this.modified);
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}, refresh);
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});
}
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debugMesh(precision) {
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return new base.Mesh({precision, vertices: this.getVertices().array});
}
getVertices() {
return this.mesh.geometry.attributes.position;
}
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/**
* @param {THREE.Geometry} geometry
* @returns {Widget}
*/
loadGeometry(geometry) {
const mesh = new THREE.Mesh(
geometry, [
new THREE.MeshPhongMaterial({
side: THREE.DoubleSide,
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color: 0xffff00,
specular: 0x202020,
shininess: 120,
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transparent: true,
opacity: solid_opacity,
clipIntersection: false,
flatShading: true
}),
new THREE.MeshPhongMaterial({
side: THREE.DoubleSide,
color: 0x0088ee,
specular: 0x202020,
shininess: 100,
transparent: true,
opacity: solid_opacity,
flatShading: true
}),
]);
mesh.renderOrder = 1;
// geometry.computeVertexNormals();
geometry.addGroup(0, Infinity, 0);
// mesh.castShadow = true;
// mesh.receiveShadow = true;
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mesh.widget = this;
this.mesh = mesh;
// invalidates points cache (like any scale/rotation)
this.center(true);
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return this;
}
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groupBounds() {
return Group.bounds(this.group);
}
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/**
* @param {Point[]} points
* @returns {Widget}
*/
setPoints(points) {
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this.points = points || null;
return this;
}
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/**
* remove slice data and their views
*/
clearSlices() {
let slices = this.slices,
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mesh = this.mesh;
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if (slices && mesh && mesh.remove) {
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slices.forEach(function(slice) {
mesh.remove(slice.view);
});
}
this.slices = null;
}
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/**
* @param {number} color
*/
setColor(color, settings, save = true) {
if (settings) {
console.trace('legacy call with settings');
}
if (Array.isArray(color)) {
color = color[this.getExtruder() % color.length];
}
if (save) {
this.color = color;
}
let material = this.getMaterial();
material.color.set(this.meta.disabled ? avgc(0x888888, color, 3) : color);
}
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getColor() {
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return this.color;
}
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getMaterial() {
return this.mesh.material[0];
}
setZClip(from, to) {
let mat = this.getMaterial();
mat.clippingPlanes = (from >= 0 && to >= 0) ? [
new THREE.Plane(new THREE.Vector3(0, 1, 0), -from),
new THREE.Plane(new THREE.Vector3(0, -1, 0), to),
] : null;
moto.space.refresh();
}
isVisible() {
return this.getMaterial().visible;
}
selectFaces(faces) {
let groups = mesh.util.facesToGroups(faces || []);
let geo = this.mesh.geometry;
geo.clearGroups();
for (let group of groups) {
geo.addGroup(group.start*3, group.count*3, group.mat || 0);
}
}
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/**
* @param {number} value
*/
setOpacity(value) {
const mesh = this.mesh;
const mat = this.getMaterial();
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if (value <= 0.0) {
mat.transparent = solid_opacity < 1.0;
mat.opacity = solid_opacity;
mat.visible = false;
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} else if (inRange(value, 0.0, solid_opacity)) {
mat.transparent = value < 1.0;
mat.opacity = value;
mat.visible = true;
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}
}
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/**
* center geometry bottom (on platform) at 0,0,0
*/
center(init) {
let bb = init ? this.mesh.getBoundingBox(true) : this.groupBounds(),
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bm = bb.min.clone(),
bM = bb.max.clone(),
bd = bM.sub(bm).multiplyScalar(0.5),
dx = bm.x + bd.x,
dy = bm.y + bd.y,
dz = bm.z;
this.track.center = { dx, dy, dz };
// move mesh for each widget in group
if (!init) {
this.group.forEach(w => {
w.moveMesh(dx,dy,dz);
});
}
return this;
}
/**
* called by center() and Group.center()
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* todo use new prototype.moveMesh()
*/
moveMesh(x, y, z) {
let gap = this.mesh.geometry.attributes.position,
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pa = gap.array;
// center point array on 0,0,0
for (let i=0; i < pa.length; i += 3) {
pa[i ] -= x;
pa[i + 1] -= y;
pa[i + 2] -= z;
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}
gap.needsUpdate = true;
let bb = this.groupBounds();
// critical to layout and grouping
this.track.box = {
w: (bb.max.x - bb.min.x),
h: (bb.max.y - bb.min.y),
d: (bb.max.z - bb.min.z)
};
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// for use with the packer
// invalidate cached points
this.points = null;
this.setModified();
}
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setIndexed(z) {
this.track.indexed = z;
this.setTopZ(this.track.top);
}
setAxisIndex(deg) {
let rad = deg * (Math.PI / 180);
this.track.indexRad = rad;
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this.mesh.rotation.x = -rad;
this.setTopZ(this.track.top);
}
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/**
* moves top of widget to given Z
*
* @param {number} z position
*/
setTopZ(z) {
let mesh = this.mesh,
track = this.track,
ltop = track.top || 0,
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mbz = mesh.getBoundingBox().max.z;
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if (z) {
track.top = z;
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} else {
track.top = mbz;
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}
// difference between top of stock/bounds and top of widget (cam mode)
track.tzoff = mbz - z;
if (track.indexed) {
let rad = track.indexRad;
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let mz = track.box.d / 2;
let dx = Math.sin(rad) * mz;
let dy = mz - Math.cos(rad) * mz;
track.delta = {
x: 0,
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y: -dx,
z: -(track.indexed / 2) + dy
};
} else {
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track.delta = { x:0, y:0, z:0 };
this.mesh.rotation.x = 0;
}
this.modified |= (ltop !== z);
this._updateMeshPosition();
}
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move(x, y, z, abs) {
this.group.forEach(w => {
w._move(x, y, z, abs);
});
}
_move(x, y, z, abs) {
let mesh = this.mesh,
mat = this.getMaterial(),
pos = this.track.pos;
// do not allow moves in pure slice view
if (!mat.visible) return;
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if (abs) {
pos.x = (x || 0);
pos.y = (y || 0);
pos.z = (z || 0);
} else {
pos.x += (x || 0);
pos.y += (y || 0);
pos.z += (z || 0);
}
if (x || y || z) {
this.setModified();
this._updateMeshPosition();
// allow for use in engine / cli
if (api && api.event) {
api.event.emit('widget.move', {widget: this, pos});
}
}
}
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_updateMeshPosition() {
let mesh = this.mesh,
track = this.track,
delta = track.delta || { x:0, y:0, z:0 },
tzoff = track.tzoff,
top = track.top,
tz = tzoff !== top ? -tzoff : 0,
pos = track.pos;
mesh.position.set(pos.x + delta.x, pos.y + delta.y, pos.z + delta.z + tz);
}
scale(x, y, z) {
this.group.forEach(w => {
w._scale(x, y, z);
});
this.center();
}
_scale(x, y, z) {
let mesh = this.mesh,
scale = this.track.scale;
this.bounds = null;
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this.setWireframe(false);
this.clearSlices();
mesh.geometry.applyMatrix4(new THREE.Matrix4().makeScale(x, y, z));
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scale.x *= (x || 1.0);
scale.y *= (y || 1.0);
scale.z *= (z || 1.0);
this.setModified();
}
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rotate(x, y, z, temp, center = true) {
this.group.forEach(w => {
w._rotate(x, y, z, temp);
});
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if (center) {
this.center(false);
}
}
_rotate(x, y, z, temp) {
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if (!temp) {
this.bounds = null;
this.setWireframe(false);
this.clearSlices();
}
let m4 = new THREE.Matrix4();
let euler = typeof(x) === 'number';
if (euler) {
m4 = m4.makeRotationFromEuler(new THREE.Euler(x || 0, y || 0, z || 0));
} else {
m4 = m4.makeRotationFromQuaternion(x);
}
this.roto.push(m4);
this.mesh.geometry.applyMatrix4(m4);
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if (!temp && euler) {
let rot = this.track.rot;
rot.x += (x || 0);
rot.y += (y || 0);
rot.z += (z || 0);
}
this.setModified();
}
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unrotate() {
this.roto.reverse().forEach(m => {
this.mesh.geometry.applyMatrix4(m.clone().invert());
});
this.roto = [];
this.center();
this.setModified();
}
mirror() {
this.group.forEach(w => {
w._mirror();
});
this.center();
}
_mirror() {
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this.clearSlices();
this.setWireframe(false);
let geo = this.mesh.geometry, ot = this.track;
let pos = geo.attributes.position;
let arr = pos.array;
let count = pos.count;
// invert x
for (let i=0; i<count; i++) {
arr[i*3] = -arr[i*3];
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}
// invert face vertex order
for (let i=0; i<count; i+=3) {
let x = arr[i*3+0];
let y = arr[i*3+1];
let z = arr[i*3+2];
arr[i*3+0] = arr[i*3+6];
arr[i*3+1] = arr[i*3+7];
arr[i*3+2] = arr[i*3+8];
arr[i*3+6] = x;
arr[i*3+7] = y;
arr[i*3+8] = z;
}
pos.needsUpdate = true;
// geo.computeVertexNormals();
ot.mirror = !ot.mirror;
this.setModified();
this.points = null;
}
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getGeoVertices(unroll, translate) {
let geo = this.mesh.geometry;
let pos = geo.getAttribute('position');
// if indexed, return points rotated about X and then offset
let track = this.track;
if (translate && track.indexed) {
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// console.log(1, new THREE.Box3().setFromBufferAttribute(pos), track.box);
let delta = track.delta;
pos = pos.clone().applyMatrix4(
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new THREE.Matrix4().makeTranslation(0, 0, -track.box.d/2)
).applyMatrix4(
new THREE.Matrix4().makeRotationX(-track.indexRad)
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).applyMatrix4(
new THREE.Matrix4().makeTranslation(0, 0, track.box.d/2)
);
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// console.log(2, new THREE.Box3().setFromBufferAttribute(pos));
}
pos = pos.array;
if (geo.index && unroll !== false) {
let idx = geo.index.array;
let len = idx.length;
let pp2 = new Float32Array(len * 3);
let inc = 0;
for (let i=0; i<len; i++) {
let iv = idx[i];
let ip = iv * 3;
pp2[inc++] = pos[ip++];
pp2[inc++] = pos[ip++];
pp2[inc++] = pos[ip];
}
pos = pp2;
} else if (translate) {
pos = pos.slice();
}
return pos;
}
getPoints() {
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if (!this.points) {
// convert and cache points from geometry vertices
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this.points = verticesToPoints(this.getGeoVertices(), {
maxpass: 0 // disable decimation
});
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}
return this.points;
}
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getBoundingBox(refresh) {
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if (!this.bounds || refresh) {
this.bounds = new THREE.Box3();
this.bounds.setFromPoints(this.getPoints());
}
return this.bounds;
}
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getPositionBox() {
let bounds = this.getBoundingBox().clone();
let pos = this.track.pos;
bounds.min.x += pos.x;
bounds.max.x += pos.x;
bounds.min.y += pos.y;
bounds.max.y += pos.y;
return bounds;
}
isModified() {
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return this.modified;
}
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getExtruder(settings) {
if (settings) {
console.trace('legacy call with settings');
}
return this.anno.extruder || 0;
}
// allow worker code to run in same memspace as client
setInWorker() {
this.inWorker = true;
return this;
}
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/**
* processes points into facets, then into slices
*
* once upon a time there were multiple slicers. this was the fastest in most cases.
* lines are added to all the buckets they cross. then buckets are processed in order.
* buckets are contiguous ranges of z slicers. the advantage of this method is that
* as long as a large percentage of lines do not cross large z distances, this reduces
* the number of lines each slice has to consider thus improving speed.
*
* @params {Object} settings
* @params {Function} [ondone]
* @params {Function} [onupdate]
*/
slice(settings, ondone, onupdate) {
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let widget = this;
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let startTime = time();
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widget.settings = settings;
widget.clearSlices();
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onupdate(0.0001, "slicing");
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if (kiri.client && !widget.inWorker) {
// in case result of slice is nothing, do not preserve previous
widget.slices = []
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// executed from kiri.js
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kiri.client.slice(settings, this, function(reply) {
if (reply.alert) {
onupdate(null, null, reply.alert);
}
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if (reply.update) {
onupdate(reply.update, reply.updateStatus);
}
if (reply.send_start) {
widget.xfer = {start: reply.send_start};
}
if (reply.stats) {
widget.stats = reply.stats;
}
if (reply.send_end) {
widget.stats.load_time = widget.xfer.start - reply.send_end;
}
if (reply.slice) {
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widget.slices.push(kiri.codec.decode(reply.slice, {mesh:widget.mesh}));
}
if (reply.done) {
ondone(true);
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}
if (reply.error) {
ondone(false, reply.error);
}
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});
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}
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if (kiri.server) {
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// executed from kiri-worker.js
let catchdone = function(error) {
if (error) {
return ondone(error);
}
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onupdate(1.0, "transfer");
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widget.stats.slice_time = time() - startTime;
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ondone();
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};
let catchupdate = function(progress, message, alert) {
onupdate(progress, message, alert);
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};
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let drv = driver[settings.mode.toUpperCase()];
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if (drv) {
drv.slice(settings, widget, catchupdate, catchdone);
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} else {
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console.log('invalid mode: '+settings.mode);
ondone('invalid mode: '+settings.mode);
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}
}
// discard point cache
widget.points = undefined;
}
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/**
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* render to provided stack
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*/
render(stack) {
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const mark = Date.now();
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this.slices.forEach(slice => {
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if (slice.layers) {
stack.add(slice.layers);
}
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});
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return Date.now() - mark;
}
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setWireframe(set, color, opacity) {
if (!(api && api.conf)) {
// missing api features in engine mode
return;
}
let mesh = this.mesh,
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widget = this;
if (this.wire) {
this.setOpacity(solid_opacity);
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mesh.remove(this.wire);
this.wire = null;
}
if (set) {
let dark = api.space.is_dark();
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let mat = new THREE.MeshBasicMaterial({
wireframe: true,
color: dark ? 0xaaaaaa : 0,
opacity: 0.5,
transparent: true
})
let wire = widget.wire = new THREE.Mesh(mesh.geometry.shallowClone(), mat);
mesh.add(wire);
}
if (api.view.is_arrange()) {
this.setColor(this.color);
} else {
this.setColor(0x888888,undefined,false);
}
if (opacity !== undefined) {
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widget.setOpacity(opacity);
}
}
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show() {
this.mesh.visible = true;
}
hide() {
this.mesh.visible = false;
}
}
// Widget Grouping API
const Group = Widget.Groups = {
list() {
return groups.slice()
},
merge(widgets) {
let grps = widgets.map(w => w.group).uniq();
if (grps.length > 1) {
let root = grps.shift();
let rpos = root[0].track.pos;
for (let grp of grps) {
for (let w of grp) {
let wpos = w.track.pos;
w.group = root;
w.moveMesh(rpos.x - wpos.x, rpos.y - wpos.y, rpos.z - wpos.z);
w._move(rpos.x, rpos.y, rpos.z, true);
root.push(w);
}
groups.splice(groups.indexOf(grp),1);
}
}
},
split(widgets) {
for (let group of widgets.map(w => w.group).uniq()) {
groups.splice(groups.indexOf(group),1);
for (let widget of group) {
let nugroup = Group.forid(widget.id);
nugroup.push(widget);
widget.group = nugroup;
}
}
},
forid(id) {
for (let i=0; i<groups.length; i++) {
if (groups[i].id === id) return groups[i];
}
let group = [];
group.id = id;
groups.push(group);
return group;
},
remove(widget) {
groups.slice().forEach(group => {
let pos = group.indexOf(widget);
if (pos >= 0) {
group.splice(pos,1);
}
if (group.length === 0) {
pos = groups.indexOf(group);
groups.splice(pos,1);
}
});
},
blocks() {
return groups.map(group => {
return {
w: group[0].track.box.w,
h: group[0].track.box.h,
move: (x,y,z,abs) => {
group.forEach(widget => {
widget.getMaterial().visible = true;
widget._move(x, y, z, abs);
});
}
};
});
},
loadDone() {
groups.forEach(group => {
if (!group.centered) {
group[0].center();
group.centered = true;
}
});
},
bounds(group) {
let bounds = null;
group.forEach(widget => {
let wb = widget.mesh.getBoundingBox(true);
if (bounds) {
bounds = bounds.union(wb);
} else {
bounds = wb;
}
});
return bounds;
},
clear() {
groups.length = 0;
}
};
Widget.loadFromCatalog = function(filename, ondone) {
catalog().getFile(filename, function(data) {
let widget = newWidget().loadVertices(data);
widget.meta.file = filename;
ondone(widget);
});
};
Widget.loadFromState = function(id, ondone, move) {
index().get('ws-save-'+id, function(data) {
if (data) {
let vertices = data.geo || data,
track = data.track || undefined,
group = data.group || id,
anno = data.anno || undefined,
widget = newWidget(id, Group.forid(group)),
meta = data.meta || widget.meta,
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ptr = widget.loadVertices(vertices);
widget.meta = meta;
widget.anno = anno || widget.anno;
// restore widget position if specified
if (move && track && track.pos) {
widget.track = track;
widget.move(track.pos.x, track.pos.y, track.pos.z, true);
}
ondone(ptr);
} else {
ondone(null);
}
});
};
Widget.deleteFromState = function(id,ondone) {
index().remove('ws-save-'+id, ondone);
};
kiri.Widget = Widget;
kiri.newWidget = newWidget;
});