Hour of nutty hacking and it's labelling 105 nodes
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62bc994788
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@ -373,21 +373,6 @@ function find_neighbours(chords, n) {
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function label_subgraph(chords, label, n) {
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const neighbours = find_neighbours(chords, n);
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for( const n1 of neighbours ) {
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if( n1.label === 0 ) {
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n1.label = label;
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console.log(`Added ${n1.id} to group ${label}`);
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label_subgraph(chords, label, n1);
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} else {
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if( n1.label !== label ) {
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console.log(`node ${n1.id} is already in group ${n1.label}`);
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}
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}
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}
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}
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// for a list of pairs [n1, n2] (these are nodes which share a common angle
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// for a list of pairs [n1, n2] (these are nodes which share a common angle
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// from a center), find all the groups of nodes which don't appear in a pair
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// from a center), find all the groups of nodes which don't appear in a pair
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// together
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// together
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@ -418,7 +403,6 @@ function partition_nodes(pairs) {
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// if neither of the pair was in a former group, start a new group
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// if neither of the pair was in a former group, start a new group
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if( !already ) {
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if( !already ) {
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groups.push(new Set(pair));
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groups.push(new Set(pair));
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console.log(`new group ${groups}`)
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}
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}
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// collapse any groups which now have common elements
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// collapse any groups which now have common elements
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groups = collapse_groups(groups);
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groups = collapse_groups(groups);
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@ -479,7 +463,7 @@ function vector_angle(n1, n2, n3) {
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return Math.acos(dp / ( v2.length() * v3.length()));
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return Math.acos(dp / ( v2.length() * v3.length()));
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}
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}
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function neighbour_angles(chords, n) {
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function neighbour_angles_orig(chords, n) {
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const ns = find_neighbours(chords, n);
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const ns = find_neighbours(chords, n);
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const angles = {};
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const angles = {};
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for( let i = 0; i < ns.length - 1; i++ ) {
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for( let i = 0; i < ns.length - 1; i++ ) {
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@ -497,15 +481,99 @@ function neighbour_angles(chords, n) {
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return angles;
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return angles;
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}
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}
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function neighbour_angles(chords, n, angle) {
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const ns = find_neighbours(chords, n);
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const pairs = [];
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for( let i = 0; i < ns.length - 1; i++ ) {
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for( let j = i + 1; j < ns.length; j++ ) {
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const n2 = ns[i];
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const n3 = ns[j];
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const a = THREE.MathUtils.radToDeg(vector_angle(n, n2, n3));
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const af = (a).toFixed(3);
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if( af === angle ) {
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pairs.push([n2.id, n3.id]);
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}
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}
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}
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return pairs;
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}
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function make_120_partition(nodes, n) {
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const chords = find_all_chords(nodes);
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const chord3 = chords["1.74806"]; // these are edges of the 600-cells;
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const pairs60 = neighbour_angles(chord3, n, "60.000");
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const icosas = partition_nodes(pairs60);
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const angles = icosa_nodes(nodes, icosas[0]);
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label_120_partition_r(nodes, chord3, 1, n, angles);
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}
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// recursive function to label a single 600-cell vertex partition of the
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// 120-cell by following icosahedral nets
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function label_120_partition_r(nodes, chords, label, origin, neighbours) {
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console.log(`label_120_partition_r`);
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console.log(origin);
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console.log(neighbours.map((n) => n.id));
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for( const n of neighbours ) {
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if( n.label === 0 ) {
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n.label = label;
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console.log(`Added ${n.id} to group ${label}`);
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// the angles represent two icosahedral pyramids - partition them and
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// pick the one which is at 60 to the edge we arrived on
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console.log(`looking for more neighbors for ${n}`);
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const pairs60 = neighbour_angles(chords, n, "60.000");
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const icosas = partition_nodes(pairs60);
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const icosa = choose_icosa(nodes, origin, n, icosas);
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const icosa_n = icosa_nodes(nodes, icosa);
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return label_120_partition_r(nodes, chords, label, n, icosa_n);
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} else {
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if( n.label !== label ) {
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console.log(`node ${n.id} is already in group ${n.label}`);
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return false;
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}
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}
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}
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}
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// given a pair of icosa-sets, pick the one which is at the right angle to
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// the incoming vector
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function choose_icosa(nodes, origin, n1, icosas) {
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for( const icosa of icosas ) {
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const inodes = icosa_nodes(nodes, icosa);
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const a60 = inodes.map((ni) => {
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const a = THREE.MathUtils.radToDeg(vector_angle(n1, origin, ni));
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return a.toFixed(3);
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});
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if( a60.filter((a) => a === "60.000").length > 0 ) {
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return icosa;
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}
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}
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console.log("No icosa found!");
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return undefined;
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}
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function icosa_nodes(nodes, icosa) {
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return Array.from(icosa).map((nid) => node_by_id(nodes, nid));
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}
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function node_by_id(nodes, nid) {
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const ns = nodes.filter((n) => n.id === nid);
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return ns[0];
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}
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const nodes = make_120cell_vertices();
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const nodes = make_120cell_vertices();
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const chords = find_all_chords(nodes)
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// const chords = find_all_chords(nodes);
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// const chord3 = chords["1.74806"]; // these are edges of the 600-cells;
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const chord3 = chords["1.74806"];
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// const pairs60 = neighbour_angles(chord3, nodes[0], "60.000");
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// const icosas = partition_nodes(pairs60);
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const angle_groups = neighbour_angles(chord3, nodes[0]);
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const pairs60 = angle_groups['60.000'];
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