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184 lines
5.6 KiB
JavaScript
184 lines
5.6 KiB
JavaScript
define([], function () {
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var tree = {};
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// FIXME this isn't being used
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var someElement = tree.some = function (root, predicate) {
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// take the index of the last element in the current root
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var last = root.childElementCount - 1;
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// it might be a leaf node
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if (last < 0) { return false; }
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// otherwise it has children
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while (last >= 0) {
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// check from back to front
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// check the node's children (depth first)
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// if the predicate tests true, return true
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if (tree.some(root.children[last], predicate)) {
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return true;
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} // otherwise none of the nodes inside it matched.
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// check the node itself
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if (predicate(root.children[last], last)) {
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return true;
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}
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last--;
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}
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return false;
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};
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// FIXME this isn't being used
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var someText = tree.someIncludingText = function (root, predicate) {
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// take the index of the last element in the current root
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var last = root.childNodes.length - 1;
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// it might be a leaf node
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if (last < 0) { return false; }
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// otherwise it has children
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while (last >= 0) {
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// check from back to front
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// check the node's children (depth first)
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// if the predicate tests true, return true
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if (tree.someIncludingText(root.childNodes[last], predicate)) {
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return true;
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} // otherwise none of the nodes inside it matched.
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// check the node itself
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if (predicate(root.childNodes[last], last)) {
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return true;
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}
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last--;
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}
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return false;
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};
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// FIXME not being used
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tree.findSameHierarchy = function (list, ancestor) {
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var i = 0;
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var success = true;
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var last = list.length - 1;
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var el;
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tree.someIncludingText(ancestor, function (e) {
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// don't out of bounds
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if (i > last) {
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// unsuccessful
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success = false;
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return true;
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}
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if (list[i] === (e.tagName||e.nodeName)) {
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if (i === last) {
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el = e;
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return true;
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}
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i++;
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} else {
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// hierarchy has changed, what should we do?
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success = false;
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return true; // terminate
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}
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});
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return success? el: false;
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};
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var indexOfNode = tree.indexOfNode = function (el) {
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if (!(el && el.parentNode)) {
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console.log("No parentNode found!");
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}
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return Array.prototype.indexOf.call(el.parentNode.childNodes, el);
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};
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// not being used internally, but is useful externally
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tree.contains = function (el, root) {
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return el && root.contains && root.contains(el);
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};
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var siblingCount = tree.siblingCount = function (el) {
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return el.parentNode.childNodes.length;
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};
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var childCount = tree.childCount = function (el) {
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return el.childNodes.length;
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};
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var parentsOf = tree.parentsOf = function (el, root) {
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var P = [];
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var p = el;
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while (p !== root) { P.push((p = p.parentNode)); }
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return P;
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};
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/* rightmost and leftmost return the deepest right and left
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leaf nodes of a tree
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*/
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var rightmostNode = tree.rightmostNode = function (el) {
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var childNodeCount = childCount(el);
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if (!childNodeCount) { // no children
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return el; // return the element
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} else {
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return rightmostNode(el.childNodes[childNodeCount - 1]);
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}
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};
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var leftmostNode = tree.leftmostNode = function (el) {
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if (childCount(el)) {
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return leftmostNode(el.childNodes[0]);
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} else {
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return el;
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}
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};
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/* previousNode and nextNode traverse child elements of the dom
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in the order in which they appear when selected by a cursor.
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in particular, these algorithms traverse text nodes, not just tags
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*/
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var previousNode = tree.previousNode = function (el, root) {
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if (!el || el === root) { return null; }
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var i = indexOfNode(el);
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if (!el.parentNode) { return null; }
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if (i === 0) {
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if (root && el.parentNode === root.childNodes[0]) { return null; }
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return rightmostNode(previousNode(el.parentNode));
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} else {
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return rightmostNode(el.parentNode.childNodes[i-1]);
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}
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};
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var nextNode = tree.nextNode = function (el, root) {
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if (!el || el === root) { return null; }
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var i = indexOfNode(el) + 1, // the index of the next node
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l = siblingCount(el);
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if (i === l) { // out of bounds
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if (el.parentNode === root) { return null; }
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return nextNode(el.parentNode, root);
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} else {
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return leftmostNode(el.parentNode.childNodes[i], root);
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}
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};
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var orderOfNodes = tree.orderOfNodes = function (a, b, root) {
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// b might not be supplied
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if (!b) { return; }
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// a and b might be the same element
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if (a === b) { return 0; }
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var cur = b;
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while (cur) {
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cur = previousNode(cur, root);
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// if you find 'a' while traversing backwards
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// they are in the expected order
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if (cur === a) { return 1; }
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}
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// otherwise
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return -1;
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};
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return tree;
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});
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