blockly >实用程序 >dom >removeNode
utils.dom.removeNode() 函数
将节点从其父级中移除。如果未附加到父项,则为空操作。
Signature:
export declare function removeNode(node: Node | null): Node | null;
参数
| 参数 | 类型 | 说明 |
|---|---|---|
| 节点 | 节点 |null | 要移除的节点。 |
返回:
节点 |null
移除的节点(如果被移除);else, null。
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最后更新时间 (UTC):2025-07-25。
[[["易于理解","easyToUnderstand","thumb-up"],["解决了我的问题","solvedMyProblem","thumb-up"],["其他","otherUp","thumb-up"]],[["没有我需要的信息","missingTheInformationINeed","thumb-down"],["太复杂/步骤太多","tooComplicatedTooManySteps","thumb-down"],["内容需要更新","outOfDate","thumb-down"],["翻译问题","translationIssue","thumb-down"],["示例/代码问题","samplesCodeIssue","thumb-down"],["其他","otherDown","thumb-down"]],["最后更新时间 (UTC):2025-07-25。"],[[["Removes a specified node from its parent in the DOM."],["Returns the removed node, or null if the node was not attached to a parent."],["Utilizes the `removeNode()` function within the `Blockly.utils.dom` namespace for this operation."],["Accepts a single argument: the node to be removed."],["If the provided node is not attached to a parent element, the function does nothing."]]],[]]