本文实例讲述了JS实现Select的option上下移动的方法。分享给大家供大家参考,具体如下:
<html xmlns="http://www.w3.org/1999/xhtml"> <head> <title></title> <script type="text/javascript"> function UpOrDown(direct, selectId) {//direct : 1:Up, -1:Down var obj = document.getElementById(selectId); var len = obj.length; var index = obj.selectedIndex; //如果:1.没有选中的项; 2.向上,但已是最上; 3.向下,但是最下,不作处理 if ( (index == -1) || (direct == -1 && index == 0) || (direct == 1 && index >= len - 1) ) return; var swapIndex = index + direct; var tempOptions = new Array(); for (var i = 0; i < len; i++){ tempOptions[tempOptions.length] = obj.options[i == index?swapIndex:(i == swapIndex?index:i)]; } obj.options.length = 0; for (var i = 0; i < len; i++) obj.options.add(tempOptions[i]); } function UpOrDown2(direct, selectId) {//direct : 1:Up, 0:Down var obj = document.getElementById(selectId); var len = obj.length; var index = obj.selectedIndex; //如果:1.没有选中的项; 2.向上,但已是最上; 3.向下,但是最下,不作处理 if( (index == -1) || (direct == 1 && index == 0) || (direct == 0 && index >= len - 1) ) return; var tempOptions = new Array(); //如是向上,得到自己上一个到最后的option数组;如是向下,得到自己到最后一个的option数组 for (var i = index - direct; i < len; i++) tempOptions[tempOptions.length] = obj.options[i]; //去除刚才取得的部分 obj.options.length = index - direct; //颠倒取两个option obj.options.add(tempOptions[1]); obj.options.add(tempOptions[0]); //将余下的option全部加进来 for (var i = 2; i < tempOptions.length; i++) obj.options.add(tempOptions[i]); } </script> </head> <body> <table> <tr> <td> <select id="Select1" size="100"> <option>1</option> <option>2</option> <option>3</option> <option>4</option> <option>5</option> </select> </td> <td> <img id="imgUp" alt="Up" /><br /> <img id="imgDown" alt="Down" /> </td> <td> <img id="img1" alt="Up2" /><br /> <img id="img2" alt="Down2" /> </td> </tr> </table> </body> </html>
希望本文所述对大家JavaScript程序设计有所帮助。
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