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将选择的图片显示在listview中,并显示filename,path和type的简单实例

2020-01-17 23:43:22
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复制代码 代码如下:

if (openFileDialog1.ShowDialog() == DialogResult.OK)
           {
               listView1.Items.Clear();
               string[] files = openFileDialog1.FileNames; //定义一个数组,获取选择的文件
               string[] fileinfo = new string[3];  //定义一个数组,用于存储文件信息
               for (int i = 0; i < files.Length; i++)  //遍历文件数组
               {
                   string path = files[i].ToString();  //获取文件路径
                   //截取文件名字
                   string fileName = path.Substring(path.LastIndexOf("//") + 1, path.Length - 1 - path.LastIndexOf("//"));
                   //截取文件类型
                   string fileType = fileName.Substring(fileName.LastIndexOf(".") + 1, fileName.Length - 1 - fileName.LastIndexOf("."));
                   fileinfo[0] = fileName;
                   fileinfo[1] = path;
                   fileinfo[2] = fileType;
                   ListViewItem lvi = new ListViewItem(fileinfo);
                   listView1.Items.Add(lvi);

               }
          }

注释:ListView1, View 属性为Details

OpenFileDialog1,Multiselect属性为true

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