我正在测试此EDI标准:X12 Parser(link),现在链接中的示例有result.txt。执行此操作的代码是:
using OopFactory.X12.Parsing;
using OopFactory.X12.Parsing.Model;
namespace MyX12.Edi835Parser
{
class Program
{
static void Main(string[] args)
{
Stream transformStream = Assembly.GetExecutingAssembly().GetManifestResourceStream("MyX12.Edi835Parser.X12-835-To-CSV.xslt");
Stream inputStream = new FileStream(args[0], FileMode.Open, FileAccess.Read);
Stream outputFile = new FileStream(args[1], FileMode.Create, FileAccess.Write);
X12Parser parser = new X12Parser();
Interchange interchange = parser.Parse(inputStream);
string xml = interchange.Serialize();
var transform = new XslCompiledTransform();
transform.Load(XmlReader.Create(transformStream));
transform.Transform(XmlReader.Create(new StringReader(xml)), new XsltArgumentList(), outputFile);
}
}
}
如您所见,代码具有:Stream outputFile = new FileStream(args 1 ...其中args 1在项目属性/ Debug中设置为Sample-Output.txt,这是将要创建的文件的名称。
现在,我希望在我的控制台中将结果改为Sample-Output.txt,如下所示:
Stream outputFile = Console.Write();
真的感谢您的帮助。
答案 0 :(得分:1)
Console.OpenStandardOutput()获取标准输出流。
尝试替换
Stream outputFile = new FileStream(args[1], FileMode.Create, FileAccess.Write);
与
Stream outputFile = Console.OpenStandardOutput();