3

I've got some script in Node.js which is working when I run it on my computer but not when I'm on a server. I've got 2 servers: I run the webApplication on the first (Server 1) and the second (Server 2) contains files.

var fs = require('fs');
var FTPClient = require('ftp');
var c = new FTPClient();

c.connect({
  host: "192.168.200.2",
  user: "*****",
  password: "******"
});

c.on('ready', function() {

  console.log("Connected to datastore !");

  var dateFile = './Dictionnary/lastUpdate.json';
  var csvFile = '//192.168.200.2/Alfa/file4457.csv'
  var lastUpdate;

  fs.stat(csvFile, (err, stat) => {
    if (err) {
      console.error(err);
    };

    var date = { mtime: stat.mtime }

    var lastDate = new Date(jsonfile.readFileSync(dateFile).mtime);

    var newDate = new Date(stat.mtime);

    if (newDate <= lastDate) {
      console.log('Dictionnary up-to-date');
    } else {
      console.log('Update Needed');
      var DeleteQuery = mySqlClient.query('DELETE FROM dictionnary');
      csv = fs.readFile(csvFile, 'utf-8', (err, data) => {
        if (err) {
          throw err
        };
        dictionnary = parseCSV(data);
        for (i = 0; i < dictionnary.length - 1; i++) {
          var insertQuery = ("INSERT INTO Dictionnary VALUES (?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?)");
          var query = mySqlClient.query(insertQuery, [dictionnary[i][0], dictionnary[i][1], dictionnary[i][2], dictionnary[i][3], dictionnary[i][4], dictionnary[i][5], dictionnary[i][6], dictionnary[i][7], dictionnary[i][8], dictionnary[i][9], dictionnary[i][10], , dictionnary[i][11], , dictionnary[i][12]]);
         };
      }
   }
}

When I run the script on my computer I can find the file on the (Server 2) but when I run it on the (server 1) it doesn't work anymore and I've this error:

 Error: ENOENT: no such file or directory, open '//192.168.200.2/Alfa/file4457.csv'

I thought it was a problem with the pass so I tried with //192.168.200.2/Alfa/file4457.csv, ./Alfa/file4457.csv, Alfa/file4457.csv

But that's not working.

I checked the path and he's good.

For the fs.stat() that's not a problem I can still replace it by c.lastMod() but I don't find what I can use to replace the fs.readFile()

Thank you for reading.

1 Answer 1

7

fs will look the path you give to it //192.168.200.2/Alfa/file4457.csv.

From the server you're executing the script, this path is not found. I don't know your network and servers architecture so I can't really explain why it works on your computer and not on the server. But I guess your computer and the FTP server are on the same local network (correctme if I'm wrong).

After reading your code, you're opening a FTP connection on a remote FTP server :

c.connect({
  host: "192.168.200.2",
  user: "*****",
  password: "******"
});

c.on('ready', function() {
    ...
});

But int the .on('ready', function() { ... }) callback you don't do anything with this new openned connection (look at your code, you never use c again).

By reading the ftp node module documentation, you can find that there is the get function, able to retrieve a file from your FTP connection.

get(< string >path, [< boolean >useCompression, ]< function >callback) - (void) - Retrieves a file at path from the server. useCompression defaults to false. callback has 2 parameters: < Error >err, < ReadableStream >fileStream.

So, you have to use the FTP connection with something like that :

c.connect({
   host: "192.168.200.2",
   user: "*****",
   password: "******"
});

c.on('ready', function() {
    c.get('/Alfa/file4457.csv', function(err, stream) {
         var content = '';
         stream.on('data', function(chunk) {
             content += chunk.toString();
         });
         stream.on('end', function() {
             // content variable now contains all file content. 
         });
    })
});
3

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.