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My file contains only 18.746786635311242 as a content and nothing else when I try to read that double number using code

FileInputStream fin = new FileInputStream("output");
        DataInputStream din = new DataInputStream(fin);
         f = din.readDouble();
        System.out.println(f);
        din.close();

and try to print f the value shows 1.3685694889781536E-71

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If it is text, you need to read ti as text, not binary. The simplest solution is to use a BufferedReader.

BufferedReader br = new BufferedReader(new FileReader("output"));
double d = Double.parseDouble(br);
br.close();

or use a Scanner.

Scanner scan = new Scanner(new File("output"));
double d = scan.nextDouble();
scan.close();
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The decimals might be overflowing the size of a double on your system or only a certain number of bytes are being read (max that it can read probably 8) and then interpreting that as a double, try using

BigDecimal f = new BigDecimal(din.readLine());
System.out.println(f);

This should give you the desired result.

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double ignores extra digits of precision. The problem is you can't read text as if it were binary. – Peter Lawrey Sep 1 '11 at 19:04

You could also try

Double d = new Double(din.readLine().trim());
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Since DataInputReader.readLine() is actually deprecated, I'd do it like this:

FileInputStream fin = new FileInputStream("double.txt");
InputStreamReader isr = new InputStreamReader(fin);
BufferedReader br = new BufferedReader(isr);
BigDecimal f = new BigDecimal(br.readLine().trim());
System.out.println(f);
br.close();
isr.close();
fin.close();

Nonetheless, the key here is to actually use BigDecimal.

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