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So I am creating a program which will keep track of the TV shows and Movies that I watch. I have 2 classes (TV and Movie) and I have an Array which holds everyone. How would i go about saving this array so that every time I use the program it lets me edit the same list, because every time I watch a new episode I want to update my array with the new information. So basically what procedure would I need to use in order to not only save an arrya but load up the array every time I run the program?

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load the array from a database/disk store or elsewhere? –  ali haider Jul 26 '12 at 2:17
    
I would want to store it on a local disk. But I have never used a database, so is there a way to just reload an array? Or will I have to use some type of database? –  Garethj94 Jul 26 '12 at 2:20
1  
While object serialisation will work, I would, if you can avoid it. It does not handle changes to the underlying objects (say you want to add a rating field to you objects, you'd lose all the stored data). I'd err on the side of caution and use an XML format or even a plain file format if you don't like XML. –  MadProgrammer Jul 26 '12 at 2:24

3 Answers 3

Firstly, you should avoid arrays like the plague... use Collections instead, which apart from anything else expand in size automatically as needed (you'll need this).

Regardless of whether you use array or a List you can serialize the object to disk by writing the object to an ObjectOutputStream wrapping a FileOutputStream.

Note that the objects in the array/List must implement Serializable, as must all your class fields.

To read the array/List back in, read from an ObjectInputStream wrapping a FileInputStream.

You can Google for the countless examples of such code.

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"Firstly, you should avoid arrays like the plague... use Collections instead, which apart from anything else expand in size automatically as needed (you'll need this)." In this particular case, a Collection would be more useful. That does NOT mean anyone should "avoid arrays like the plague". Each method of storing data has its benefits, or they wouldn't exist, immutables included. –  John P Aug 1 '13 at 15:40

In order to save an array for further reference you need to make the class serializable (for example, by implementing Serializable). What this means is that an object can be converted to a sequence of bytes which could be saved to a file or sent over the network, which can later be used to recreate the object in memory

Then you can do this to save the data to a file:

ObjectOutputStream out = new ObjectOutputStream(
    new FileOutputStream("myarray.ser")
);
out.writeObject(myArray);
out.flush();
out.close();

You can read it back like this:

ObjectInputStream in = new ObjectInputStream(new FileInputStream("myarray.ser"));
MyType[] array = (MyType[]) in.readObject();
in.close();
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I think it would be worth including a short summary of what being Serializable means. –  gobernador Jul 26 '12 at 2:28
    
@gobernador No need, because God invented javadoc –  Bohemian Jul 26 '12 at 2:32
2  
@Bohemian 99% of the time, I completely agree, although I have to say that in this particular case, the javadoc for Serializable is a bit difficult to understand unless you already understand the concept. –  gobernador Jul 26 '12 at 2:39

While you could serialize your object and write it to disk... I am guessing it would be easier for you to simply output your array to a file and read it back in. You can write each element in the array to the file in a loop fairly easily, and read it back in just as easily. And like the others said, it is worth your time to look into an ArrayList or similar structure! Example:

To write to a file:

ArrayList<String> list = new ArrayList<String>();

// add stuff the the ArrayList

PrintWriter out = new PrintWriter(new BufferedWriter(new FileWriter("data.txt")));

for( int x = 0; x < list.size(); x++)
{
out.println(list.get(x));
}

out.close()

To read from a file:

ArrayList<String> list = new ArrayList<String>();

Scanner scan = new Scanner(new File("data.txt"));

while(scan.hasNext())
{
list.add(scan.next());
}
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