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359 lines
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359 lines
14 KiB
ReStructuredText
.. _doc_saving_games:
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Saving games
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============
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Introduction
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------------
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Save games can be complicated. For example, it may be desirable
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to store information from multiple objects across multiple levels.
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Advanced save game systems should allow for additional information about
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an arbitrary number of objects. This will allow the save function to
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scale as the game grows more complex.
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.. note::
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If you're looking to save user configuration, you can use the
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:ref:`class_ConfigFile` class for this purpose.
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Identify persistent objects
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---------------------------
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Firstly, we should identify what objects we want to keep between game
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sessions and what information we want to keep from those objects. For
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this tutorial, we will use groups to mark and handle objects to be saved,
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but other methods are certainly possible.
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We will start by adding objects we wish to save to the "Persist" group. We can
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do this through either the GUI or script. Let's add the relevant nodes using the
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GUI:
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.. image:: img/groups.png
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Once this is done, when we need to save the game, we can get all objects
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to save them and then tell them all to save with this script:
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.. tabs::
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.. code-tab:: gdscript GDScript
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var save_nodes = get_tree().get_nodes_in_group("Persist")
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for i in save_nodes:
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# Now, we can call our save function on each node.
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.. code-tab:: csharp
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var saveNodes = GetTree().GetNodesInGroup("Persist");
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foreach (Node saveNode in saveNodes)
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{
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// Now, we can call our save function on each node.
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}
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Serializing
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-----------
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The next step is to serialize the data. This makes it much easier to
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read from and store to disk. In this case, we're assuming each member of
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group Persist is an instanced node and thus has a path. GDScript
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has helper functions for this, such as :ref:`to_json()
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<class_@GDScript_method_to_json>` and :ref:`parse_json()
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<class_@GDScript_method_parse_json>`, so we will use a dictionary. Our node needs to
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contain a save function that returns this data. The save function will look
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like this:
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.. tabs::
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.. code-tab:: gdscript GDScript
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func save():
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var save_dict = {
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"filename" : get_filename(),
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"parent" : get_parent().get_path(),
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"pos_x" : position.x, # Vector2 is not supported by JSON
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"pos_y" : position.y,
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"attack" : attack,
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"defense" : defense,
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"current_health" : current_health,
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"max_health" : max_health,
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"damage" : damage,
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"regen" : regen,
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"experience" : experience,
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"tnl" : tnl,
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"level" : level,
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"attack_growth" : attack_growth,
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"defense_growth" : defense_growth,
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"health_growth" : health_growth,
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"is_alive" : is_alive,
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"last_attack" : last_attack
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}
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return save_dict
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.. code-tab:: csharp
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public Godot.Collections.Dictionary<string, object> Save()
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{
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return new Godot.Collections.Dictionary<string, object>()
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{
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{ "Filename", GetFilename() },
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{ "Parent", GetParent().GetPath() },
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{ "PosX", Position.x }, // Vector2 is not supported by JSON
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{ "PosY", Position.y },
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{ "Attack", Attack },
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{ "Defense", Defense },
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{ "CurrentHealth", CurrentHealth },
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{ "MaxHealth", MaxHealth },
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{ "Damage", Damage },
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{ "Regen", Regen },
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{ "Experience", Experience },
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{ "Tnl", Tnl },
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{ "Level", Level },
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{ "AttackGrowth", AttackGrowth },
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{ "DefenseGrowth", DefenseGrowth },
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{ "HealthGrowth", HealthGrowth },
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{ "IsAlive", IsAlive },
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{ "LastAttack", LastAttack }
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};
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}
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This gives us a dictionary with the style
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``{ "variable_name":value_of_variable }``, which will be useful when
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loading.
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Saving and reading data
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-----------------------
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As covered in the :ref:`doc_filesystem` tutorial, we'll need to open a file
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so we can write to it or read from it. Now that we have a way to
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call our groups and get their relevant data, let's use :ref:`to_json()
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<class_@GDScript_method_to_json>` to
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convert it into an easily stored string and store them in a file. Doing
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it this way ensures that each line is its own object, so we have an easy
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way to pull the data out of the file as well.
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.. tabs::
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.. code-tab:: gdscript GDScript
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# Note: This can be called from anywhere inside the tree. This function is
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# path independent.
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# Go through everything in the persist category and ask them to return a
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# dict of relevant variables.
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func save_game():
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var save_game = File.new()
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save_game.open("user://savegame.save", File.WRITE)
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var save_nodes = get_tree().get_nodes_in_group("Persist")
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for node in save_nodes:
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# Check the node is an instanced scene so it can be instanced again during load.
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if node.filename.empty():
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print("persistent node '%s' is not an instanced scene, skipped" % node.name)
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continue
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# Check the node has a save function.
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if !node.has_method("save"):
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print("persistent node '%s' is missing a save() function, skipped" % node.name)
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continue
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# Call the node's save function.
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var node_data = node.call("save")
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# Store the save dictionary as a new line in the save file.
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save_game.store_line(to_json(node_data))
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save_game.close()
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.. code-tab:: csharp
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// Note: This can be called from anywhere inside the tree. This function is
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// path independent.
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// Go through everything in the persist category and ask them to return a
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// dict of relevant variables.
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public void SaveGame()
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{
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var saveGame = new File();
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saveGame.Open("user://savegame.save", (int)File.ModeFlags.Write);
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var saveNodes = GetTree().GetNodesInGroup("Persist");
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foreach (Node saveNode in saveNodes)
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{
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// Check the node is an instanced scene so it can be instanced again during load.
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if (saveNode.Filename.Empty())
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{
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GD.Print(String.Format("persistent node '{0}' is not an instanced scene, skipped", saveNode.Name));
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continue;
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}
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// Check the node has a save function.
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if (!saveNode.HasMethod("Save"))
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{
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GD.Print(String.Format("persistent node '{0}' is missing a Save() function, skipped", saveNode.Name));
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continue;
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}
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// Call the node's save function.
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var nodeData = saveNode.Call("Save");
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// Store the save dictionary as a new line in the save file.
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saveGame.StoreLine(JSON.Print(nodeData));
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}
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saveGame.Close();
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}
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Game saved! Now, to load, we'll read each
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line, use ``parse_json()`` to read it back to a dict, and then iterate over
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the dict to read our values. But we'll need to first create the object
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and we can use the filename and parent values to achieve that. Here is our
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load function:
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.. tabs::
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.. code-tab:: gdscript GDScript
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# Note: This can be called from anywhere inside the tree. This function
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# is path independent.
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func load_game():
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var save_game = File.new()
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if not save_game.file_exists("user://savegame.save"):
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return # Error! We don't have a save to load.
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# We need to revert the game state so we're not cloning objects
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# during loading. This will vary wildly depending on the needs of a
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# project, so take care with this step.
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# For our example, we will accomplish this by deleting saveable objects.
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var save_nodes = get_tree().get_nodes_in_group("Persist")
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for i in save_nodes:
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i.queue_free()
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# Load the file line by line and process that dictionary to restore
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# the object it represents.
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save_game.open("user://savegame.save", File.READ)
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while save_game.get_position() < save_game.get_len():
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# Get the saved dictionary from the next line in the save file
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var node_data = parse_json(save_game.get_line())
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# Firstly, we need to create the object and add it to the tree and set its position.
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var new_object = load(node_data["filename"]).instance()
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get_node(node_data["parent"]).add_child(new_object)
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new_object.position = Vector2(node_data["pos_x"], node_data["pos_y"])
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# Now we set the remaining variables.
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for i in node_data.keys():
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if i == "filename" or i == "parent" or i == "pos_x" or i == "pos_y":
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continue
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new_object.set(i, node_data[i])
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save_game.close()
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.. code-tab:: csharp
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// Note: This can be called from anywhere inside the tree. This function is
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// path independent.
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public void LoadGame()
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{
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var saveGame = new File();
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if (!saveGame.FileExists("user://savegame.save"))
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return; // Error! We don't have a save to load.
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// We need to revert the game state so we're not cloning objects during loading.
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// This will vary wildly depending on the needs of a project, so take care with
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// this step.
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// For our example, we will accomplish this by deleting saveable objects.
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var saveNodes = GetTree().GetNodesInGroup("Persist");
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foreach (Node saveNode in saveNodes)
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saveNode.QueueFree();
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// Load the file line by line and process that dictionary to restore the object
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// it represents.
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saveGame.Open("user://savegame.save", (int)File.ModeFlags.Read);
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while (saveGame.GetPosition() < saveGame.GetLen())
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{
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// Get the saved dictionary from the next line in the save file
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var nodeData = new Godot.Collections.Dictionary<string, object>((Godot.Collections.Dictionary)JSON.Parse(saveGame.GetLine()).Result);
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// Firstly, we need to create the object and add it to the tree and set its position.
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var newObjectScene = (PackedScene)ResourceLoader.Load(nodeData["Filename"].ToString());
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var newObject = (Node)newObjectScene.Instance();
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GetNode(nodeData["Parent"].ToString()).AddChild(newObject);
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newObject.Set("Position", new Vector2((float)nodeData["PosX"], (float)nodeData["PosY"]));
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// Now we set the remaining variables.
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foreach (KeyValuePair<string, object> entry in nodeData)
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{
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string key = entry.Key.ToString();
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if (key == "Filename" || key == "Parent" || key == "PosX" || key == "PosY")
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continue;
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newObject.Set(key, entry.Value);
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}
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}
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saveGame.Close();
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}
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Now we can save and load an arbitrary number of objects laid out
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almost anywhere across the scene tree! Each object can store different
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data depending on what it needs to save.
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Some notes
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----------
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We have glossed over setting up the game state for loading. It's ultimately up
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to the project creator where much of this logic goes.
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This is often complicated and will need to be heavily
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customized based on the needs of the individual project.
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Additionally, our implementation assumes no Persist objects are children of other
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Persist objects. Otherwise, invalid paths would be created. To
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accommodate nested Persist objects, consider saving objects in stages.
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Load parent objects first so they are available for the :ref:`add_child()
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<class_node_method_add_child>`
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call when child objects are loaded. You will also need a way to link
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children to parents as the :ref:`NodePath
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<class_nodepath>` will likely be invalid.
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JSON vs binary serialization
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----------------------------
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For simple game state, JSON may work and it generates human-readable files that are easy to debug.
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But JSON has many limitations. If you need to store more complex game state or
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a lot of it, :ref:`binary serialization<doc_binary_serialization_api>`
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may be a better approach.
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JSON limitations
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~~~~~~~~~~~~~~~~
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Here are some important gotchas to know about when using JSON.
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* **Filesize:**
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JSON stores data in text format, which is much larger than binary formats.
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* **Data types:**
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JSON only offers a limited set of data types. If you have data types
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that JSON doesn't have, you will need to translate your data to and
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from types that JSON can handle. For example, some important types that JSON
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can't parse are: ``Vector2``, ``Vector3``, ``Color``, ``Rect2``, and ``Quat``.
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* **Custom logic needed for encoding/decoding:**
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If you have any custom classes that you want to store with JSON, you will
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need to write your own logic for encoding and decoding those classes.
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Binary serialization
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~~~~~~~~~~~~~~~~~~~~
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:ref:`Binary serialization<doc_binary_serialization_api>` is an alternative
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approach for storing game state, and you can use it with the functions
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``get_var`` and ``store_var`` of :ref:`class_File`.
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* Binary serialization should produce smaller files than JSON.
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* Binary serialization can handle most common data types.
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* Binary serialization requires less custom logic for encoding and decoding
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custom classes.
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Note that not all properties are included. Only properties that are configured
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with the :ref:`PROPERTY_USAGE_STORAGE<class_@GlobalScope_constant_PROPERTY_USAGE_STORAGE>`
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flag set will be serialized. You can add a new usage flag to a property by overriding the
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:ref:`_get_property_list<class_Object_method__get_property_list>`
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method in your class. You can also check how property usage is configured by
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calling ``Object._get_property_list``.
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See :ref:`PropertyUsageFlags<enum_@GlobalScope_PropertyUsageFlags>` for the
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possible usage flags.
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