Mercurial > parpg-source
comparison characterstatistics.py @ 0:7a89ea5404b1
Initial commit of parpg-core.
author | M. George Hansen <technopolitica@gmail.com> |
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date | Sat, 14 May 2011 01:12:35 -0700 |
parents | |
children | 741d7d193bad |
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-1:000000000000 | 0:7a89ea5404b1 |
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1 # This program is free software: you can redistribute it and/or modify | |
2 # it under the terms of the GNU General Public License as published by | |
3 # the Free Software Foundation, either version 3 of the License, or | |
4 # (at your option) any later version. | |
5 | |
6 # This program is distributed in the hope that it will be useful, | |
7 # but WITHOUT ANY WARRANTY; without even the implied warranty of | |
8 # MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the | |
9 # GNU General Public License for more details. | |
10 | |
11 # You should have received a copy of the GNU General Public License | |
12 # along with this program. If not, see <http://www.gnu.org/licenses/>. | |
13 """ | |
14 Provides classes that define character stats and traits. | |
15 """ | |
16 | |
17 from abc import ABCMeta, abstractmethod | |
18 from weakref import ref as weakref | |
19 | |
20 from .serializers import SerializableRegistry | |
21 | |
22 class AbstractCharacterStatistic(object): | |
23 __metaclass__ = ABCMeta | |
24 | |
25 @abstractmethod | |
26 def __init__(self, description, minimum, maximum): | |
27 self.description = description | |
28 self.minimum = minimum | |
29 self.maximum = maximum | |
30 | |
31 | |
32 class PrimaryCharacterStatistic(AbstractCharacterStatistic): | |
33 def __init__(self, long_name, short_name, description, minimum=0, | |
34 maximum=100): | |
35 AbstractCharacterStatistic.__init__(self, description=description, | |
36 minimum=minimum, maximum=maximum) | |
37 self.long_name = long_name | |
38 self.short_name = short_name | |
39 | |
40 SerializableRegistry.registerClass( | |
41 'PrimaryCharacterStatistic', | |
42 PrimaryCharacterStatistic, | |
43 init_args=[ | |
44 ('long_name', unicode), | |
45 ('short_name', unicode), | |
46 ('description', unicode), | |
47 ('minimum', int), | |
48 ('maximum', int), | |
49 ], | |
50 ) | |
51 | |
52 | |
53 class SecondaryCharacterStatistic(AbstractCharacterStatistic): | |
54 def __init__(self, name, description, unit, mean, sd, stat_modifiers, | |
55 minimum=None, maximum=None): | |
56 AbstractCharacterStatistic.__init__(self, description=description, | |
57 minimum=minimum, maximum=maximum) | |
58 self.name = name | |
59 self.unit = unit | |
60 self.mean = mean | |
61 self.sd = sd | |
62 self.stat_modifiers = stat_modifiers | |
63 | |
64 SerializableRegistry.registerClass( | |
65 'SecondaryCharacterStatistic', | |
66 SecondaryCharacterStatistic, | |
67 init_args=[ | |
68 ('name', unicode), | |
69 ('description', unicode), | |
70 ('unit', unicode), | |
71 ('mean', float), | |
72 ('sd', float), | |
73 ('stat_modifiers', dict), | |
74 ('minimum', float), | |
75 ('maximum', float), | |
76 ], | |
77 ) | |
78 | |
79 | |
80 class AbstractStatisticValue(object): | |
81 __metaclass__ = ABCMeta | |
82 | |
83 @abstractmethod | |
84 def __init__(self, statistic_type, character): | |
85 self.statistic_type = statistic_type | |
86 self.character = weakref(character) | |
87 | |
88 | |
89 class PrimaryStatisticValue(AbstractStatisticValue): | |
90 def value(): | |
91 def fget(self): | |
92 return self._value | |
93 def fset(self, new_value): | |
94 assert 0 <= new_value <= 100 | |
95 self._value = new_value | |
96 | |
97 def __init__(self, statistic_type, character, value): | |
98 AbstractStatisticValue.__init__(self, statistic_type=statistic_type, | |
99 character=character) | |
100 self._value = None | |
101 self.value = value | |
102 | |
103 | |
104 class SecondaryStatisticValue(AbstractStatisticValue): | |
105 def normalized_value(): | |
106 def fget(self): | |
107 return self._normalized_value | |
108 def fset(self, new_value): | |
109 self._normalized_value = new_value | |
110 statistic_type = self.statistic_type | |
111 mean = statistic_type.mean | |
112 sd = statistic_type.sd | |
113 self._value = self.calculate_value(mean, sd, new_value) | |
114 return locals() | |
115 normalized_value = property(**normalized_value()) | |
116 | |
117 def value(): | |
118 def fget(self): | |
119 return self._value | |
120 def fset(self, new_value): | |
121 self._value = new_value | |
122 statistic_type = self.statistic_type | |
123 mean = statistic_type.mean | |
124 sd = statistic_type.sd | |
125 self._normalized_value = self.calculate_value(mean, sd, new_value) | |
126 return locals() | |
127 value = property(**value()) | |
128 | |
129 def __init__(self, statistic_type, character): | |
130 AbstractStatisticValue.__init__(self, statistic_type=statistic_type, | |
131 character=character) | |
132 mean = statistic_type.mean | |
133 sd = statistic_type.sd | |
134 normalized_value = self.derive_value(normalized=True) | |
135 self._normalized_value = normalized_value | |
136 self._value = self.calculate_value(mean, sd, normalized_value) | |
137 | |
138 def derive_value(self, normalized=True): | |
139 """ | |
140 Derive the current value | |
141 """ | |
142 statistic_type = self.statistic_type | |
143 stat_modifiers = statistic_type.stat_modifiers | |
144 character = self.character() | |
145 | |
146 value = sum( | |
147 character.statistics[name].value * modifier for name, modifier in | |
148 stat_modifiers.items() | |
149 ) | |
150 assert 0 <= value <= 100 | |
151 if not normalized: | |
152 mean = statistic_type.mean | |
153 sd = statistic_type.sd | |
154 value = self.calculate_value(mean, sd, value) | |
155 return value | |
156 | |
157 @staticmethod | |
158 def calculate_value(mean, sd, normalized_value): | |
159 value = sd * (normalized_value - 50) + mean | |
160 return value | |
161 | |
162 @staticmethod | |
163 def calculate_normalized_value(mean, sd, value): | |
164 normalized_value = ((value - mean) / sd) + 50 | |
165 return normalized_value |