前些天,试着编程解一下爱因斯坦出过一道著名的智力题,多年前就见过,当时尝试编程解决,失败了。经过几年编程实践,不参考别人的,看能不能独立写出一个比较好的算法。
//有五个具有五种不同颜色的房间;每个房间裏分别住著一个不同国籍的人;每个人都在喝一种特定品牌的饮料, // 抽一特定品牌的香烟,养一特定的宠物;没有任意两个人在抽相同品牌的香烟,或喝相同品牌的饮料,或养相同的宠物。 //1.英国人住在红色的房子裏; //2.瑞典人养狗作为宠物; //3.丹麦人喝茶; //4.绿房子紧挨著白房子,在白房子的左边; //5.绿房子的主人喝咖啡; //6.抽 Pall Mall 牌香烟的人养鸟; //7.黄色房子裏的人抽 Dunhill 牌香烟; //8.住在中间那个房子裏的人喝牛奶; //9.挪威人住在第一个房子裏(最左边); //10.抽 Blends 香烟的人和养猫的人相邻; //11.养马的人和抽 Dunhill 牌香烟的人相邻; //12.抽 BlueMaster 牌香烟的人喝啤酒; //13.德国人抽 Prince 牌香烟; //14.挪威人和住蓝房子的人相邻; //15.抽Blends 香烟的人和喝矿泉水的人相邻;
如今以不可同日而语之犀利眼光,一眼发现这些条件真面目,不过是一个个Predicate委托而已。当然先建五个枚举:
enum Color
{
Red,Green,Yellow,Blue,White
}
enum Nation
{
Britain,Norway,Danmark, Sweden,Germany
}
enum Pet
{
Bird,Horse,Cat,Dog,Fish
}
enum Drink
{
Tea, Beer, Coffee, Water,Milk
}
enum Smoke
{
Blends, BlueMaster, PallMall, DunHill, Prince
}
又刷刷刷地敲出了这样的代码:
3. Danish.Drink == Drink.Tea;
4. var guyInGreen = AllPeople.First(g=>g.HColor==HColor.Green);
var guyInWhite = AllPeople.First(g=>g.HColor==HColor.White);
guyInWhite.Position - guyInGreen.Position == 1;
5. guy = AllPeople.Where(g=>g.HColor==HColor.Green||g.Drink ==Drink.Coffee);
if(guy.Count() > 1) throw;
if(guy.HColor == Green) guy.Drink = Coffee;
……
写了几段,就意识到不对劲了。主要是每个条件最后一句,是该判断呢,还是该赋值呢?比如说如果一个人,住在红房子里,那他一定是英国人。那就要看这个人有哪些属性已经确定了。
而且,如果既现在既不确定哪个住红房子,也不知道谁是英国人,怎么办?经过反复思考,我想每个条件,除了能提供判断,以及合适时赋值,还要提供推断,即可能的方案以供尝试。先选一种方案,然后下个条件再判断现在的状态是否合法,是的话再提出一组方案,不然就选上一条件中的下一个方案。
想到这里,算法的轮廓大致浮现了出来。每个条件,将成为一个个Condition类的实例。而另一个领域模型,之前没有想到的类,已经呼之欲出,即将登上舞台成为主角。导演,自然是偶了。
这场好戏,现在该考虑故事背景了。想在潘多拉星球上拍神雕侠侣,大概观众会吐血,当然更别说种山楂树,观众不吐我都要吐了。在上下班路上,内心经过痛苦的斗争,偶决定放弃风花雪月的属性,因为给每个属性创建状态标识的成本太高。于是偶移师海阔天空的大自然,不加雕琢的Dictionary成了这部戏的主要外景。
class Guy
{
public Dictionary Properties = new Dictionary(6);
......
}
class PN //PropertyName
{
public const string Color = "Color";
public const string Pet = "Pet";
public const string Nation = "Nation";
public const string Drink = "Drink";
public const string Smoke = "Smoke";
public const string Postion = "Postion";
public static IEnumerable GetNames()
{
yield return Postion;
yield return Nation;
yield return Color;
yield return Drink;
yield return Pet;
yield return Smoke;
}
}
Guy类的主要函数,就是围绕Guy.Properties这个属性字典进行操作,如何封装取决于Condition类的实现。对于条件中单独一个属性,本来可以用 KeyValuePair<string,int>表示,不过太长,所以自己写了个Property类。要是类型能定义别名就好了。看题目中的条件,不少都是根据位置作判断的,所以位置是特殊的属性,如果能用来作Guy的主键,应该可以事半功倍。
下面,期待中的主角露出了庐山真面目,完全是我们以抽象思维创作出来艺术形像。其实很简单,但没艺术细胞的想不出,不会创作的写不出,大家认为呢?
class Attempt
{
public Guy[] Guys = new Guy[2];
public Property[] Properties = new Property[2];
public void Act()
{
Guys[0].SetProperty(Properties[0]);
if(Guys[1] !=null) Guys[1].SetProperty(Properties[1]);
}
public void RollBack()
{
Guys[0].RemoveProperty(Properties[0]);
if (Guys[1] != null) Guys[1].RemoveProperty(Properties[1]);
}
public Attempt(Property[] properties, Guy[] guys)
{
Guys = guys;
Properties = properties;
}
public Attempt(Property[] properties, Guy guy)
{
Guys[0] = Guys[1] = guy;
Properties = properties;
}
public Attempt(Property property, Guy guy)
{
Guys[0] = guy;
Properties[0] = property;
}
}
接着来参观下为主角量身打造的舞台吧,大导演拍大片,当然要打造大舞台,比世博园还大,看个样子就行了 :)
abstract class Condition
{
protected Property[] Properties = new Property[2];
protected Condition(Property p1, Property p2);
protected Condition() { }
public abstract MatchResult Match(IList guys, ref IList attempts);
}
///
/// 同人条件
///
class SameGuyCondition : Condition
{
public SameGuyCondition(Property p1, Property p2);
public override MatchResult Match(IList guys, ref IList attempts);
}
///
/// 相邻条件
///
class AdjacentCondition : Condition
{
RelativePosition Relation; //default is both
public AdjacentCondition(Property p1, Property p2);
public AdjacentCondition(Property p1, Property p2, RelativePosition relation);
public override MatchResult Match(IList guys, ref IList attempts);
}
这场戏分十几场来拍,有了前面的准备,剧本一气呵成:
class Puzzle
{
static IList conditions = new List();
public static void Start()
{
......
AddCondition(PN.Nation, Nation.Britain, PN.Color, Color.Red);
AddCondition(PN.Nation, Nation.Sweden, PN.Pet, Pet.Dog);
AddCondition(PN.Nation, Nation.Danmark, PN.Drink, Drink.Tea);
AddCondition(PN.Color, Color.Green, PN.Color, Color.White, RelativePosition.Left);
AddCondition(PN.Color, Color.Green, PN.Drink, Drink.Coffee);
AddCondition(PN.Smoke, Smoke.PallMall, PN.Pet, Pet.Bird);
AddCondition(PN.Color, Color.Yellow, PN.Smoke, Smoke.DunHill);
AddCondition(PN.Postion, 3, PN.Drink, Drink.Milk);
AddCondition(PN.Nation, Nation.Norway, PN.Postion, 1);
AddCondition(PN.Smoke, Smoke.Blends, PN.Pet, Pet.Cat, RelativePosition.Both );
AddCondition(PN.Pet, Pet.Horse, PN.Smoke, Smoke.DunHill, RelativePosition.Both);
AddCondition(PN.Smoke, Smoke.BlueMaster, PN.Drink, Drink.Beer);
AddCondition(PN.Smoke, Smoke.Prince, PN.Nation, Nation.Germany);
AddCondition(PN.Nation, Nation.Norway, PN.Color, Color.Blue, RelativePosition.Both);
AddCondition(PN.Drink, Drink.Water, PN.Smoke, Smoke.Blends, RelativePosition.Both);
......
}
}
看上去万事俱备,只欠东风了。事实上要借到东风,还须一些神通,最后一步还有一道难题,这么多场景如何串联在一起?这种戏偶以前从未拍过,考验功底的时候到了。在僵局的时刻,“搜索树”在脑中灵光一现,对,听这名字就是我要的。虽然不知所谓,也从未用过,但“树”我懂的啊。实话说,偶很讨厌写这些树啊图啊的,不过关键时刻,难不倒偶的。
class StepNode
{
///
/// The number of stage in the search tree, each stage match a condition
///
public Int32 Index;
StepNode[] Steps;
public StepNode Parent;
public Attempt Action;
///
/// The index indicates which step should be continued now, the previous steps has failed.
///
Int32 currentStepIndex;
Boolean Ending
{
get
{
if (Steps == null) return true;
return currentStepIndex >= Steps.Length;
}
}
public StepNode Next()
{
StepNode nextNode;
if (Ending)
{
if (Action != null) Action.RollBack();
nextNode = Parent.Next();
}
else nextNode = Steps[currentStepIndex];
currentStepIndex++;
return nextNode;
}
public StepNode Expand(IList attempts)
{
if (attempts != null || attempts.Count > 0)
{
Steps = new StepNode[attempts.Count];
for (int i = 0; i < attempts.Count; i++)
{
Steps[i] = new StepNode { Parent = this, Index = Index + 1, Action = attempts[i] };
}
}
else
{
Steps = new StepNode[] {
new StepNode { Parent = this, Index = Index + 1 }
};
}
return this;
}
}
class Puzzle
{
static IList conditions = new List();
static IList attempts = new List();
static IList guys;
public static void Start()
{
guys = GuyRuler.Init();
#region Init conditions
... ...
#endregion
var root = new StepNode();
GoFrom(root);
}
static void GoFrom(StepNode node)
{
if (node.Index >= conditions.Count) return;
if (node.Action != null) node.Action.Act();
var result = conditions[node.Index].Match(guys, ref attempts);
if (result == MatchResult.Fail)
{
if (node.Action != null) node.Action.RollBack();
node = node.Parent.Next();
}
else
{
node = node.Expand(attempts).Next();
}
GoFrom(node);
}
}
非常顺利,人就要敢于尝试和突破。照例,杀青前,测试下结果:
有点奇特是吧,结果差距怎么这么大?可千万别被迷惑了,由于输出结果时用了Enum的反射,这是个绝对的性能杀手。在我Core7200处理器,32位Win7电脑上,真正计算过程不到2ms!
附源代码下载,里面几个类都重写了ToString方法,在VS下调试时相当方便,这是其它开发环境望尘莫及的。怎么样,还是不够快啊。那好,下期再来优化它。