工作扫雷机

Question

类似于生成扫雷船栅格，尽管挑战是如何制作一个工作的扫雷舰网格。这将是更长的代码比正常(我认为)。

更多关于扫雷船的信息更多关于扫雷船的信息.

扫雷舰是在大多数操作系统上发现的一种逻辑游戏。游戏的目标是确定地雷在网格上的位置，给出指示该地点周围地雷数量的数字。

必需的特性：

-Randomized mine generation
-8x8 field with 10 mines
-Mine and "unknown" flags
-Reveal nearby blank spaces when a blank space has been revealed.
-Input and output code: It must be playable.  (Input and output code counts in the total)

关于

评分的注记

Anything that is needed to make the program work is counted.
If it can be deleted and not affect the program, get rid of it.
I will occasionally update the selected answer to shorter programs if needed.

在计算机科学课上，我遇到了一个更具体的版本:用visual中最短的行数制作一个工作版本(我有57行)，我认为这对代码高尔夫来说是一个有趣的挑战。如果有任何改进这个问题的建议，请评论。以字节为单位的最短代码获胜。

Answer 1

Python2.7(487 C)

"""
char meaning:
    '?': unknown flag
    '!': mine flag
    'x': default
how to play:
    Input 3 chars each time. The first char is the action
    and the rest form a position. For example, '013' means
    uncover grid (1,3), '110' means flag the grid (1,0).

    The top-left corner is (0, 0), bottom-left (7,0), etc.

    Player will lose after uncover a mine, the program will 
    output "Bom". If the Player uncovers all grid that do 
    not contain a mine, he wins and the program will output 
    "Win".
"""
import random as Z
S=sum
M=map
T=range
P=[(i,j)for i in T(8)for j in T(8)]
C=dict(zip(T(-3,9),'?!x012345678'))
m={p:-1 for p in P}
h=Z.sample(P,10)
def U(p):
 if m[p]>=0:return 0
 n=filter(lambda(c,d):0<max(abs(p[0]-c),abs(p[1]-d))<2,P)
 m[p]=s=S((x in h)for x in n)
 return(1 if s else S(M(U,n))+1,-1)[p in h]
s=u=0
while(s<54)&(u>-1):
 f,i,j=M(int,raw_input(''.join((C[m[x]]+'\n '[x[1]<7])for x in P)))
 p=i,j;c=m[p]
 if f*(c<0):m[p]=-1-(-c)%3
 else:u=U(p);s+=u
print'WBionm'[s<54::2]

完整的游戏体验：

x x x x x x x x
x x x x x x x x
x x x x x x x x
x x x x x x x x
x x x x x x x x
x x x x x x x x
x x x x x x x x
x x x x x x x x
000
0 0 1 x x x x x
0 0 2 x x x x x
0 0 2 x x x x x
0 0 1 2 x x x x
0 0 0 1 x x x x
1 1 0 2 x x x x
x 1 0 2 x x x x
x 1 0 1 x x x x
070
0 0 1 x x x x x
0 0 2 x x x x x
0 0 2 x x x x x
0 0 1 2 x x x x
0 0 0 1 x x x x
1 1 0 2 x x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
123
0 0 1 x x x x x
0 0 2 x x x x x
0 0 2 ! x x x x
0 0 1 2 x x x x
0 0 0 1 x x x x
1 1 0 2 x x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
113
0 0 1 x x x x x
0 0 2 ! x x x x
0 0 2 ! x x x x
0 0 1 2 x x x x
0 0 0 1 x x x x
1 1 0 2 x x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
003
0 0 1 1 x x x x
0 0 2 ! x x x x
0 0 2 ! x x x x
0 0 1 2 x x x x
0 0 0 1 x x x x
1 1 0 2 x x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
004
0 0 1 1 1 x x x
0 0 2 ! x x x x
0 0 2 ! x x x x
0 0 1 2 x x x x
0 0 0 1 x x x x
1 1 0 2 x x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
014
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! x x x x
0 0 1 2 x x x x
0 0 0 1 x x x x
1 1 0 2 x x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
154
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! x x x x
0 0 1 2 x x x x
0 0 0 1 x x x x
1 1 0 2 ! x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
044
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! x x x x
0 0 1 2 x x x x
0 0 0 1 1 x x x
1 1 0 2 ! x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
034
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! x x x x
0 0 1 2 3 x x x
0 0 0 1 1 x x x
1 1 0 2 ! x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
035
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! x x x x
0 0 1 2 3 3 x x
0 0 0 1 1 x x x
1 1 0 2 ! x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
045
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! x x x x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! x x x
x 1 0 2 x x x x
1 1 0 1 x x x x
055
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! x x x x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 x x x x
1 1 0 1 x x x x
124
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! ! x x x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 x x x x
1 1 0 1 x x x x
164
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! ! x x x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 ! x x x
1 1 0 1 x x x x
174
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! ! x x x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 ! x x x
1 1 0 1 ! x x x
074
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! ! x x x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 ! x x x
1 1 0 1 1 x x x
125
0 0 1 1 1 x x x
0 0 2 ! 4 x x x
0 0 2 ! ! ! x x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 ! x x x
1 1 0 1 1 x x x
005
0 0 1 1 1 1 x x
0 0 2 ! 4 x x x
0 0 2 ! ! ! x x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 ! x x x
1 1 0 1 1 x x x
015
0 0 1 1 1 1 x x
0 0 2 ! 4 4 x x
0 0 2 ! ! ! x x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 ! x x x
1 1 0 1 1 x x x
126
0 0 1 1 1 1 x x
0 0 2 ! 4 4 x x
0 0 2 ! ! ! ! x
0 0 1 2 3 3 x x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 ! x x x
1 1 0 1 1 x x x
036
0 0 1 1 1 1 x x
0 0 2 ! 4 4 x x
0 0 2 ! ! ! ! x
0 0 1 2 3 3 3 x
0 0 0 1 1 1 x x
1 1 0 2 ! 2 x x
x 1 0 2 ! x x x
1 1 0 1 1 x x x
046
0 0 1 1 1 1 x x
0 0 2 ! 4 4 x x
0 0 2 ! ! ! ! x
0 0 1 2 3 3 3 2
0 0 0 1 1 1 0 0
1 1 0 2 ! 2 0 0
x 1 0 2 ! 2 0 0
1 1 0 1 1 1 0 0
127
0 0 1 1 1 1 x x
0 0 2 ! 4 4 x x
0 0 2 ! ! ! ! !
0 0 1 2 3 3 3 2
0 0 0 1 1 1 0 0
1 1 0 2 ! 2 0 0
x 1 0 2 ! 2 0 0
1 1 0 1 1 1 0 0
007
0 0 1 1 1 1 x 1
0 0 2 ! 4 4 x x
0 0 2 ! ! ! ! !
0 0 1 2 3 3 3 2
0 0 0 1 1 1 0 0
1 1 0 2 ! 2 0 0
x 1 0 2 ! 2 0 0
1 1 0 1 1 1 0 0
017
0 0 1 1 1 1 x 1
0 0 2 ! 4 4 x 3
0 0 2 ! ! ! ! !
0 0 1 2 3 3 3 2
0 0 0 1 1 1 0 0
1 1 0 2 ! 2 0 0
x 1 0 2 ! 2 0 0
1 1 0 1 1 1 0 0
016
Win

不过，最后一步是危险的。

Answer 2

Javascript，978字节(824没有CSS)

http://jsbin.com/otayez/6/

核对表：

Randomized mine generation - yes
8x8 field with 10 mines - yes
Mine flags - Yes
"unknown" flags - no
Reveal nearby blank spaces when a blank space has been revealed. - yes
Input and output code: It must be playable. - yes

联署材料：

(function(){
    f=Math.floor;r=Math.random;b=8,s=[-1,0,1],o='',m='*',l=0;

    for(g=[i=b];i;)g[--i]=[0,0,0,0,0,0,0,0];
    for(i=10,a=f(r()*64);i--;g[f(a/b)][a%b]=m)while(g[f(a/b)][a%b])a=f(r()*64);
    for(i=64;i--;z.id='b'+(63-i),c.appendChild(z))z=document.createElement('button');
    for(d=b;d--;)
      for(r=b;r--;)
        s.map(function(y){
          s.map(function(x){
            if(g[d][r]!=m&&g[d+y]&&g[d+y][r+x]==m)g[d][r]++;
          });
        });

    c.onclick=function(e){
        var t=e.target,
            i=t.id.slice(1),
            x=i%b,
            y=f(i/b),
            n=t.className=='b';

      if(t.innerHTML||(n&&!e.ctrlKey))return;
      if(e.ctrlKey)return t.className=(n?'':'b')

      if(q(x,y))alert('boom')
      if(l==54)alert('win')
    };
  function q(x,y){
    if(x<0||x>7||y<0||y>7)return;

    var p=y*b+x,
        v=g[y][x],
        t=document.all['b'+p];

    if(v!=m&&!t.innerHTML){
      t.innerHTML=g[y][x];
      t.className='f';
      l++;
      if(!v){t.className='z';s.map(function(d){s.map(function(r){q(x+r,y+d)})})}
    }
    return v==m
  }
})();

MiniJS 812字节：

f=Math.floor;r=Math.random;b=8,s=[-1,0,1],o='',m='*',l=0,h='b';for(g=[i=b];i;)g[--i]=[0,0,0,0,0,0,0,0];for(i=10,a=f(r()*64);i--;g[f(a/b)][a%b]=m)while(g[f(a/b)][a%b])a=f(r()*64);for(i=64;i--;z.id=h+(63-i),c.appendChild(z))z=document.createElement('button');for(d=b;d--;)for(r=b;r--;)s.map(function(y){s.map(function(x){if(g[d][r]!=m&&g[d+y]&&g[d+y][r+x]==m)g[d][r]++})});c.onclick=function(e){var t=e.target,i=t.id.slice(1),n=t.className==h;if(t.innerHTML||(n&&!e.ctrlKey))return;if(e.ctrlKey)return t.className=(n?'':h);if(q(i%b,f(i/b)))alert('boom');if(l==54)alert('win')};function q(x,y){if(x<0||x>7||y<0||y>7)return;var p=y*b+x,v=g[y][x],t=document.all[h+p];if(v!=m&&!t.innerHTML){t.innerHTML=g[y][x];t.className='f';l++;if(!v){t.className='z';s.map(function(d){s.map(function(r){q(x+r,y+d)})})}}return v==m}

HTML 12字节

<div id="c">

从功能的角度来看，CSS不是必需的，而是从可用性的角度出发的：

#c{
  width:300px;
  height:300px;
}
button{
  width:12.5%;
  height:12.5%;
  line-height:30px;
}
.f,.z{
  background:#fff;
  border:solid 1px #fff;
}
.z{
  color:#fff;
}
.b{background:#f00}

迷你CSS 154字节：

#c{width:300px;height:300px}button{width:12.5%;height:12.5%;line-height:30px}.f,.z{background:#fff;border:solid 1px #fff}.z{color:#fff}.b{background:#f00}

Answer 3

Dyalog APL，113个字节

{⎕←1 0⍕c+○○h⋄10=+/,h:1⋄m⌷⍨i←⎕:0⋄∇{~⍵⌷h:0⋄(⍵⌷h)←0⋄0=⍵⌷c:∇¨(,⍳⍴m)∩⍵∘+¨,2-⍳3 3⋄0}i}h←=⍨c←{⍉3+/0,⍵,0}⍣2⊢m←8 8⍴10≥?⍨64

非竞争:没有“我的”和“未知的”旗帜。

打印未打开单元格的*和打开的数字(包括0)

反复要求用户打开单元格的基于1的坐标。

最终输出失败时的0 (我打开的)或成功时的1 (只有10个未打开)

看起来是这样的：

********
********
********
********
********
********
********
********
⎕:
      1 1
00000000
11012321
*112****
********
********
********
********
********
⎕:
      3 8
00000000
11012321
*112***1
********
********
********
********
********
⎕:
      4 7
00000000
11012321
*112***1
******3*
********
********
********
********
⎕:

..。