list=[]
for x in range(1,5):
for y in range(1,5):
for z in range(1,5):
if(x!=y and x!=z and y!=z):
list.append(x*100+y*10+z)
list.sort()
print(list)
count = 0
for x in range(1,5):
for y in range(1,5):
for z in range(1,5):
if x != y and x!= z and y != z:
count += 1
print(int(str(x)+str(y)+str(z)))
print('一共有 %d 个数'%count)
for x in range(1,5):
for y in range(1,5):
for z in range(1,5):
if x != y andx != z and y != z:
print(x,y,z)
for i in range(1,5):
for j in range(1,5):
for k in range(1,5):
if(i==j or i==k or j==k):
continue
else:
gewei=k
shiwei=j
baiwei=i
number=str(baiwei)+str(shiwei)+str(gewei)
print(number)
sum=0
for i in range(1,5):
for j in range(1,5):
for k in range(1,5):
if i!=j and i!=k and j!=k :
sum+=1
num=i*100+j*10+k
print(num)
print(sum)
for x in range(1,5):
for y in range(1,5):
for z in range(1,5):
if x != y and x != z and y !=z:
print(x,y,z)
sum = 0
for a in range(1,5):
for b in range(1,5):
for c in range(1,5):
if (a != b) and(b !=c) and (a != c ):
temp = a*100 + b*10 +c
sum += 1
print(temp,end=" ")
print(sum)
本帖最后由 wwyy 于 2018-12-15 14:22 编辑
result = []
number =
for i in range(0,4):
for m in range(0,4):
if i == m:
continue
for n in range(0,4):
if n == m or n == i:
continue
result.append(number*100+number*10+number)
result
len(result)
24
自己写了几个不同的版本
第一个版本是比较容易想到比较简单的一种。
#基础版
num=0
for a in range(1,5):
for b in range(1, 5):
for c in range(1, 5):
if a != b and a != c and b != c:
print (a*100+b*10+c)
num += 1
第二个版本是使用了list的版本
#列表版
mylist=
print (mylist)
newlist =list()
for x in mylist:
for y in mylist:
for z in mylist:
if x!=y and y!=z and z!=x:
newlist.append(x*100+y*10+z)
print ('共有',len(newlist),'个')
print (newlist)
第三个版本是list改进版
#列表进阶版
mylist=
print (mylist)
newlist=
print ('共有',len(newlist),'个')
print (newlist)
第四个版本是使用set的版本
#集合版
mylist=
print (mylist)
myset=set()
myset.update(x*100+y*10+z for x in mylist for y in mylist for z in mylist if x!=y and y!=z and x!=z)
print ('共有',len(myset),'个')
print (myset)
第五个版本是使用了itertools
#迭代器版
#既可以用list也可以用set,若用set,则将第四行最外层的[]改为{}
import itertools
mylist=*100+x*10+x for x in itertools.permutations(,3)]
print ('共有',len(mylist),'个')
print (mylist)
for a in range(1,5):
for b in range(1,5):
for c in range(1,5):
if a !=b and a!=c and b!=c:
print(a,b,c)
1 2 3
1 2 4
1 3 2
1 3 4
1 4 2
1 4 3
2 1 3
2 1 4
2 3 1
2 3 4
2 4 1
2 4 3
3 1 2
3 1 4
3 2 1
3 2 4
3 4 1
3 4 2
4 1 2
4 1 3
4 2 1
4 2 3
4 3 1
4 3 2
本帖最后由 nnxiaod 于 2018-12-31 11:22 编辑
看了各位大佬的五体投地。。。{:10_250:}
numbers = (1, 2, 3, 4)
result = []
i, j, k = 0, 0, 0
while i < 4:
while j < 4:
while k < 4:
if numbers != numbers and numbers != numbers and numbers != numbers:
result.append(numbers * 100 + numbers * 10 + numbers)
k += 1
j += 1
k = 0
i += 1
j = 0
print(len(result))
print(result)
for i in range(1,5):
for j in range(1,5):
for k in range(1,5):
if (i != j) and (i != k) and (j != k):
print(i, end="")
print(j, end="")
print(k, end="")
print()
for i in range(1,5):
for j in range(1,5):
for k in range(1,5):
if i != k and i != j and j != k:
print(i,j,k)
arr = []
for a in range(1,5):
for b in range(1,5):
for c in range(1,5):
if((a!=b) and(a!=c)and(b!=c)):
tem = a*100 + b*10 + c
arr.append(tem)
print('共有%d个互不相同且无重复数字的三位数'%len(arr))
print('他们是')
for i,j in enumerate(arr):
print('第%d个数字是:'%(i+1),j)
#枚举函数 enumerate 可以获得索引和值
for a in range(1,5):
for b in range(1,5):
for c in range(1,5):
if a != b != c:
print(a,b,c)
#有四个数字:1、2、3、4,能组成多少个互不相同且无重复数字的三位数?各是多少?
for i in range(1,5):
for j in range(1,5):
for k in range(1,5):
if (i != j) and (j != k) and (i != k):
print(i,j,k)
sum=0
for i in range(1,5):
for j in range (1,5):
for k in range (1,5):
if i != j and i!= k and j!= k:
print (i,j,k)
sum=sum+1
print('共有',sum,'种组合')
for i in range(1,5):
for j in range(1,5):
for k in range(1,5):
if i != j and i != k and j != k:
print(i,j,k)
num=0
for i in range(1,5):
for j in range(1,5):
if i==j:
continue
for k in range(1,5):
if i==k:
continue
elif j==k:
continue
else:
num+=1
print(i*100+j*10+k)
print(num)
本帖最后由 zjhahaha 于 2019-3-18 11:04 编辑
ll=[]
for i in range(1,5):
for j in range(1,5):
if i == j:
continue
else:
for k in range(1,5):
if i != k and i != j and j != k:
ls=[]
ls.append(i)
ls.append(j)
ls.append(k)
ll.append(tuple(ls))
#print(i,j,k)
print(len(ll))
for w in ll:
print(w)
24
(1, 2, 3)
(1, 2, 4)
(1, 3, 2)
(1, 3, 4)
(1, 4, 2)
(1, 4, 3)
(2, 1, 3)
(2, 1, 4)
(2, 3, 1)
(2, 3, 4)
(2, 4, 1)
(2, 4, 3)
(3, 1, 2)
(3, 1, 4)
(3, 2, 1)
(3, 2, 4)
(3, 4, 1)
(3, 4, 2)
(4, 1, 2)
(4, 1, 3)
(4, 2, 1)
(4, 2, 3)
(4, 3, 1)
(4, 3, 2)
ll=[]
for i in range(1,5):
for j in range(1,5):
#减少循环步骤
if i == j:
continue
else:
for k in range(1,5):
if i != k and i != j and j != k:
ls=[]
ls.append(i)
ls.append(j)
ls.append(k)
ll.append(tuple(ls))
#print(i,j,k)
print(“可组成的数量为{}”.format(len(ll)))
for w in ll:
print("组成:"+w)
File "<ipython-input-5-5f40a9f002fc>", line 17
print(“可组成的数量为{}”.format(len(ll)))
^
SyntaxError: invalid character in identifier
"
ll=[]
for i in range(1,5):
for j in range(1,5):
#减少循环步骤
if i == j:
continue
else:
for k in range(1,5):
if i != k and i != j and j != k:
ls=[]
ls.append(i)
ls.append(j)
ls.append(k)
ll.append(tuple(ls))
#print(i,j,k)
print("可组成的数量为{}.format(len(ll)))
for w in ll:
print("组成:"+w)
File "<ipython-input-6-d50335e9eabf>", line 17
print("可组成的数量为{}.format(len(ll)))
^
SyntaxError: EOL while scanning string literal
ll=[]
for i in range(1,5):
for j in range(1,5):
#减少循环步骤
if i == j:
continue
else:
for k in range(1,5):
if i != k and i != j and j != k:
ls=[]
ls.append(i)
ls.append(j)
ls.append(k)
ll.append(tuple(ls))
#print(i,j,k)
print("可组成的数量为{}.format(len(ll)))
for w in ll:
print("组成:"+w)
File "<ipython-input-7-d50335e9eabf>", line 17
print("可组成的数量为{}.format(len(ll)))
^
SyntaxError: EOL while scanning string literal
ll=[]
for i in range(1,5):
for j in range(1,5):
#减少循环步骤
if i == j:
continue
else:
for k in range(1,5):
if i != k and i != j and j != k:
ls=[]
ls.append(i)
ls.append(j)
ls.append(k)
ll.append(tuple(ls))
#print(i,j,k)
print("可组成的数量为{}".format(len(ll)))
for w in ll:
print("组成:{}".format(w))
可组成的数量为24
组成:(1, 2, 3)
组成:(1, 2, 4)
组成:(1, 3, 2)
组成:(1, 3, 4)
组成:(1, 4, 2)
组成:(1, 4, 3)
组成:(2, 1, 3)
组成:(2, 1, 4)
组成:(2, 3, 1)
组成:(2, 3, 4)
组成:(2, 4, 1)
组成:(2, 4, 3)
组成:(3, 1, 2)
组成:(3, 1, 4)
组成:(3, 2, 1)
组成:(3, 2, 4)
组成:(3, 4, 1)
组成:(3, 4, 2)
组成:(4, 1, 2)
组成:(4, 1, 3)
组成:(4, 2, 1)
组成:(4, 2, 3)
组成:(4, 3, 1)
组成:(4, 3, 2)