你好,下面是一个对应的三阶矩阵求逆的代码
import warningswarnings.filterwarnings("ignore")
matrix1 = [
[1,2,0,0],
[3,4,0,0],
[0,0,4,1],
[0,0,3,2],
]
matrix2 = [
[1,0,-1,2,1],
[3,2,-3,5,-3],
[2,2,1,4,-2],
[0,4,3,3,1],
[1,0,8,-11,4],
]
matrix3 = [
[1,0,-1,2,1,0,2],
[1,2,-1,3,1,-1,4],
[2,2,1,6,2,1,6],
[-1,4,1,4,0,0,0],
[4,0,-1,21,9,9,9],
[2,4,4,12,5,6,11],
[7,-1,-4,22,7,8,18],
]
def step0(m):
n = len(m)
l = []
for i in range(0,n):
l.append([])
for j in range(0,n):
if i == j:
l[i].append(1)
else:
l[i].append(0)
return l
def step1(m):
n = len(m)
"""交换操作记录数组 swap"""
swap = []
l = []
for i in range(0,n):
swap.append(i)
l.append([])
for j in range(0,n):
l[i].append(0)
"""对每一列进行操作"""
for i in range(0,n):
max_row = m[i][i]
row = i
for j in range(i,n):
if m[j][i] >= max_row:
max_row = m[j][i]
#global row
row = j
swap[i] = row
"""交换"""
if row != i:
for j in range(0,n):
m[i][j],m[row][j] = m[row][j],m[i][j]
"""消元"""
for j in range(i+1,n):
if m[j][i] != 0:
l[j][i] = m[j][i] / m[i][i]
for k in range(0,n):
m[j][k] = m[j][k] - (l[j][i] * m[i][k])
return (swap,m,l)
def step2(m):
n = len(m)
long = len(m)-1
l = []
for i in range(0,n):
l.append([])
for j in range(0,n):
l[i].append(0)
for i in range(0,n-1):
for j in range(0,long-i):
if m[long-i-j-1][long-i] != 0 and m[long-i][long-i] != 0:
l[long-i-j-1][long-i] = m[long-i-j-1][long-i] / m[long-i][long-i]
for k in range(0,n):
m[long-i-j-1][k] = m[long-i-j-1][k] - l[long-i-j-1][long-i] * m[long-i][k]
return (m,l)
def step3(m):
n = len(m)
l = []
for i in range(0,n):
l.append(m[i][i])
return l
def gauss(matrix):
n = len(matrix)
new = step0(matrix)
(swap,matrix1,l1) = step1(matrix)
(matrix2,l2) = step2(matrix1)
l3 = step3(matrix2)
for i in range(0,n):
if swap[i] != i:
new[i],new[swap[i]] = new[swap[i]],new[i]
for j in range(i+1,n):
for k in range(0,n):
if l1[j][i] != 0:
new[j][k] = new[j][k] - l1[j][i] * new[i][k]
for i in range(0,n-1):
for j in range(0,n-i-1):
if l2[n-1-i-j-1][n-1-i] != 0:
for k in range(0,n):
new[n-1-i-j-1][k] = new[n-1-i-j-1][k] - l2[n-1-i-j-1][n-i-1] * new[n-1-i][k]
for i in range(0,n):
for j in range(0,n):
new[i][j] = new[i][j] / l3[i]
return new
x1 = gauss(matrix1)
x2 = gauss(matrix2)
x3 = gauss(matrix3)
print (x1)
print (x2)
print (x3)
python求逆矩阵的方法:
第一步,点击键盘 win+r,打开运行窗口。在运行窗口中输入“cmd",点击enter键,打开windows命令行窗口。
第二步,在windows命令行窗口中,输入“python”,点击enter键,进入python的命令交互窗口。
第三步,使用import语句,引入numpy模块,并重命名为np。
第四步,使用函数np.array()创建矩阵一个矩阵A,其中z矩阵A是2x2的矩阵。
第五步,使用函数np.linalg.inv(A),求解矩阵A的逆矩阵。
第六步,使用函数np.array()创建矩阵一个矩阵B,其中矩阵B是3x3的矩阵。
第七步,使用函数np.linalg.inv(B),求解矩阵B的逆矩阵。
更多相关学习推荐,敬请访问python教程栏目~
1、有时候我们可能想让字符串倒序输出,下面给出几种方法方法一:通过索引的方法
[python] view plain copy print?
>>>strA = "abcdegfgijlk"
>>>strA[::-1]
'kljigfgedcba'
方法二:借组列表进行翻转
[python] view plain copy print?
#coding=utf-8
strA = raw_input("请输入需要翻转的字符串:")
order = []
for i in strA:
order.append(i)
order.reverse() #将列表反转
print ''.join(order)#将list转换成字符串
执行结果:
[python] view plain copy print?
请输入需要翻转的字符串:abcdeggsdd
ddsggedcba