问题
Using Python, reverse an integer and determine if it is a palindrome. Here is my definition of reverse and palindrome. Do I have a correct logic?
def reverse(num):
s=len(num)
newnum=[None]*length
for i in num:
s=s-1
newnum[s]=i
return newnum
def palindrome(num):
a=str(num)
l=len(z)/2
if a[:1]==a[-1:][::-1]:
b=True
else:
b=False
I am having some trouble to write def main.
回答1:
def palindrome(num):
return str(num) == str(num)[::-1]
回答2:
Integer numbers don't have len().
Testing if a number is a palindrome is as simple as testing if the number is equal to its reverse (though if you want maximum efficiency you can just compare characters from both ends of the string until you reach the middle).
To find the reverse of an integer you can either do it the hard way (using mod % and integer division // to find each digit and construct the reverse number):
def reverse(num):
rev = 0
while num > 0:
rev = (10*rev) + num%10
num //= 10
return rev
Or the easy way (turning the number into a string, using slice notation to reverse the string and turning it back to an integer):
def reverse(num):
return int(str(num)[::-1])
回答3:
This is an unreadable one-line recursive implementation based in part on the answer by pedrosorio.
def reverse(i):
return int(i!=0) and ((i%10)*(10**int(math.log(i,10))) + reverse(i//10))
def is_palindrome(i):
return i == reverse(i)
It works for integer i ≥ 0.
Note that reverse(123) == reverse(1230) == 321. This is not a problem, considering any nonzero integer that ends with 0 cannot be a palindrome anyway.
Note also that complete reversal of the integer may of course not be necessary to determine if it's a palindrome. The reversal may be implemented so as to be aborted early if the number is determined to not be a palindrome.
回答4:
Long but readable:
def palindrome(x):
a=""
x=str(x)
for i in range(len(x),0,-1):
a+=x[i-1]
print a
if a==x:
return True
else:
return False
回答5:
def revers(num):
rev = 0
while(num > 0):
rem = num %10
rev = (rev *10) + rem
num = num //10
return num
回答6:
I used a list for this program, works with strings too.
print('Enter Something')
a = list(input())
for i in range ((len(a)),0,-1):
print (a[i-1],end='')
回答7:
import math
a = raw_input("Enter number:")
n = -1
reverse = 0
for i in a:
n += 1
digit = math.pow(10,n)
reverse = int(i)*digit + reverse
print int(reverse)
if int(reverse) == int(a):
print "Palindrome"
else:
print ":("
回答8:
This code converts int to String and then checks if the string is pallindrome. The advantage is that it is fast, the disadvantage being that it converts int to String thereby compromising with the perfect solution to question.
It handles negative int as well.
class Solution:
def isPalindrome(self, x):
"""
:type x: int
:rtype: bool
"""
s = str(x)
if x >=0 :
if s == s[::-1]:
return True
else:
return False
else:
return False
回答9:
t=int(input("enter nos of test cases= "))
while t>0:
n=int(input("enter number="))
rev=0
while n>0:
digit=n%10
rev=rev*10+digit
n=n//10
print(rev)
t-=1
回答10:
Here is my solution.
z=input('input number')
if int(z) == int(str(z)[::-1]):
print('The number is palindrome')
else:
print('The number is not palindrome')
回答11:
I try to come out with this myself.
def number():
n = int(input("Enter a number: "))
return n
def reverse(n):
total = ""
while n > 0:
a = n % 10
n//= 10
total+= str(a)
return total
def palindrome (n):
total = 0
while n > 0:
a = n % 10
n//= 10
total+= a
if total == n:
x = "This number has a palindrome"
else:
x = ""
return x
n = number()
print (reverse(n))
print (palindrome(n))
回答12:
original = raw_input("Enter a no = ") #original = number entered by user
rev = original[::-1] #rev = reverse of original by useing scope resolution
print 'rev of original no =',rev
if original == rev:
print "no's are equal"
else:
print "no's are not equal"
来源:https://stackoverflow.com/questions/13059540/using-python-reverse-an-integer-and-tell-if-palindrome