52

I have a function here that converts decimal to hex but it prints it in reverse order. How would I fix it?

def ChangeHex(n):
    if (n < 0):
        print(0)
    elif (n<=1):
        print(n)
    else:
        x =(n%16)
        if (x < 10):
            print(x), 
        if (x == 10):
            print("A"),
        if (x == 11):
            print("B"),
        if (x == 12):
            print("C"),
        if (x == 13):
            print("D"),
        if (x == 14):
            print("E"),
        if (x == 15):
            print ("F"),
        ChangeHex( n / 16 )
2

23 Answers 23

100

What about this:

hex(dec).split('x')[-1]

Example:

>>> d = 30
>>> hex(d).split('x')[-1]
'1e'

~Rich

By using -1 in the result of split(), this would work even if split returned a list of 1 element.

1
46

This isn't exactly what you asked for but you can use the "hex" function in python:

>>> hex(15)
'0xf'
2
  • print hex(15); TypeError: 'str' object is not callable Jun 28 '16 at 3:07
  • 2
    @Babbit Then you're doing something wrong. You probably named a variable hex or something.
    – Zizouz212
    Oct 7 '16 at 20:42
26

If you want to code this yourself instead of using the built-in function hex(), you can simply do the recursive call before you print the current digit:

def ChangeHex(n):
    if (n < 0):
        print(0)
    elif (n<=1):
        print n,
    else:
        ChangeHex( n / 16 )
        x =(n%16)
        if (x < 10):
            print(x), 
        if (x == 10):
            print("A"),
        if (x == 11):
            print("B"),
        if (x == 12):
            print("C"),
        if (x == 13):
            print("D"),
        if (x == 14):
            print("E"),
        if (x == 15):
            print ("F"),
3
  • 7
    @Apostolos No, I don't think it is. What makes you think so? However, I think it's useful for the original poster of the question to learn how to fix their code, even though it's not the solution i'd recommend to go with in "real" code. Jan 6 '18 at 7:22
  • ChangeHex( n / 16 ) or ChangeHex( n // 16 ) ?
    – sortas
    Dec 20 '18 at 14:53
  • 2
    @sortas n // 16 in Python 3. This answer was written for Python 2, and in that version the two are equivalent. (I tried to make the minimal change to the code in the question to make it work.) Dec 20 '18 at 15:43
26

I think this solution is elegant:

def toHex(dec):
    digits = "0123456789ABCDEF"
    x = (dec % 16)
    rest = dec // 16
    if (rest == 0):
        return digits[x]
    return toHex(rest) + digits[x]

numbers = [0, 11, 16, 32, 33, 41, 45, 678, 574893]
print [toHex(x) for x in numbers]
print [hex(x) for x in numbers]

This output:

['0', 'B', '10', '20', '21', '29', '2D', '2A6', '8C5AD']
['0x0', '0xb', '0x10', '0x20', '0x21', '0x29', '0x2d', '0x2a6', '0x8c5ad']
19

I use

"0x%X" % n

where n is the decimal number to convert.

15

If without '0x' prefix:

'{0:x}'.format(int(dec))

else use built-in hex() funtion.

1
15

Python's string format method can take a format spec.

From decimal to binary

"{0:b}".format(154)
'10011010'

From decimal to octal

"{0:o}".format(154)
'232'

From decimal to hexadecimal

"{0:x}".format(154)
'9a'

Format spec docs for Python 2

Format spec docs for Python 3

2

If you need even numbers of chars to be returned, you can use:

def int_to_hex(nr):
  h = format(int(nr), 'x')
  return '0' + h if len(h) % 2 else h

Example

int_to_hex(10) # returns: '0a'

and

int_to_hex(1000) # returns: '03e8'

1
  • Perfect solution, plus the examples. Thank you sir.
    – Meto
    Dec 22 '20 at 8:04
2

you can use this method which uses slicing

output = hex(15)[2:]

which cuts out the first 2 characters (0x) from the output

2

It is good to write your own functions for conversions between numeral systems to learn something. For "real" code I would recommend to use build in conversion function from Python like bin(x), hex(x), int(x).

1
def main():
    result = int(input("Enter a whole, positive, number to be converted to hexadecimal: "))
    hexadecimal = ""
    while result != 0:
        remainder = changeDigit(result % 16)
        hexadecimal = str(remainder) + hexadecimal
        result = int(result / 16)
    print(hexadecimal)

def changeDigit(digit):
    decimal =     [10 , 11 , 12 , 13 , 14 , 15 ]
    hexadecimal = ["A", "B", "C", "D", "E", "F"]
    for counter in range(7):
        if digit == decimal[counter - 1]:
            digit = hexadecimal[counter - 1]
    return digit

main()

This is the densest I could make for converting decimal to hexadecimal. NOTE: This is in Python version 3.5.1

1

Apart from using the hex() inbuilt function, this works well:

letters = [0,1,2,3,4,5,6,7,8,9,'A','B','C','D','E','F']
decimal_number = int(input("Enter a number to convert to hex: "))
print(str(letters[decimal_number//16])+str(letters[decimal_number%16]))

However this only works for converting decimal numbers up to 255 (to give a two diget hex number).

1
def tohex(dec):
    x = (dec%16)
    igits = "0123456789ABCDEF"
    digits = list(igits)
    rest = int(dec/16)
    if (rest == 0):
        return digits[x]
    return tohex(rest) + digits[x]

numbers = [0,16,32,48,46,2,55,887]
hex_ = ["0x"+tohex(i) for i in numbers]
print(hex_)
1

I recently made this python program to convert Decimal to Hexadecimal, please check this out. This is my first Answer in stack overflow .

decimal = int(input("Enter the Decimal no that you want to convert to Hexadecimal : "))
intact = decimal
hexadecimal = ''
dictionary = {1:'1',2:'2',3:'3',4:'4',5:'5',6:'6',7:'7',8:'8',9:'9',10:'A',11:'B',12:'C',13:'D',14:'E',15:'F'}

while(decimal!=0):
    c = decimal%16 
    hexadecimal =  dictionary[c] + hexadecimal 
    decimal = int(decimal/16)

print(f"{intact} is {hexadecimal} in Hexadecimal")

When you Execute this code this will give output as:

Enter the Decimal no that you want to convert to Hexadecimal : 2766

2766 is ACE in Hexadecimal

0

Instead of printing everything in the function, you could just allow it to return the value in hex, and do whatever you want with it.

def ChangeHex(n):
    x = (n % 16)
    c = ""
    if (x < 10):
        c = x
    if (x == 10):
        c = "A"
    if (x == 11):
        c = "B"
    if (x == 12):
        c = "C"
    if (x == 13):
        c = "D"
    if (x == 14):
        c = "E"
    if (x == 15):
        c = "F"

    if (n - x != 0):
        return ChangeHex(n / 16) + str(c)
    else:
        return str(c)

print(ChangeHex(52))

There are probably more elegant ways of parsing the alphabetic components of the hex, instead of just using conditionals.

0

A version using iteration:

def toHex(decimal):
    hex_str = ''
    digits = "0123456789ABCDEF"
    if decimal == 0:
       return '0'

    while decimal != 0:
        hex_str += digits[decimal % 16]
        decimal = decimal // 16

    return hex_str[::-1] # reverse the string

numbers = [0, 16, 20, 45, 255, 456, 789, 1024]
print([toHex(x) for x in numbers])
print([hex(x) for x in numbers])
0
hex_map = {0:0, 1:1, 2:2, 3:3, 4:4, 5:5, 6:6, 7:7, 8:8, 9:9, 10:'A', 11:'B', 12:'C', 13:'D', 14:'E', 15:'F'}

def to_hex(n):
    result = ""
    if n == 0:
        return '0'
    while n != 0:
        result += str(hex_map[(n % 16)])
        n = n // 16
    return '0x'+result[::-1]
0
n = eval(input("Enter the number:"))
def ChangeHex(n):
    if (n < 0):
        print(0)
    elif (n<=1):
        print(n),
    else:
        ChangeHex( n / 16 )
        x =(n%16)
        if (x < 10):
            print(x), 
        if (x == 10):
            print("A"),
        if (x == 11):
            print("B"),
        if (x == 12):
            print("C"),
        if (x == 13):
            print("D"),
        if (x == 14):
            print("E"),
        if (x == 15):
            print ("F"),
0

This is the best way I use it

hex(53350632996854).lstrip("0x").rstrip("L")
# lstrip helps remove "0x" from the left  
# rstrip helps remove "L" from the right 
# L represents a long number

Example:

>>> decimal = 53350632996854
>>> hexadecimal = hex(decimal).lstrip("0x")
>>> print(hexadecimal)
3085a9873ff6

if you need it Upper Case, Can use "upper function" For Example:

decimal = 53350632996854
hexadecimal = hex(decimal).lstrip("0x").upper()
print(hexadecimal)
3085A9873FF6
0

In order to put the number in the correct order i modified your code to have a variable (s) for the output. This allows you to put the characters in the correct order.

s=""
def ChangeHex(n):
    if (n < 0):
        print(0)
    elif (n<=1):
        print(n)
    else:
        x =(n%16)
        if (x < 10):
            s=str(x)+s, 
        if (x == 10):
            s="A"+s,
        if (x == 11):
            s="B"+s,
        if (x == 12):
            s="C"+s,
        if (x == 13):
            s="D"+s,
        if (x == 14):
            s="E"+s,
        if (x == 15):
            s="F"+s,
        ChangeHex( n / 16 )        

NOTE: This was done in python 3.7.4 so it may not work for you.

-1

non recursive approach to convert decimal to hex

def to_hex(dec):

    hex_str = ''
    hex_digits = ('0','1','2','3','4','5','6','7','8','9','A','B','C','D','E','F')
    rem = dec % 16

    while dec >= rem:
        remainder = dec % 16
        quotient = dec / 16
        if quotient == 0:
            hex_str += hex_digits[remainder]
        else:
            hex_str += str(remainder)
        dec = quotient

    return hex_str[::-1] # reverse the string
-1
dec = int(input("Enter a number below 256: "))
hex1 = dec // 16

if hex1 >= 10:
    hex1 = hex(dec)

hex2 = dec % 16
if hex2 >= 10:
    hex2 = hex(hex2)

print(hex1.strip("0x"))

Works well.

0
-2

This code is Incomplite/-\ Max input is 159

def DicToHex(lsdthx, number, resault):
   bol = True
   premier = 0
   for i in range(number):
      for hx in lsdthx:
        if hx <= number:
            if number < 16:
                if hx > 9:
                    resault += lsdthx[hx]
                else:
                    resault += str(lsdthx[hx])
                number -= hx
            else:
                while bol:
                    if number - 16 >= 0:
                        number -= 16
                        premier += 1
                    else:
                        resault += str(premier)
                        bol = False
      return resault

dthex = {15:'F', 14:'E', 13:'D', 12:'C', 11:'B', 10:'A', 9:9, 8:8, 7:7,6:6, 5:5, 4:4, 3:3, 2:2, 1:1}
reslt = ''
num = int(input('enter dicimal number : '))
print(DicToHex(dthex, num, reslt))
1
  • As it’s currently written, your answer is unclear. Please edit to add additional details that will help others understand how this addresses the question asked. You can find more information on how to write good answers in the help center.
    – Community Bot
    Sep 21 '21 at 9:16

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