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This function receives as a parameter an integer and should return a list representing the same value expressed in binary as a list of bits, where the first element in the list is the most significant (leftmost) bit.

My function currently outputs '1011' for the number 11, I need [1,0,1,1] instead.

For example,

>>> convert_to_binary(11)
[1,0,1,1]
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1  
Can you please post the code you have so far? This sounds like a homework assignment and posting the code would help us help you better. –  GWW Nov 23 '12 at 3:38
    
I keep getting an error message when posting the code in the description –  user1790201 Nov 23 '12 at 3:48
    
@user1790201, click the edit button that's where you should post your code. –  John Nov 23 '12 at 3:53
    
@user1790201: It sounds like you want to ask for the reverse function as well. You can ask that as a separate question instead of adding to an existing question. –  Dietrich Epp Nov 23 '12 at 3:59

6 Answers 6

def trans(x):
    if x == 0: return [0]
    bit = []
    while x:
        bit.append(x % 2)
        x >>= 1
    return bit[::-1]
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1  
Fails for input 0 –  Óscar López Nov 23 '12 at 4:32

Just for fun - the solution as a recursive one-liner:

def tobin(x):
    return tobin(x/2) + [x%2] if x > 1 else [x]
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Fails for input 0. –  Dietrich Epp Nov 23 '12 at 4:10
    
@DietrichEpp mmm, corner case. fixed it, thanks for pointing it –  Óscar López Nov 23 '12 at 4:12

This will do it. No sense in rolling your own function if there's a builtin.

def binary(x):
    return [int(i) for i in bin(x)[2:]]

The bin() function converts to a string in binary. Strip of the 0b and you're set.

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1  
I believe he is trying to do it without using the bin function. –  John Nov 23 '12 at 3:42
    
I can't use the binary function for this, and no imports are allowed either –  user1790201 Nov 23 '12 at 3:42
    
@johnthexiii: Naturally, you can't be assured that someone will follow instructions if you don't tell them the instructions. –  Dietrich Epp Nov 23 '12 at 3:44
    
@DietrichEpp, it's in the title of the question. –  John Nov 23 '12 at 3:45
2  
You guys are making a lot of fuss over this answer when there's a perfectly viable answer three inches above. @johnthexiii, there are no customers here. I'll leave this answer here in case someone other than the asker finds it useful, which I think is not unlikely. –  Dietrich Epp Nov 23 '12 at 3:56

may I propose this:

def tobin(x,s):
    return [(x>>k)&1 for k in range(0,s)]

it is probably the fastest way and it seems pretty clear to me. bin way is too slow when performance matters.

cheers

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Here is the code for one that I made for college. Click Here for a youtube video of the code.! https://www.youtube.com/watch?v=SGTZzJ5H-CE

__author__ = 'Derek'
print('Int to binary')
intStr = input('Give me an int: ')
myInt = int(intStr)
binStr = ''
while myInt > 0:
    binStr = str(myInt % 2) + binStr
    myInt //= 2
print('The binary of', intStr, 'is', binStr)
print('\nBinary to int')
binStr = input('Give me a binary string: ')
temp = binStr
newInt = 0
power = 0
while len(temp) > 0:   # While the length of the array if greater than zero keep looping through
    bit = int(temp[-1])   # bit is were you temporally store the converted binary number before adding it to the total
    newInt = newInt + bit * 2 ** power  # newInt is the total,  Each time it loops it adds bit to newInt.
    temp = temp[:-1]  # this moves you to the next item in the string.
    power += 1  # adds one to the power each time.
print("The binary number " + binStr, 'as an integer is', newInt)
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# dec2bin.py
# FB - 201012057
import math

def dec2bin(f):
    if f >= 1:
        g = int(math.log(f, 2))
    else:
        g = -1
    h = g + 1
    ig = math.pow(2, g)
    st = ""    
    while f > 0 or ig >= 1: 
        if f < 1:
            if len(st[h:]) >= 10: # 10 fractional digits max
                   break
        if f >= ig:
            st += "1"
            f -= ig
        else:
            st += "0"
        ig /= 2
    st = st[:h] + "." + st[h:]
    return st

# MAIN
while True:
    f = float(raw_input("Enter decimal number >0: "))
    if f <= 0: break
    print "Binary #: ", dec2bin(f)
    print "bin(int(f)): ", bin(int(f)) # for comparison
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3  
Please give your answer with explanation and format it properly. –  Sulthan Allaudeen Apr 2 at 9:11
1  
Code blocks in Markdown should be indented by four spaces. The easiest way to do that on Stack Overflow is to select the code and press Ctrl+K or click the {} button in the editor toolbar. –  Chris Apr 2 at 11:32

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