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I tried to do these two functions:

# majority(x)
# pre-condition: x is a list of booleans (True or False values)
# post-condition: returns True if there are strictly more Trues than False in x; otherwise returns False.

def majority(x):
    numTrue = 0
    numFalse = 0
    for i in x:
        if (i==True):#check to see how many Trues there are 
            (numTrue) += 1
        else:# check to see how many Falses there are
            (numFalse) += 1
        if ((numTrue) > (numFlase)):# check to see what is the majority of the list(trues or falses)
            return True
        else:
            return False

In this one it shows me that numFalse is not defined and I don't know why:

# expletive_deleted(x)
# pre-condition: x is a list of strings
# post-condition: replace each string of length 4 in x with the string ****.
#return nothing.

def expletive_deleted(x):
    for n,i in enumerate(x):#enumerate works like 2 for loops together 
        if (len(x[n])==4):
            x[n] = '****'

and in this one whenever I try to test the function it does not show anything.

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closed as too localized by Wooble, stealthyninja, newfurniturey, Martijn Pieters, Second Rikudo Oct 13 '12 at 20:40

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3 Answers 3

You misspelled numFalse in your first one (numFlase in the second if block).

As for the second one, you aren't actually printing/doing anything. Assuming you are calling the function from somewhere else, you would need to either print or return the value, based on your requirements. Also, in your case, you could just say if len(i) == 4, since x[n] is equivalent to i (n is the index, i is the value).

share|improve this answer
    
Thank you so much, but what should i do to test the second one? –  Nouf Al Oct 13 '12 at 2:06
    
@NoufAl I would have it return a value (although it seems your instructions say return false?). You can then compare it against what it 'should' be and see if the two match. See PavelPaulau's answer below for a way to return a value. I guess you could also pass in a test variable with your data, but that wouldn't be as flexible :) –  RocketDonkey Oct 13 '12 at 2:08
def majority(lst):
    return sum(1 for b in lst if b) > (len(lst) // 2)

def expletive_deleted(lst): #note: not inplace as required
    return [s if len(s) != 4 else "****" for s in lst]

Inplace:

def expletive_deleted(lst):
    for i, s in enumerate(lst):
        if len(s) == 4:
           lst[i] = "****"
share|improve this answer

Try this:

def majority(x):
    return len([y for y in x if y]) > len(x) / 2

and

def expletive_deleted(x):                                             
    replacer =  lambda s: len(s) == 4 and "****" or s                 
    return map(replacer, x)
share|improve this answer
    
Thank you so much for your help –  Nouf Al Oct 13 '12 at 2:11
    
Does it work to you? –  Pavel Paulau Oct 13 '12 at 2:18

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