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I'm trying to write a program that will factor any trinomial of the form ax^2+bx+c, but I'm kind of stuck. I've got a sequence of 4 for loops that looks like this:

print "Factoring...\n"

for i in range(low_value, high_value):
    for j in range(low_value, high_value):
        for k in range(low_value, high_value):
            for l in range(low_value, high_value):
                print "testing\n"
                if i*k==a & j*l==c & (i*l)+(j*k)==b:
                    print "Your factored Equation is: (" + i + "x + " + j + ")(" + k + "x + " + l + ")"
                else:
                    print "No solution found.\n"
print "testing...\n"

Anyways I know the code is far from optimal but nothing inside the for loops are executing. The "testing..." message at the end is displayed but nothing is printed before that(by that I mean the "testing", "Your factored equation is:", or the "No solution found"). Is there some kind of limitation in Python where I can't use so many for loops at once? Is there something wrong with my syntax that I just am unable to see? Any help would be greatly appreciated :)

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How do you define low_value and high_value? –  Deestan Aug 21 '12 at 17:42
1  
If you assign a value to low_value and high_value, your code does in fact do print "testing", so there doesn't seem to be any problem with the loops. –  Andrew Gorcester Aug 21 '12 at 17:42
1  
Syntax-wise, you should use the and keyword in place of & in your if statement. –  Andrew Gorcester Aug 21 '12 at 17:43
1  
You haven't posted the code which prompts for the input. I'd guess something weird is going on there. –  Daniel Roseman Aug 21 '12 at 17:47
2  
As an aside, are you familiar with the quadratic formula? This factoring can be done without any loops, which will make it far faster. –  DSM Aug 21 '12 at 18:09

3 Answers 3

up vote 2 down vote accepted

Apart from the question stated, there are a few problems with the code: :-)

  • Given low_value of -1000 and high_value of 1000, "testing" and "no solution has been found" will be printed ~16 trillion times.
  • Execution doesn't stop when a solution is found.
  • print as statement restricts the code to Python2, it is recommended to use the print(stuff) function instead.
  • print automatically inserts a newline. \n is not needed.

Here's a suggested rewrite:

def factor(a, b, c):
    low_value = min(a, b, c)
    high_value = max(a, b, c)
    for i in range(low_value, high_value):
        for j in range(low_value, high_value):
            for k in range(low_value, high_value):
                if i*k != a:
                    # check this clause earlier to improve speed a bit
                    continue
                for l in range(low_value, high_value):
                    if j*l != c:
                        continue
                    if (i*l) + (j*k) != b:
                        continue
                    return (i, j, k, l)
    return None

print("Factoring...")
solution = factor(1, 2, 4)
if solution:
    (i, j, k, l) = solution
    print("Your factored Equation is: (" + i + "x + " + j + ")" +
          "(" + k + "x + " + l + ")")
else:
    print("No solution can be found.")
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Yeah I hadn't quite gotten all the parts of the code in the right place yet, I just wanted to make sure all the logic was working properly before. But thanks a lot! :) –  Tyler Jarjoura Aug 21 '12 at 18:07
3  
What is null? –  Steven Rumbalski Aug 21 '12 at 18:19
    
@StevenRumbalski it's a typo for "None". Derp. –  Deestan Aug 21 '12 at 19:55

You have to use and for logical conjunction, not '&' symbol. Try this:

...
if (i*k==a) and (j*l==c) and ((i*l+j*k)==b):
...
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1  
this is just a "better programming practice" not a syntax error –  SpiXel Aug 21 '12 at 17:45
5  
@SpiXel: While it isn't a syntax error it still is an error, since & is bitwise and. –  sth Aug 21 '12 at 17:50
3  
@SpiXel: Not only is & bitwise instead of Boolean, it has a higher precedence than ==, whereas and has a lower precedence. At the Python prompt, try 4==4 & 3==3 and then try 4==4 and 3==3. –  John Y Aug 21 '12 at 17:54
    
@sth yes you're right , but still , considering boolean values being checked , is there still any differences ? –  SpiXel Aug 21 '12 at 17:54
    
@JohnY That precedence does it, so it makes a difference there. Thanks –  SpiXel Aug 21 '12 at 17:57

To make it more pythonic:

from itertools import product

for i, j, k, l in product(range(low, high), repeat=4):
    print i, j, k, l
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