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I have some formulas that I have defined as functions.

I've then 'named' them using particular parameters as I then need to use the output in further formula's which makes it easier and neater.

I now need to loop the defined function to give the outputs for each month over the year, and when I put in the name of the function into the while loop, it just gives me the one answer 12 times over, but when I put the full function into the loop it works.

Is there a way that I can loop the function by using it's name because as my formulae are progressing, they're getting more and more complex and the code is getting busy and confusing.

def growPOP(p, T, r, K):
    #formula to calculate the new population at the end of a month.
    #p = initial population, T = total initial population
    #r = growth rate per time, K = carrying capacity
    GrPp = p + ((p * r)*((K - T) / K))
    return(GrPp)

def rt(a, b, t):
    #formula to calculate growth rate for brown fish
    #a & b are constants given, t = the month number
    rt = a + (b*sin(((2*pi)*t)/12))
    return rt

ca = 0.052
cb = 0.132   
brownPOP = 19000
goldPOP = 4400
totalPOP = brownPOP + goldPOP
carryK = 104800
redcarryK = 0.998
newcarryK = (carryK*redcarryK) + (ep/10) #ep is an input figure - for now it's 0.
month = 1
brownGrowth = growPOP(brownPOP, totalPOP, rt(ca, cb, month), carryK)

while month <= 2:
    print "Month ", month
    print "Grown brown fish: ", growPOP(brownPOP, totalPOP, rt(ca, cb, month), carryK)
    brownPOP = endbrownPOP
    goldPOP = endgoldPOP
    totalPOP = endtotalPOP
    carryK = newcarryK
    month = month + 1

So in the above loop it gives me exactly the output I want, but I really want the loop to say "print "Grown brown fish: ", brownGrowth" and still work.

There are other formulae to get brownPOP to endbrownPOP but there's quite a few and they work, so I didn't think they needed to be entered in to complicate things.

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3 Answers 3

up vote 0 down vote accepted

I think you just forgot to recalculate brownGrowth in every loop iteration?

brownGrowth = growPOP(brownPOP, totalPOP, rt(ca, cb, month), carryK) 
while month <= 2: 
    print "Month ", month 
    print "Grown brown fish: ", brownGrowth
    brownPOP = endbrownPOP  
    goldPOP = endgoldPOP  
    totalPOP = endtotalPOP  
    carryK = newcarryK  
    month = month + 1  

Move the brownGrowth = formula line to inside while loop:

while month <= 2: 
    brownGrowth = growPOP(brownPOP, totalPOP, rt(ca, cb, month), carryK) 
    print "Month ", month 
    print "Grown brown fish: ", brownGrowth
    brownPOP = endbrownPOP 
    goldPOP = endgoldPOP 
    totalPOP = endtotalPOP 
    carryK = newcarryK 
    month = month + 1 
share|improve this answer
    
sweet! This does it :-) Thanks @nvuono! –  newtopython May 6 '12 at 3:18
    
The line brownGrowth = brownGrowth does nothing. –  Karl Knechtel May 6 '12 at 4:31

If I'm reading you correctly, you want brownGrowth to not store the result of the function call to growPop(), but to become that function call. So what you want to do is define a brownGrowth as a function.

brownGrowth = lambda: growPOP(brownPOP, totalPOP, rt(ca, cb, month), carryK)

Then in your loop, call that function:

print "Grown brown fish: ", brownGrowth()

However, there is really nothing wrong with the way you have it now, and I don't think it's any clearer the way you want to change it -- in fact, it's hiding what goes into that number behind an argumentless function. Also, there's nothing more efficient about it: it's less efficient because there's an extra layer of function call in the recipe.

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Also a great time to introduce functools.partial. One of my favorite functions ever. –  jdi May 6 '12 at 3:13
    
Yeah, functools.partial is very similar, however I believe it will "fix" the values of the variables at the time the partial is created rather than letting them "float" as a closure does. –  kindall May 6 '12 at 3:15
    
Thanks @kindall - I did think about making 'brownGrowth' a function in it's own right but dis-regarded it because it would complicate it further! –  newtopython May 6 '12 at 3:17

In addition to using a lambda:

brownGrowth = lambda: growPOP(brownPOP, totalPOP, rt(ca, cb, month), carryK)

you could also use partial from functools:

from functools import partial
brownGrowth = partial(growPOP, brownPOP, totalPOP, rt(ca, cb, month), carryK)

Then call it like:

print "Grown brown fish: ", brownGrowth()

But, again, it's entirely unnecessary, just put the function call in the loop, it's less code.

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