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I have a list of dictionaries such as:

l =[{country:'Italy',sales:100,cost:50}{country:'Italy',sales:130,cost:60}      
    {country:'Germany',sales:110,cost:50}]

I want a python function that takes a spreadsheet-like input string (please, read comments from @lott below) formula like:

margin = (sales-cost)/sales

And it gives me back:

l = [{country:'Italy',sales:100,cost:50,margin:1} ...]

Do you know of any existing library that does this? Or do you have an idea how to implement it?

I already got an idea, as you can see below, but I would like a better way to parse the formula. Something to deal with the blocks in the '()' or the like.

parsed_op = {'sales':1,'cost':-1}
calc_field_name = 'smi'
counter = -1
for d in data:
    counter = counter + 1
    calc = sum([float(d[item])*parsed_op[item] for item in parsed_op])
    d[calc_field_name] = calc
    del data[counter]
    data.append(d)
share|improve this question
    
Existing library for this sort of thing: pandas. –  Thomas K Feb 24 '12 at 19:51
    
pandas is way too complex and big for what I need. –  kfk Feb 24 '12 at 19:59

2 Answers 2

up vote 1 down vote accepted

It seems to me that the real problem is to put numbers where there are words.

One way to do that, could be with re.sub() and some dictionary formatting (I don't really know their real name, bute here there are some examples).

The code:

import re

dct = {'country': 'Italy', 'sales': 100, 'cost': 50}
formula = 'margin = (sales-cost)/sales'

res_name,operation = formula.split('=')
num_formula = re.sub(r'([a-zA-Z]+)', r'{d[\1]}', operation.strip()).format(d=dct)
num_formula  # '(100-50)/100'

dct[res_name.strip()] = eval(num_formula.format(d=dct))

Result:

{'country': 'Italy', 'cost': 50, 'margin': 0.5, 'sales': 100}

I used eval() to evaluate the numerical operations in the string. Usually the use of eval() is a bad practice, but here is very handy.

Anyhow, I'm sure you could replace that eval() evaluation with something else.


Quick Explanation

What re.sub() does:

>>> re.sub(r'([a-zA-Z]+)', r'{d[\1]}', '(sales-cost)/sales')
'({d[sales]}-{d[cost]})/{d[sales]}'
  • r'([a-zA-Z]+)' is the pattern.
    • [a-zA-Z] matches any alphabetic character.
    • The + right after tells to match one or more, alphabetic character in our case, toghter.
    • The brackets are for grouping. Meaning that what's inside is going to be a group. Since we have only a pair of brackets that's going to be group 1.
  • r'{d[\1]}' is the replace.
    • \1 stands for "put there group number 1".
    • So basically is going to wrap what's been matched with {d[ ]}.

To know more about the re module take a look at the official doc.

How the formatting works:

>>> '{d[first]} + {d[second]}'.format(d=dct)
'1 + 2'

Put this two things togheter with some strip() here and there to have clean strings, and you'll end up the code above.

share|improve this answer
    
Hey, thanks. I understand almost all. Just this: r'{d[\1]}'. Why "1"? –  kfk Feb 24 '12 at 20:42
    
@kfk: \1 stands for the first group: what's inside the brakets in the pattern. Giving a second look at the code I've found a bug: the match should be donw with [a-zA-Z] instead that with \w, beacuse a word character include nubers, \w is like [a-zA-Z0-9_]. I fixed this updating the code :) –  Rik Poggi Feb 24 '12 at 21:11

Do something like this and you'll be happier.

Metrics = namedtuple('Metrics', 'country,sales,cost' )

Margin = namedtuple( 'Margin', 'country,sales,cost,margin' )

metrics = ( Metrics(**row) for row in l ) # a one-use only generator; not a sequence
margin = [ 
    Margin( m.country, m.sales, m.cost,
       margin= (m.sales-m.cost)/m.sales 
    )
for m in metrics ]

This works well because your formula margin= (m.sales-m.cost)/m.sales is very, very easy to read, understand and modify.

share|improve this answer
    
yes, it's easy, but I need it to be a string formula. Imagine keys a b and c. I need to do things like: sum((a*b + c)/a)... –  kfk Feb 24 '12 at 19:58
1  
@kfk: Why does it need to be a string? That seems silly. There's no good reason for that. If it must be a string, please update the question to state that very, very clearly. Also. Search because the "how do I evaluate a string" has been asked. –  S.Lott Feb 24 '12 at 20:01
    
@lott: I need this in a small web app. People have to be able to add calculated columns. That can only be done passing a string formula from an input field. –  kfk Feb 24 '12 at 20:04
1  
@kfk: Please update the question to state that very, very clearly. –  S.Lott Feb 24 '12 at 20:04

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