find minimum associated values
Alan Isaac
set of values, and I want to map each object to its
minimum associated value. The solutions below work,
but I would like to see prettier solutions...
Thank you,
Alan Isaac
===================================================================
import time, random
from itertools import groupby
from collections import defaultdict
class Pass:
pass
# arbitrary setup
keys = [Pass() for i in range(10)]*3
vals = [random.random() for i in range(30)]
kv = zip(keys,vals)
random.shuffle(kv)
#OBJECTIVE:
# find minimum val associated with each "key" in kv
print "method 1: brute force"
t=time.clock()
d = dict()
for k,v in kv:
if k in d:
if d[k] > v:
d[k] = v
else:
d[k] = v
print time.clock()-t
print d
print
print "method 2: groupby"
t=time.clock()
d = dict()
kv_sorted = sorted(kv, key=lambda x: id(x[0]))
for k, g in groupby( kv_sorted, key=lambda x: x[0] ):
d[k] = min(gi[1] for gi in g)
print time.clock()-t
print d
print
print "method 3: defaultdict"
t=time.clock()
d = defaultdict(list)
for k,v in kv:
d[k].append(v)
for k in d:
d[k] = min(d[k])
print time.clock()-t
print d
Steven Bethard
> I have a small set of objects associated with a larger
> set of values, and I want to map each object to its
> minimum associated value. The solutions below work,
> but I would like to see prettier solutions...
>
>
> # arbitrary setup
> keys = [Pass() for i in range(10)]*3
> vals = [random.random() for i in range(30)]
> kv = zip(keys,vals)
> random.shuffle(kv)
>
> #OBJECTIVE:
> # find minimum val associated with each "key" in kv
>
>
> print "method 3: defaultdict"
> t=time.clock()
> d = defaultdict(list)
> for k,v in kv:
> d[k].append(v)
> for k in d:
> d[k] = min(d[k])
> print time.clock()-t
> print d
This is definitely the approach I'd use. Seems "pretty" enough to me. ;-)
STeVe
Alan Isaac
> [3rd approach] Seems "pretty" enough to me. ;-)
I find it most attractive of the lot.
But its costs would rise if the number
of values per object were large.
Anyway, I basically agree.
Thanks,
Alan
Paul Rubin
> print "method 2: groupby"
> t=time.clock()
> d = dict()
> kv_sorted = sorted(kv, key=lambda x: id(x[0]))
How about something like:
kv_sorted = sorted(kv, key=lambda x: (id(x[0]), x[1]))
Now do your groupby and the first element of each group is the minimum
for that group.
bearoph...@lycos.com
solution requires less memory, it probably works quite well with
Psyco, and it's easy to translate to other languages (that is
important for programs you want to use for a lot of time or in
different situations), so I'd use the first solution.
Bye,
bearophile
John Machin
The first solution, once one changes "d = dict()" to "d = {}", is
quite free of any impediments to ease of reading, uses the minimum
necessary memory to build the required dict [and it's quite obvious by
inspection that this is so], and is the easiest to "translate" to
earlier versions of Python.
Alan Isaac
> How about something like:
>
> kv_sorted = sorted(kv, key=lambda x: (id(x[0]), x[1]))
You mean like this?
#sort by id and then value
kv_sorted = sorted(kv, key=lambda x: (id(x[0]),x[1]))
#groupby: first element in each group is object and its min value
d =dict( g.next() for k,g in groupby( kv_sorted, key=lambda x: x[0] ) )
Yes, that appears to be fastest and is
pretty easy to read.
Thanks,
Alan
Alan Isaac
> #sort by id and then value
> kv_sorted = sorted(kv, key=lambda x: (id(x[0]),x[1]))
> #groupby: first element in each group is object and its min value
> d =dict( g.next() for k,g in groupby( kv_sorted, key=lambda x: x[0] ) )
>
> Yes, that appears to be fastest and is
> pretty easy to read.
On average.
For the specified problem.
;-)
Alan Isaac
> I'd use the first solution.
It can be speeded up a bit with
a try/except:
for k,v in kv:
try:
if d[k] > v:
d[k] = v
except KeyError:
d[k] = v
Cheers,
Alan Isaac