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I have the following code:

resdata = dict()
rows = result.rows.all()
for key, group in groupby(rows, lambda x: x.space):
    row = list()
    for item in group:
        cell = {
            'time': item.time,
            'value': item.value
        }
        row.append(cell)
    resdata[key] = row

a sample resdata would be:

    resdata = [
    {
      "skl": "nn_skl:5608", 
      "cols": [
        {
          "value": 115.396956868, 
          "time": "2012-06-02 00:00:00"
        }, 
        {
          "value": 112.501399874, 
          "time": "2012-06-03 00:00:00"
        }, 
        {
          "value": 106.528068506, 
          "time": "2012-06-18 00:00:00"
        }
      ], 
      "len": 226
    }, 
    {
      "skl": "nn_skl:5609", 
      "cols": [
        {
          "value": 114.541167284, 
          "time": "2012-06-02 00:00:00"
        }, 
      ], 
      "len": 226
    }, 
    {
      "skl": "nn_skl:5610", 
      "cols": [
        {
          "value": 105.887267189, 
          "time": "2012-06-18 00:00:00"
        }
      ], 
      "len": 225
    }
]

What I want to do is to get the maximum 'value' and the maximum 'time' among all the cells.

share|improve this question
1  
It would be nice if you gave a data structure that we could actually test on. –  Lattyware Dec 13 '12 at 14:02
    
@Nasir: Lattyware brings up a good point, which raises another question. What are you asking? Are you wondering how to parse, or just an algorithm for finding the maximum? It would help if you could include a code snippet that takes care of the stuff you know how so others can focus on the part that you need help with. –  RonaldBarzell Dec 13 '12 at 14:03
    
Sorry guys. I will in a sec –  Nasir Dec 13 '12 at 14:07
    
Added the codes –  Nasir Dec 13 '12 at 14:13

1 Answer 1

up vote 3 down vote accepted

Assuming you've converted into a Python object with json.loads or whatnot, then you want something like:

max(b["time"] for b in a["cols"] for a in data)
share|improve this answer
    
There isn't really a need to construct a list here, if you just leave out the square brackets you will get a generator expression that will function the same but read a little nicer. –  Lattyware Dec 13 '12 at 14:08
    
Yes, I need to get out of that habit –  Mr E Dec 13 '12 at 14:09
    
It's not a big deal in this case, as max() will have to consume the whole thing anyway, it's just a little nicer to look at. In any case, +1, a good solution. –  Lattyware Dec 13 '12 at 14:10
    
I've never seen a generator expression with multiple fors before. Is this a 3.0 thing? –  Kevin Dec 13 '12 at 14:11
    
I've always been able to do it (I'm on 2.7 here), as far as I know it's nothing new... –  Mr E Dec 13 '12 at 14:14

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