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Trying to do some seemingly simple field calculations via UpdateCursor in ArcGIS 10.1 and getting an error about not being able to iterate floats. Here's my code--some stuff is commented out b/c it's not important to my question so just ignore it.

    #import arcpy module
    import arcpy

    #doing some fancy math
    import math

#message to let you know the script started
print "Begin Field Calculation for age-adjusted-rate."

#input shapefile
inputFC = 'C:\\blahblah.shp'

#variable to define the new field name
Field_Name = ['Age_Adj_R', 'wt_1', 'wt_2', 'wt_3']

#add the new Fields
#arcpy.AddField_management(inputFC, Field_Name[0], "DOUBLE", "", "", "", "",        "NULLABLE", "NON_REQUIRED", "")
#arcpy.AddField_management(inputFC, Field_Name[1], "DOUBLE", "", "", "", "", "NULLABLE", "NON_REQUIRED", "")
#arcpy.AddField_management(inputFC, Field_Name[2], "DOUBLE", "", "", "", "", "NULLABLE", "NON_REQUIRED", "")
#arcpy.AddField_management(inputFC, Field_Name[3], "DOUBLE", "", "", "", "", "NULLABLE", "NON_REQUIRED", "")

#list variable for the fields in the table that will be used
fields = ["Cnt1", "Cnt2", "Cnt3", "Pop1", "Pop2", "Pop3", "Crude_Rate", "Age_Adj_R", "wt_1", "wt_2", "wt_3"]
#wt_age_avg = [0.2869, 0.5479, 0.1652]

#populate the weighted average fields
cursor = arcpy.da.InsertCursor(inputFC, ["wt_1", "wt_2", "wt_3"])
for x in xrange(0, 51):
    cursor.insertRow([0.2869, 0.5479, 0.1652])
del cursor

#function to perform the field calculation using an update cursor
with arcpy.da.UpdateCursor(inputFC, fields) as cursor:
for row in cursor: #iterate through each row
    if not -99 in row: #check for missing values
        row[7] = str(sum((row[6]) * ((row[0] * row[8]) + (row[1] * row[9]) + (row[2] * row[10]))) #do the calculation
    else:
        row[7] = 0 #missing values found, place a null response
    cursor.updateRow(row) #save the calculations
del row  #release the variables

#acknowledge completion
   print "Calculation Completed."

error in IDLE:

Traceback (most recent call last):
  File "C:\blahblah.py", line 48, in <module>
    row[7] = str(sum((row[6]) * ((row[0] * row[8]) + (row[1] * row[9]) + (row[2] * row[10])))) #do the calculation
TypeError: 'float' object is not iterable

Ok--but I thought I changed it to a string before it would even populate the fields....I have no idea how to get this calculation to work. It should look something like:

sum(crude_rate* sum(weighted_averages))

If my way of using constant value fields doesn't work, I have also tried passing the values as variables (see variable: wt_age_avg) without luck. Also using other summation functions like math.fsum didnt' work either.

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print(row) does it print out a list? –  User Apr 8 '13 at 18:19
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3 Answers 3

up vote 0 down vote accepted

sum() expects an iterable:

sum(iterable[, start])
Sums start and the items of an iterable from left to right and returns the total. start defaults to 0. The iterable‘s items are normally numbers, and the start value is not allowed to be a string.

BUT here's the fun part: You don't need to use sum() here! You can just do instead:

row[7] = str( (row[6] * row[0] * row[8]) + 
              (row[1] * row[9]) + 
              (row[2] * row[10]) )
share|improve this answer
    
hmm Bernie, that's not quite what I'm looking for but you've given me an idea of how to fix it... –  geneari Apr 8 '13 at 18:24
    
@geneari: We really like people who get ideas of how to fix stuff here. Welcome to SO, and hopefully we'll see more of you around. Take care. –  bernie Apr 8 '13 at 18:30
    
Sorry I was snippy just several hours of being dumb will do that. You let me see it a different (and consequently correct) way. Thanks. –  geneari Apr 8 '13 at 18:30
    
No problem at all. I deleted my earlier comment since it no longer applies to anything :-) –  bernie Apr 8 '13 at 18:32
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The + operator is sufficient, you don't need the sum() call. The error is calling sum(number).

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The other answers are correct but should you wish to use sum() for readability purposes, you can pass your values as a list...

row[7] = str(sum([row[6] * row[0] * row[8],
                  row[1] * row[9],
                  row[2] * row[10]] ))
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1  
Basic, that is a great suggestion for future reference, thanks! –  geneari Apr 8 '13 at 20:08
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