To access the index in this case you access the name attribute:
In [182]:
df = pd.DataFrame([[1,2,3],[4,5,6]], columns=['a','b','c'])
def rowFunc(row):
return row['a'] + row['b'] * row['c']
def rowIndex(row):
return row.name
df['d'] = df.apply(rowFunc, axis=1)
df['rowIndex'] = df.apply(rowIndex, axis=1)
df
Out[182]:
a b c d rowIndex
0 1 2 3 7 0
1 4 5 6 34 1
Note that if this is really what you are trying to do that the following works and is much faster:
In [198]:
df['d'] = df['a'] + df['b'] * df['c']
df
Out[198]:
a b c d
0 1 2 3 7
1 4 5 6 34
In [199]:
%timeit df['a'] + df['b'] * df['c']
%timeit df.apply(rowIndex, axis=1)
10000 loops, best of 3: 163 µs per loop
1000 loops, best of 3: 286 µs per loop
EDIT
Looking at this question 3+ years later, you could just do:
In[15]:
df['d'],df['rowIndex'] = df['a'] + df['b'] * df['c'], df.index
df
Out[15]:
a b c d rowIndex
0 1 2 3 7 0
1 4 5 6 34 1
but assuming it isn’t as trivial as this, whatever your rowFunc is really doing, you should look to use the vectorised functions, and then use them against the df index:
In[16]:
df['newCol'] = df['a'] + df['b'] + df['c'] + df.index
df
Out[16]:
a b c d rowIndex newCol
0 1 2 3 7 0 6
1 4 5 6 34 1 16