39

This seems like a simple question, but I couldn't find it asked before (this and this are close but the answers aren't great).

The question is: if I want to search for a value somewhere in my df (I don't know which column it's in) and return all rows with a match.

What's the most Pandaic way to do it? Is there anything better than:

for col in list(df):
    try:    
        df[col] == var
        return df[df[col] == var]
    except TypeError:
        continue 

?

5
  • If there is more than 1 match, what do you want to return?
    – cs95
    Dec 30, 2018 at 16:35
  • all rows with a match Dec 30, 2018 at 16:36
  • 7
    @coldspeed really? "pandaic" over "pandorable"? ;) Dec 30, 2018 at 16:48
  • 5
    Well, "pandaic" is what I've known the pandas devs to call it (eg Andy Hayden), but you are free to call it as you please, I'm sure synonyms are allowed :D
    – cs95
    Dec 30, 2018 at 16:49
  • 7
    From 2020, this should now henceforth be called Pandemic over "Pandaic" or "Pandorable".
    – shivams
    Sep 29, 2020 at 9:04

3 Answers 3

55

You can perform equality comparison on the entire DataFrame:

df[df.eq(var1).any(1)]
0
29

You should using isin , this is return the column , is want row check cold' answer :-)

df.isin(['bal1']).any()
A        False
B         True
C        False
CLASS    False
dtype: bool

Or

df[df.isin(['bal1'])].stack() # level 0 index is row index , level 1 index is columns which contain that value 
0  B    bal1
1  B    bal1
dtype: object
2
  • 6
    Guess this will need to be df[df.isin(['bal1']).any(1)]
    – cs95
    Dec 30, 2018 at 16:37
  • This should be the correct answer, really...is the other one faster or something? Feb 26, 2020 at 19:03
2

You can try the code below:

import pandas as pd
x = pd.read_csv(r"filePath")
x.columns = x.columns.str.lower().str.replace(' ', '_')
y = x.columns.values
z = y.tolist()
print("Note: It take Case Sensitive Values.")
keyWord = input("Type a Keyword to Search: ")
try:
    for k in range(len(z)-1):
        l = x[x[z[k]].str.match(keyWord)]
        print(l.head(10))
        k = k+1
except:
    print("")
0

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