根据字符串中定义的条件填充新列

Fill new column based on conditions defined in a string(根据字符串中定义的条件填充新列)

本文介绍了根据字符串中定义的条件填充新列的处理方法,对大家解决问题具有一定的参考价值,需要的朋友们下面随着小编来一起学习吧!

问题描述

我有条件填充在字符串中定义的新列。

condition_string =  "colA='yes' & colB='yes' & (colC='yes' | colD='yes'): 'Yes', colA='no' & colB='no' & (colC='no' | colD='no'): 'No', ELSE : 'UNKNOWN'"

可以用任何其他格式(词典)重写/构造字符串,然后将其送入代码以获得最终结果。

数据帧是

df = pd.DataFrame(
    {
            'ID': ['AB01', 'AB02', 'AB03', 'AB03', 'AB04','AB05', 'AB06'],
            'colA': ["yes","yes",'yes',"no","no",'yes', np.nan],
            'colB': [np.nan,'yes','yes',"no",'no', np.nan, "yes"],
            'colC': ["yes",'yes', 'yes',"no", "no",np.nan,np.nan],
            'colD': ["yes",'no', 'yes',"no",np.nan,"no",np.nan],
    }
    )

最终结果应如下所示

如何才能在不对condition_string中的内容进行硬编码的情况下完成此操作。或者您有什么方法可以重构condition_string然后应用于数据帧吗?

更新: 如果词典是这样的呢?

condition_string =  "colA='yes' & (colB='yes' | colB='no)' & 
(colC='yes' | colD='yes'): 'Yes', colA='no' & colB='no' & (colC='no' |    colD='no'): 'No', ELSE : 'UNKNOWN'"

数据帧类似

df = pd.DataFrame(
    {
            'ID': ['AB01', 'AB02', 'AB03', 'AB03', 'AB04','AB05', 'AB06'],
            'colA': ["yes","yes",'yes',"no","no",'yes', np.nan],
            'colB': ["no",'yes','yes',"no",'no', np.nan, "yes"],
            'colC': ["yes",'yes', 'yes',"no", "no",np.nan,np.nan],
            'colD': ["yes",'no', 'yes',"no",np.nan,"no",np.nan]
    }
    )

推荐答案

这里有一个解决方案,可以将您的条件转换为Python函数,然后将其应用于DataFrame的行:

import re

condition_string =  "colA='yes' & colB='yes' & (colC='yes' | colD='yes'): 'Yes', colA='no' & colB='no' & (colC='no' | colD='no'): 'No', ELSE : 'UNKNOWN'"

# formatting string as python function apply_cond
for col in df.columns:
    condition_string = re.sub(rf"(W|^){col}(W|$)", rf"1row['{col}']2", condition_string)
    condition_string = re.sub(rf"row['{col}']s*=(?!=)", f"row['{col}']==", condition_string)

cond_form = re.sub(r'(:[^[(]+), (?!ELSE)', r'1
	elif ', condition_string) 
            .replace(": ", ":
		return ") 
            .replace("&", "and") 
            .replace('|', 'or')
cond_form = re.sub(r", ELSEs*:", "
	else:", cond_form)
function_def = "def apply_cond(row):
	if " + cond_form
#print(function_def) # uncomment to see how the function is defined

# executing the function definition of apply_cond
exec(function_def)

# applying the function to each row
df["result"]=df.apply(lambda x: apply_cond(x), axis=1)

print(df)

输出:

     ID colA colB colC colD   result
0  AB01  yes  NaN  yes  yes  UNKNOWN
1  AB02  yes  yes  yes   no      Yes
2  AB03  yes  yes  yes  yes      Yes
3  AB03   no   no   no   no       No
4  AB04   no   no   no  NaN       No
5  AB05  yes  NaN  NaN   no  UNKNOWN
6  AB06  NaN  yes  NaN  NaN  UNKNOWN

您可能希望根据condition_string调整字符串格式(我做得很快,可能有一些不受支持的组合),但如果您自动获取这些字符串,将使您不必重新定义它们。

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