db = sqlite.connect("test.sqlite")
res = db.execute("select * from table")

With iteration I get lists coresponding to the rows.

for row in res:
    print row

I can get name of the columns

col_name_list = [tuple[0] for tuple in res.description]

But is there some function or setting to get dictionaries instead of list?

{'col1': 'value', 'col2': 'value'}

or I have to do myself?

  • possible duplicate of Python - mysqlDB, sqlite result as dictionary – vy32 Aug 22 '15 at 22:50
  • 1
    @vy32: This question is from July 2010, the one you linked to is Nov 2010. So that one's the dupe. And as one would expect, the reverse comment has been put on that one :-) – aneroid Jun 7 '16 at 20:49

10 Answers 10

up vote 125 down vote accepted

You could use row_factory, as in the example in the docs:

import sqlite3

def dict_factory(cursor, row):
    d = {}
    for idx, col in enumerate(cursor.description):
        d[col[0]] = row[idx]
    return d

con = sqlite3.connect(":memory:")
con.row_factory = dict_factory
cur = con.cursor()
cur.execute("select 1 as a")
print cur.fetchone()["a"]

or follow the advice that's given right after this example in the docs:

If returning a tuple doesn’t suffice and you want name-based access to columns, you should consider setting row_factory to the highly-optimized sqlite3.Row type. Row provides both index-based and case-insensitive name-based access to columns with almost no memory overhead. It will probably be better than your own custom dictionary-based approach or even a db_row based solution.

  • 55
    Just to quote the docs, con.row_factory = sqlite3.Row – Adam Schmideg Dec 30 '10 at 1:19
  • If your column names have special characters in them eg SELECT 1 AS "dog[cat]" then the cursor will not have the correct description to create a dict. – Crazometer Jun 16 '16 at 6:23
  • I've set connection.row_factory = sqlite3.Row and I tried connection.row_factory = dict_factory as shown but cur.fetchall() is still giving me a list of tuples - any idea why this is not working? – Stefan Falk Dec 7 '16 at 10:51
  • @displayname, isn't documentation states "It tries to mimic a tuple in most of its features.". I'm pretty sure it is somehow similar to what you can get from collections.namedtuple. When I use cur.fetchmany() I get entries like <sqlite3.Row object at 0x...>. – ony Jan 4 '17 at 9:33
  • Even 7 years later, this answer is the most helpful copy and paste from the docs I've found on SO. Thanks! – WillardSolutions Jul 28 '17 at 16:23

Even using the sqlite3.Row class-- you still can't use string formatting in the form of:

print "%(id)i - %(name)s: %(value)s" % row

In order to get past this, I use a helper function that takes the row and converts to a dictionary. I only use this when the dictionary object is preferable to the Row object (e.g. for things like string formatting where the Row object doesn't natively support the dictionary API as well). But use the Row object all other times.

def dict_from_row(row):
    return dict(zip(row.keys(), row))       
  • 7
    sqlite3.Row implements the mapping protocol. You can just do print "%(id)i - %(name)s: %(value)s" % dict(row) – Mzzzzzz Jun 11 '15 at 14:07

I thought I answer this question even though the answer is partly mentioned in both Adam Schmideg's and Alex Martelli's answers. In order for others like me that have the same question, to find the answer easily.

conn = sqlite3.connect(":memory:")

#This is the important part, here we are setting row_factory property of
#connection object to sqlite3.Row(sqlite3.Row is an implementation of
#row_factory)
conn.row_factory = sqlite3.Row
c = conn.cursor()
c.execute('select * from stocks')

result = c.fetchall()
#returns a list of dictionaries, each item in list(each dictionary)
#represents a row of the table
  • 4
    Currently fetchall() seems to return sqlite3.Row objects. However these can be converted to a dictionary simply by using dict(): result = [dict(row) for row in c.fetchall()]. – Gonçalo Ribeiro Aug 26 at 22:19

From PEP 249:

Question: 

   How can I construct a dictionary out of the tuples returned by
   .fetch*():

Answer:

   There are several existing tools available which provide
   helpers for this task. Most of them use the approach of using
   the column names defined in the cursor attribute .description
   as basis for the keys in the row dictionary.

   Note that the reason for not extending the DB API specification
   to also support dictionary return values for the .fetch*()
   methods is that this approach has several drawbacks:

   * Some databases don't support case-sensitive column names or
     auto-convert them to all lowercase or all uppercase
     characters.

   * Columns in the result set which are generated by the query
     (e.g.  using SQL functions) don't map to table column names
     and databases usually generate names for these columns in a
     very database specific way.

   As a result, accessing the columns through dictionary keys
   varies between databases and makes writing portable code
   impossible.

So yes, do it yourself.

  • > varies between databases - like what, sqlite 3.7 and 3.8? – Nucular Mar 7 '14 at 17:23
  • @user1123466: ... Like between SQLite, MySQL, Postgres, Oracle, MS SQL Server, Firebird... – Ignacio Vazquez-Abrams Mar 7 '14 at 17:52

Shorter version:

db.row_factory = lambda c, r: dict([(col[0], r[idx]) for idx, col in enumerate(c.description)])
  • This worked great for me. Thanks! – Kenny Pyatt Dec 19 '17 at 20:22

Fastest on my tests:

conn.row_factory = lambda c, r: dict(zip([col[0] for col in c.description], r))
c = conn.cursor()

%timeit c.execute('SELECT * FROM table').fetchall()
19.8 µs ± 1.05 µs per loop (mean ± std. dev. of 7 runs, 100000 loops each)

vs:

conn.row_factory = lambda c, r: dict([(col[0], r[idx]) for idx, col in enumerate(c.description)])
c = conn.cursor()

%timeit c.execute('SELECT * FROM table').fetchall()
19.4 µs ± 75.6 ns per loop (mean ± std. dev. of 7 runs, 100000 loops each)

You decide :)

Or you could convert the sqlite3.Rows to a dictionary as follows. This will give a dictionary with a list for each row.

    def from_sqlite_Row_to_dict(list_with_rows):
    ''' Turn a list with sqlite3.Row objects into a dictionary'''
    d ={} # the dictionary to be filled with the row data and to be returned

    for i, row in enumerate(list_with_rows): # iterate throw the sqlite3.Row objects            
        l = [] # for each Row use a separate list
        for col in range(0, len(row)): # copy over the row date (ie. column data) to a list
            l.append(row[col])
        d[i] = l # add the list to the dictionary   
    return d

A generic alternative, using just three lines

def select_column_and_value(db, sql, parameters=()):
    execute = db.execute(sql, parameters)
    fetch = execute.fetchone()
    return {k[0]: v for k, v in list(zip(execute.description, fetch))}

con = sqlite3.connect('/mydatabase.db')
c = con.cursor()
print(select_column_and_value(c, 'SELECT * FROM things WHERE id=?', (id,)))

But if your query returns nothing, will result in error. In this case...

def select_column_and_value(self, sql, parameters=()):
    execute = self.execute(sql, parameters)
    fetch = execute.fetchone()

    if fetch is None:
        return {k[0]: None for k in execute.description}

    return {k[0]: v for k, v in list(zip(execute.description, fetch))}

or

def select_column_and_value(self, sql, parameters=()):
    execute = self.execute(sql, parameters)
    fetch = execute.fetchone()

    if fetch is None:
        return {}

    return {k[0]: v for k, v in list(zip(execute.description, fetch))}
import sqlite3

db = sqlite3.connect('mydatabase.db')
cursor = db.execute('SELECT * FROM students ORDER BY CREATE_AT')
studentList = cursor.fetchall()

columnNames = list(map(lambda x: x[0], cursor.description)) #students table column names list
studentsAssoc = {} #Assoc format is dictionary similarly


#THIS IS ASSOC PROCESS
for lineNumber, student in enumerate(studentList):
    studentsAssoc[lineNumber] = {}

    for columnNumber, value in enumerate(student):
        studentsAssoc[lineNumber][columnNames[columnNumber]] = value


print(studentsAssoc)

The result is definitely true, but I do not know the best.

Similar like before-mentioned solutions, but most compact:

db.row_factory = lambda C, R: { c[0]: R[i] for i, c in enumerate(C.description) }

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