2

I'm having a problem with trying to install a search function on my web application. The problem is with the following code. I've tried the following two queries but python gives me an error that I will list below:

def searchBox(user_id, searchparams):

try:
    cursor = connection.cursor()

    if cursor:
        sql = "SELECT * FROM db_email WHERE user_id = %d AND deleted = 0 AND subject LIKE '%%%s%%';"
        cursor.execute(sql % (user_id, searchparams)

I have also tried:

try:
    cursor = connection.cursor()

    if cursor:
        sql = "SELECT * FROM db_email WHERE user_id = %d AND deleted = 0 AND subject LIKE " + "'%" + searchparams + "%';"
        cursor.execute(sql % (user_id))

Both return this error for me:

TypeError: not enough arguments for format string

This is the only raw queries that I have had any trouble with and it's related to the way I need to call LIKE. I could write a stored procedure instead to bypass python but I feel like I'm doing something dumb and overlooking an issue. Any help would be appreciated


Thank you. I think a part of the problem is with my LIKE query I need my searchparams to be enclosed with percentage signs and the below answer doesn't work like so -

subject LIKE '%somestringimlookingfor%' 

with the code above it seems to come out to 'test'%''. Any ideas?

3

Don not use string interpolation for SQL queries, it's completely unsafe.

Instead, use query parameters:

sql = """SELECT 
             * 
         FROM 
             db_email 
         WHERE
             user_id = %s AND 
             deleted = 0 AND 
             subject LIKE '%%%s%%'"""
cursor.execute(sql, (user_id, searchparams))

Percentage sign should be escaped with %.

UPD:

Slightly different option:

sql = """SELECT 
             * 
         FROM 
             db_email 
         WHERE
             user_id = %s AND 
             deleted = 0 AND 
             subject LIKE %s"""
cursor.execute(sql, (user_id, "%" + searchparams + "%"))

See also:

|improve this answer|||||
  • Thank you. I think a part of the problem is with my LIKE query I need my searchparams to be enclosed with percentage signs like so - subject LIKE '%somestringimlookingfor%' with the code above it seems to come out to 'test'%''. Any ideas? – Dalbrecht Sep 27 '13 at 13:27
  • @Dalbrecht please see UPD section in the answer. Let me know if it works for you. – alecxe Sep 29 '13 at 19:43

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.