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I have following list,

admin_extra = [
                {
                   'name': 'nikhil',
                    'passkey': 'nikhilpasskey' 
                },

                {
                    'name': 'mac',
                    'passkey': 'macpasskey' 
                },
             ]

how to get dicts inside list in better way? and print error if no match found?

I have done with

name = 'nikhil'

flag = 0

for admin in admin_extra:
    if admin['name'] == name:
        passkey = admin[passkey]
        flag = 1
        return passkey

if not flag:
    print "not found"

Also i wish to eliminate flag logic

share|improve this question
up vote 1 down vote accepted

One way would be to put the code inside a function (as it looks like you have done by the presence of return:

def get_passkey(admin_extra, name):
    for admin in admin_extra:
        if admin['name'] == name:
            passkey = admin[passkey]
        return passkey
    # this will not happen if we have left the function due to returning the passkey
    return None     # We did not find a passkey

Another way would be using the break statement:

name = 'nikhil'
passkey = ''

for admin in admin_extra:
    if admin['name'] == name:
        passkey = admin[passkey]
        print passkey
        break
else:
    print "not found"

Other (partially tongue-in-cheek) suggestion: use classes.

Example code:

admins = AdminList(Admin("Nikhil", "nikhilpasskey"), Admin("Mac", "macpasskey"))
pass = admins["Nikhil"].passkey
share|improve this answer
    
Your second example is invalid. The else-block is completely misplaced. I guess you wanted to check whether passkey is still ''. – Thorsten Kranz Aug 20 '13 at 12:26
    
Nope, Python's else statement works for for loops! The code in the block is called if, and only if the loop isn't broken out of. – sweeneyrod Aug 20 '13 at 12:36
    
amazing... didn't know that. Thanks. – Thorsten Kranz Aug 20 '13 at 12:59

The most obvious approach would be to use a break statement.

passkey = None

for admin in admin_extra:
    if admin['name'] == name:
        passkey = admin["passkey"]
        break

if passkey is None:
    print "not found"

Alternatively use list comprehension:

matching_admin_extras = [ae for ae in admin_extra if ae["name"] == name]

if len(matching_admin_extras)==0:
    print "not found"
elif len(matching_admin_extras)>1:
    print "multiple matches"
else:
    print matching_admin_extras[0]["passkey"]
share|improve this answer
name = 'nikhil'

try:
    passkey = [admin['passkey'] for admin in admin_extra if admin['name'] == name][0]
except IndexError:
    print "No passkey found for", name
share|improve this answer
filtered=[item['passkey'] for item in admin_extra if item['name'] == name]
return filtered[0] if filtered else 'not found'
share|improve this answer

You can use a list comprehension:

ae_names = [ae['name'] for ae in admin_extra]

if name not in ae_names:
    print "not found"
share|improve this answer
    
OP wants to get the passkey, this does not achieve that. – sweeneyrod Aug 20 '13 at 12:10
    
:) Thanks Ludo. as per user2387370 i also want to get passkey – Nikhil Rupanawar Aug 20 '13 at 12:11
    
Oops, I missed that. (BTW: I would advice against putting return statements inside loops.) Go with @ThorstenKranz solution. – Ludo Aug 20 '13 at 12:17

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