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I've been noticing that a lot of the tutorials I'm following use this:

def springSecurityService

and since I want to get records only by current logged in user I use:

def user = ? User.findByUserId( : User.get(

and also in my Bootstrap I want to create a username and password, so for instance

def user = new User( username: username, password: springSecurityService.encodePassword("tops3kr17"), enabled: true)

However I noticed that the password is not being created, and Spring Source Tools does not find the method or .encodePassword (they stay underlined in STS) and wants to use SpringSecurityService with a capital S when hitting CTL+SPACE (and doesn't complete or .encodePassword).

So i'm a little lost because it seems that the tutorials are out of date

So how can I do what I described with what the current supported methods are? Or am I missing something really simple? : )

class BootStrap {
def springSecurityService

def init = { servletContext ->

    def demo = [
        'jack' : [ fullName: 'Jack Demo Salesman'],
        'jill' : [ fullName: 'Jill Demo Saleswoman']]

    def now = new Date()
    def random = new Random()

    def userRole = SecRole.findByAuthority("ROLE_SALES") ?: new SecRole(authority: "ROLE_SALES").save()
    def adminRole = SecRole.findByAuthority("ROLE_ADMIN") ?: new SecRole(authority: "ROLE_ADMIN").save()

    def users = User.list() ?: []
    if (!users) {
        demo.each { username, password, userAttrs ->
            def user = new User(
                username: username,
                password: springSecurityService.encodePassword('secret'),
                enabled: true)
            if (user.validate()) {
                println "DEBUG: Creating user ${username}..."
                println "DEBUG: and their password is ${password}"

                SecUserSecRole.create user, userRole
                users << user
            else {
                println("\n\n\nError in account bootstrap for ${username}!\n\n\n")
                user.errors.each {err -> 
                    println err
share|improve this question

1 Answer 1

up vote 0 down vote accepted

Using the injected instance of SpringSecurityService is the right approach.

def springSecurityService

def foo() {

If the IDE isn't recognizing it, there is an issue with your IDE.

share|improve this answer
thanks I'll give it a shot – Basics Nov 15 '12 at 22:23
got it figured out. I put the code up in my original post. at least I think I do. :P seems one problem gets fixed to find another. :) – Basics Nov 15 '12 at 22:59

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